Sphingosine kinase Type 1 inhibitors and uses thereof
11737992 · 2023-08-29
Assignee
Inventors
- Sarah Spiegel (Richmond, VA, US)
- ROBERT ELLIOT ZIPKIN (WYNNEWOOD, PA, US)
- JEFFREY KROLL ADAMS (FORT WASHINGTON, PA, US)
Cpc classification
C07D295/092
CHEMISTRY; METALLURGY
C07D263/06
CHEMISTRY; METALLURGY
A61K31/135
HUMAN NECESSITIES
C07C217/64
CHEMISTRY; METALLURGY
A61K31/40
HUMAN NECESSITIES
C07C323/32
CHEMISTRY; METALLURGY
International classification
A61K31/135
HUMAN NECESSITIES
A61K31/40
HUMAN NECESSITIES
C07C217/64
CHEMISTRY; METALLURGY
C07C233/18
CHEMISTRY; METALLURGY
C07C323/32
CHEMISTRY; METALLURGY
C07D263/06
CHEMISTRY; METALLURGY
Abstract
Provided are inhibitors of sphingosine kinase Type I that are useful in the treatment of neuropathic pain.
Claims
1. A method for treating neuropathic pain in a patient, comprising: administering to a patient in need of treatment for neuropathic pain a compound having the formula ##STR00042##
2. The method of claim 1, wherein the administering step comprises administering ##STR00043## to the patient.
3. The method of claim 2, wherein the step of administering ##STR00044## to the patient comprises administering ##STR00045## HCl to the patient.
4. A method for treating neuropathic pain in a patient, comprising: administering to a patient in need of treatment for neuropathic pain a compound having the formula ##STR00046## wherein R comprises a straight carbon chain, a branched carbon chain, a straight carbon chain comprising one or more heteroatoms, a branched carbon chain comprising one or more heteroatoms, a cyclic ring, a heterocyclic ring, an aromatic ring, a hetero-aromatic ring, or any combination of the foregoing.
5. The method of claim 4, wherein R is a straight carbon chain, a branched carbon chain, a straight carbon chain comprising one or more heteroatoms, a branched carbon chain comprising one or more heteroatoms, a cyclic ring, a heterocyclic ring, an aromatic ring, a hetero-aromatic ring, or any combination of the foregoing.
6. The method of claim 5, wherein R is a straight carbon chain, a branched carbon chain, a straight carbon chain comprising one or more heteroatoms, a branched carbon chain comprising one or more heteroatoms, a cyclic ring, a heterocyclic ring, an aromatic ring, or a hetero-aromatic ring.
7. The method of claim 6, wherein R is a straight carbon chain, a branched carbon chain, a straight carbon chain comprising one or more heteroatoms, or a branched carbon chain comprising one or more heteroatoms.
8. The method of claim 7, wherein R is a straight carbon chain or a branched carbon chain.
9. The method of claim 8, wherein R is a straight carbon chain.
10. A method for treating neuropathic pain in a patient, consisting essentially of: administering ##STR00047## to the patient.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
(7)
(8)
(9)
(10)
DETAILED DESCRIPTION OF THE INVENTION
(11) The compositions and analogs of the present invention are designed in various forms, including their resemblance to the substrate, to the product formed by reaction of the substrate and enzyme, e.g., sphingosine kinases including sphingosine kinase Type 1, and to any intermediates formed in reaction. Reaction products are usually characterized by low binding affinity, e.g., low Km. Still, by providing enough binding affinity to the reaction products, the compositions and analogs of the present invention are useful and thereby produce useful inhibitory or regulatory effects against the desired enzyme.
(12) Preferential Inhibition of SphK1
(13) The ability to identify compounds and analogs which preferentially inhibit or regulate SphK1 as opposed to SphK2 is desirable. Five fold and even ten fold greater inhibition of SphK1 over SphK2 is particularly useful.
(14) The ability to inhibit SphK 1 differentially from SphK 2 allows assessments of the individual SphK 1 and SphK 2 activities when both activities are present in a cell extract. This is easily carried out by an analysis of the amount of the total SphK activity (i.e., transformation of Sph into Sph-P) in the absence of the inhibitor (which should be a composite of the individual SphK1 and SphK2 activities) and in the presence of the SphK 1 inhibitor where activity should only be generated by the SphK 2. Since the total activity as well as the contribution derived from SphK2 are known, a simple subtraction gives an estimate of the initial contribution by SphK1 in the assay carried out in the absence of the inhibitor. This is useful for diagnisitic or prognostic evaluations when viewed n the context of diseases where these levels are abnormal compared to the healthy state of an individual.
(15) The present invention provides a composition of matter having the structure:
(16) ##STR00006##
wherein R.sub.1 is H or comprises N, S, a phosphate group or a phosphonate group, and any combination thereof; wherein R.sub.2 is H, or comprises a straight carbon chain, a branched carbon chain, a straight carbon chain comprising one or more heteroatoms, a branched carbon chain comprising one or more heteroatoms, a cyclic ring, a heterocyclic ring, an aromatic ring or a hetero-aromatic ring, and any combination of the foregoing; wherein R.sub.3 is H or comprises OH, NR.sub.6R.sub.7, N.sup.+R.sub.6R.sub.7R.sub.8, a straight carbon chain, a branched carbon chain, a straight carbon chain comprising one or more heteroatoms, a branched carbon chain comprising one or more heteroatoms, a cyclic ring, a heterocyclic ring, an aromatic ring or a hetero-aromatic ring, and any combination of the foregoing; wherein R.sub.6, R.sub.7 and R.sub.8 independently comprise H, a straight carbon chain, a branched carbon chain, a straight carbon chain comprising one or more heteroatoms, a branched carbon chain comprising one or more heteroatoms, a cyclic ring, a heterocyclic ring, an aromatic ring or a hetero-aromatic ring, and any combination of the foregoing; wherein R.sub.4 is H or comprises OH, a halide, ═O, a straight carbon chain, a branched carbon chain, a straight carbon chain comprising one or more heteroatoms, a branched carbon chain comprising one or more heteroatoms, a cyclic ring, a heterocyclic ring, an aromatic ring or a hetero-aromatic ring, and any combination of the foregoing; and wherein R.sub.5 comprises a straight carbon chain, a branched carbon chain, a straight carbon chain comprising one or more heteroatoms, a branched carbon chain comprising one or more heteroatoms, a cyclic ring, a heterocyclic ring, an aromatic ring or a hetero-aromatic ring, and any combination of the foregoing.
(17) In the just described composition, one or more of the groups, R.sub.2, R.sub.3, R.sub.4, R.sub.5, R.sub.6, R.sub.7 or R.sub.8, comprise at least one double bond or at least one triple bond, or both at least one double bond and at least one triple bond.
(18) In the just described composition, the straight carbon chain, the branched carbon chain, the straight carbon chain comprising one or more heteroatoms or the branched carbon chain comprising one or more heteroatoms in R.sub.2, R.sub.3, R.sub.4, R.sub.5, R.sub.6, R.sub.7 or R.sub.8 comprises an alkyl, a substituted alkyl, an alkene, a substituted alkene, an alkyne or a substituted alkyne, and combinations of any of the foregoing.
(19) Also provided by this invention is a composition, as just described but wherein R.sub.5 comprises at least one double bond, this composition having the structure:
(20) ##STR00007##
wherein R.sub.9 comprises H, a straight carbon chain, a branched carbon chain, a straight carbon chain comprising one or more heteroatoms, a branched carbon chain comprising one or more heteroatoms, a cyclic ring, a heterocyclic ring, an aromatic ring or a hetero-aromatic ring, and any combination of the foregoing; and wherein R.sub.10 comprises a straight carbon chain, a branched carbon chain, a straight carbon chain comprising one or more heteroatoms, a branched carbon chain comprising one or more heteroatoms, a cyclic ring, a heterocyclic ring, an aromatic ring or a hetero-aromatic ring, and any combination of the foregoing. In this composition, R.sub.9 or R.sub.10, or both R.sub.9 and R.sub.10 comprise at least one double bond or at least one triple bond, or at least one double bond and at least one triple bond.
(21) Furthermore, in this composition just described, R.sub.5 can comprise at least one triple bond, such composition having the structure:
(22) ##STR00008##
wherein R.sub.9 comprises a straight carbon chain, a branched carbon chain, a straight carbon chain comprising one or more heteroatoms, a branched carbon chain comprising one or more heteroatoms, a cyclic ring, a heterocyclic ring, an aromatic ring or a hetero-aromatic ring, and any combination of the foregoing.
(23) In the compositions above described, one or more of the groups, R.sub.2, R.sub.3, R.sub.4, R.sub.5, R.sub.6, R.sub.7, R.sub.8, R.sub.9 or R.sub.10 comprise one or more halides.
(24) Also provided by this invention is the composition in accordance with those just described, wherein R.sub.5 comprises an aromatic ring, the composition having the structure:
(25) ##STR00009##
wherein R.sub.11 comprises H, OH, a halide, a straight carbon chain, a branched carbon chain, a straight carbon chain comprising one or more heteroatoms, a branched carbon chain comprising one or more heteroatoms, a cyclic ring, a heterocyclic ring, an aromatic ring or a hetero-aromatic ring, and any combination of the foregoing; an wherein R.sub.11 and R.sub.12 independently comprise a straight carbon chain, a branched carbon chain, a straight carbon chain comprising one or more heteroatoms, a branched carbon chain comprising one or more heteroatoms, a cyclic ring, a heterocyclic ring, an aromatic ring or a hetero-aromatic ring, and any combination of the foregoing.
(26) Additionally, in the composition just described, R.sub.10 can comprise an aromatic group, the composition having the structure:
(27) ##STR00010##
wherein R.sub.11 comprises H, OH, a halide, a straight carbon chain, a branched carbon chain, a straight carbon chain comprising one or more heteroatoms, a branched carbon chain comprising one or more heteroatoms, a cyclic ring, a heterocyclic ring, an aromatic ring or a hetero-aromatic ring, and any combination of the foregoing; and wherein R.sub.11 and R.sub.12 independently comprise a straight carbon chain, a branched carbon chain, a straight carbon chain comprising one or more heteroatoms, a branched carbon chain comprising one or more heteroatoms, a cyclic ring, a heterocyclic ring, an aromatic ring or a hetero-aromatic ring, and any combination of the foregoing.
(28) In the just described compositions, R.sub.10, R.sub.11, or both R.sub.10 and R.sub.11 comprise one or more halides.
(29) In another aspect of the above described compositions, R.sub.3 and R.sub.4 independently can comprise the same or different R or S isomer. R.sub.3 and R.sub.4 can also together comprise an isomer that is 2R, 3R; 2S, 3S; 2R, 3S; or 2S, 3R.
(30) Additionally, in the compositions above described, the C4 atom may be asymmetric and may comprise the 4R conformation or the 4S conformation.
(31) In the compositions of the present invention, a detectable label can be included. Such a detectable label comprises a ligand or a fluorescent dye. The ligand can comprise but is not limited to biotin, digoxygenin or fluorescein. The fluorescent dye can assume a number of various well-known fluorescent dyes including fluorescein, fluorescein isothiocyanate (FITC), 6-carboxyfluorescein (6-FAM), naphthofluorescein, rhodamine, rhodamine 6G, rhodamine X, rhodol, sulforhodamine 101, tetramethylrhodamine (TAMRA), tetramethylrhodamineisothiocyanate (TRITC), 4,7-dichlororhodamine, eosin, eosinisothiocyanate (EITC), dansyl, hydroxycoumarin, methoxycoumarin or p-(Dimethyl aminophenylazo) benzoic acid (DABCYL), cyanine dyes or derivatives, and any combinations of the foregoing.
(32) Moreover, in the present compositions, the Cl atom can be asymmetric and can comprise the 1R conformation. Alternatively, the Cl atom can be asymmetric and comprises the is conformation.
(33) In the above compositions, the heteroatom or heteroatoms comprise S, N or O, and combinations thereof. Such heteroatom or heteroatoms form linkages which are well known in the art. Those skilled in the art will readily appreciate such linkages which have been disclosed. See, for example, U.S. Pat. No. 4,707,440. For illustration purposes only, the following linkages are useful in accordance with this invention:
(34) ##STR00011##
and a combination of any of the foregoing. Those skilled in the art will appreciate that such linkages can take the form just described, or they can take a reverse or opposite form.
(35) In the compositions above described, at least two of the groups, R.sub.1, R.sub.2, R.sub.3, R.sub.4 or R.sub.5, can be joined together to form one or more rings. Thus, any of these groups can be cyclized to form additional rings between such ring forming R groups. This cyclization through ring forming R groups can be carried out through conventional methods. Such joining of the individual R groups can be covalently or even non-covalent.
(36) The invention herein also provides a composition of matter having the structure:
(37) ##STR00012##
wherein R.sub.1 is H or comprises OH, N, S, a phosphate group or a phosphonate group, and any combination thereof; wherein R.sub.2 comprises a straight carbon chain, a branched carbon chain, a straight carbon chain comprising one or more heteroatoms, a branched carbon chain comprising one or more heteroatoms, a cyclic ring, a heterocyclic ring, an aromatic ring or a hetero-aromatic ring, and any combination of the foregoing, wherein said R.sub.2 is substituted with one or more halides; wherein R.sub.3 is H or comprises OH, NR.sub.6R.sub.7, N.sup.+R.sub.6R.sub.7R.sub.8, a straight carbon chain, a branched carbon chain, a straight carbon chain comprising one or more heteroatoms, a branched carbon chain comprising one or more heteroatoms, a cyclic ring, a heterocyclic ring, an aromatic ring or a hetero-aromatic ring, and any combination of the foregoing; wherein R.sub.6, R.sub.7 and R.sub.8 independently comprise H, a straight carbon chain, a branched carbon chain, a straight carbon chain comprising one or more heteroatoms, a branched carbon chain comprising one or more heteroatoms, a cyclic ring, a heterocyclic ring, an aromatic ring or a hetero-aromatic ring, and any combination of the foregoing; wherein R.sub.4 is H or comprises OH, a halide, ═O, a straight carbon chain, a branched carbon chain, a straight carbon chain comprising one or more heteroatoms, a branched carbon chain comprising one or more heteroatoms, a cyclic ring, a heterocyclic ring, an aromatic ring or a hetero-aromatic ring, and any combination of the foregoing; and wherein R.sub.5 comprises a straight carbon chain, a branched carbon chain, a straight carbon chain comprising one or more heteroatoms, a branched carbon chain comprising one or more heteroatoms, a cyclic ring, a heterocyclic ring, an aromatic ring or a hetero-aromatic ring, and any combination of the foregoing.
(38) In this just described composition, one or more of the groups, R.sub.2, R.sub.3, R.sub.4, R.sub.5, R.sub.6, R.sub.7 or R.sub.8, can comprise at least one double bond or at least one triple bond, or both at least one double bond and at least one triple bond.
(39) Furthermore, the straight carbon chain, the branched carbon chain, the straight carbon chain comprising one or more heteroatoms or the branched carbon chain comprising one or more heteroatoms in R.sub.2, R.sub.3, R.sub.4, R.sub.5, R.sub.6, R.sub.7 or R.sub.8 can comprise an alkyl, a substituted alkyl, an alkene, a substituted alkene, an alkyne or a substituted alkyne, and combinations of any of the foregoing.
(40) In the just described composition, the group R.sub.5 can comprise at least one double bond, the composition having the structure:
(41) ##STR00013##
wherein R.sub.9 comprises H, a straight carbon chain, a branched carbon chain, a straight carbon chain comprising one or more heteroatoms, a branched carbon chain comprising one or more heteroatoms, a cyclic ring, a heterocyclic ring, an aromatic ring or a hetero-aromatic ring, and any combination of the foregoing; and wherein R.sub.10 comprises a straight carbon chain, a branched carbon chain, a straight carbon chain comprising one or more heteroatoms, a branched carbon chain comprising one or more heteroatoms, a cyclic ring, a heterocyclic ring, an aromatic ring or a hetero-aromatic ring, and any combination of the foregoing.
(42) In the composition just described, the group R.sub.9 or the group R.sub.10, or both R.sub.9 and said R.sub.10 can comprise at least one double bond or at least one triple bond, or at least one double bond and at least one triple bond.
(43) In the above composition wherein R.sub.5 comprises at least one triple bond, the composition has the structure:
(44) ##STR00014##
wherein R.sub.9 comprises a straight carbon chain, a branched carbon chain, a straight carbon chain comprising one or more heteroatoms, a branched carbon chain comprising one or more heteroatoms, a cyclic ring, a heterocyclic ring, an aromatic ring or a hetero-aromatic ring, and any combination of the foregoing.
(45) In the compositions above described, one or more of the groups, R.sub.3, R.sub.4, R.sub.5, R.sub.6, R.sub.7, R.sub.8, R.sub.9 or R.sub.10 comprises one or more halides.
(46) In the above composition wherein R.sub.5 comprises an aromatic ring, the composition has the structure:
(47) ##STR00015##
wherein R.sub.9 comprises H, a straight carbon chain, a branched carbon chain, a straight carbon chain comprising one or more heteroatoms, a branched carbon chain comprising one or more heteroatoms, a cyclic ring, a heterocyclic ring, an aromatic ring or a hetero-aromatic ring, and any combination of the foregoing; and wherein R.sub.11 comprises H, OH, a halide, a straight carbon chain, a branched carbon chain, a straight carbon chain comprising one or more heteroatoms, a branched carbon chain comprising one or more heteroatoms, a cyclic ring, a heterocyclic ring, an aromatic ring or a hetero-aromatic ring, and any combination of the foregoing; and wherein R.sub.11 and R.sub.12 independently comprise a straight carbon chain, a branched carbon chain, a straight carbon chain comprising one or more heteroatoms, a branched carbon chain comprising one or more heteroatoms, a cyclic ring, a heterocyclic ring, an aromatic ring or a hetero-aromatic ring, and any combination of the foregoing.
(48) In the above composition wherein R.sub.10 comprises an aromatic group, the composition has the structure:
(49) ##STR00016##
wherein R.sub.11 comprises H, OH, a halide, a straight carbon chain, a branched carbon chain, a straight carbon chain comprising one or more heteroatoms, a branched carbon chain comprising one or more heteroatoms, a cyclic ring, a heterocyclic ring, an aromatic ring or a hetero-aromatic ring, and any combination of the foregoing; and wherein R.sub.11 and R.sub.12 independently comprise a straight carbon chain, a branched carbon chain, a straight carbon chain comprising one or more heteroatoms, a branched carbon chain comprising one or more heteroatoms, a cyclic ring, a heterocyclic ring, an aromatic ring or a hetero-aromatic ring, and any combination of the foregoing.
(50) Furthermore, in the above described compositions wherein the group R.sub.10, the group R.sub.11, or both R.sub.10 and R.sub.11 comprise one or more halides.
(51) Also, in accordance with this invention, the groups R.sub.3 and R.sub.4 independently can comprise the same or different R or S isomer in the above-described compositions. Moreover, the groups R.sub.3 and R.sub.4 can together comprise an isomer that is 2R, 3R; 2S, 3S; 2R, 3S; or 2S, 3R.
(52) In the above described composition, the C4 atom can be asymmetric and can comprise the 4R conformation. Alternatively, the C4 atom can be asymmetric and can comprises the 4S conformation.
(53) The alkene containing compositions above can further comprise a detectable label. Such a detectable label can comprise a ligand or a fluorescent dye. Where the former, the ligand can comprise biotin, digoxygenin or fluorescein. Where a fluorescent dye is contemplated as the detectable label, the fluorescent dye can comprise fluorescein, fluorescein isothiocyanate (FITC), 6-carboxyfluorescein (6-FAM), naphthofluorescein, rhodamine, rhodamine 6G, rhodamine X, rhodol, sulforhodamine 101, tetramethylrhodamine (TAMRA), tetramethylrhodamineisothiocyanate (TRITC), 4,7-dichlororhodamine, eosin, eosinisothiocyanate (EITC), dansyl, hydroxycoumarin, methoxycoumarin or p-(Dimethyl aminophenylazo) benzoic acid (DABCYL), cyanine dyes or derivatives, and any combinations of the foregoing. The foregoing list of fluorescent dyes is illustrative and is not intended to limit this invention.
(54) Additionally, in these alkene compositions, the Cl atom may be asymmetric and may comprise the 1R conformation or the 1S conformation.
(55) In these alkene compositions just described, the heteroatom or heteroatoms can comprise S, N or O, and combinations thereof. As described earlier, the heteroatom or heteroatoms can form a linkage comprising any of the following linkages:
(56) ##STR00017##
(57) and a combination of any of the foregoing. Such linkages have been described (see, e.g., U.S. Pat. No. 4,707,440) and are known to those skilled in the chemical arts. These linkages can take the form above, or they can be used in a reverse or opposite orientation. Thus, the above form of such linkages is in no way intended to be limiting to this invention.
(58) In the alkene containing composition, at least two of the groups, R.sub.1, R.sub.2, R.sub.3, R.sub.4 or R.sub.5, can be joined together to form one or more rings through cyclization as described above.
(59) This invention additionally provides a composition of matter having the structure:
(60) ##STR00018##
wherein R.sub.1 is H or comprises OH, N, S, a phosphate group or a phosphonate group, and any combination thereof; wherein R.sub.2 is H, or comprises a straight carbon chain, a branched carbon chain, a straight carbon chain comprising one or more heteroatoms, a branched carbon chain comprising one or more heteroatoms, a cyclic ring, a heterocyclic ring, an aromatic ring or a hetero-aromatic ring, and any combination of the foregoing; wherein R.sub.3 is H or comprises OH, NR.sub.6R.sub.7, N.sup.+R.sub.6R.sub.7R.sub.8, a straight carbon chain, a branched carbon chain, a straight carbon chain comprising one or more heteroatoms, a branched carbon chain comprising one or more heteroatoms, a cyclic ring, a heterocyclic ring, an aromatic ring or a hetero-aromatic ring, and any combination of the foregoing; wherein R.sub.6, R.sub.7 and R.sub.8 independently comprise H, a straight carbon chain, a branched carbon chain, a straight carbon chain comprising one or more heteroatoms, a branched carbon chain comprising one or more heteroatoms, a cyclic ring, a heterocyclic ring, an aromatic ring or a hetero-aromatic ring, and any combination of the foregoing; wherein R.sub.4 is H or comprises OH, a halide, ═O, a straight carbon chain, a branched carbon chain, a straight carbon chain comprising one or more heteroatoms, a branched carbon chain comprising one or more heteroatoms, a cyclic ring, a heterocyclic ring, an aromatic ring or a hetero-aromatic ring, and any combination of the foregoing; wherein R.sub.5 comprises a straight carbon chain, a branched carbon chain, a straight carbon chain comprising one or more heteroatoms, a branched carbon chain comprising one or more heteroatoms, a cyclic ring, a heterocyclic ring, an aromatic ring or a hetero-aromatic ring, and any combination of the foregoing; and wherein R.sub.3 and R.sub.4 each comprises respectively an isomer that is 2R, 3R; 2S, 3S or 2R, 3S.
(61) In another embodiment, one or more of said R.sub.2, R.sub.3, R.sub.4, R.sub.5, R.sub.6, R.sub.7 or R.sub.8 in the just described composition can comprise at least one double bond or at least one triple bond, or both at least one double bond and at least one triple bond.
(62) Furthermore, the straight carbon chain, the branched carbon chain, the straight carbon chain comprising one or more heteroatoms or the branched carbon chain comprising one or more heteroatoms in R.sub.2, R.sub.3, R.sub.4, R.sub.5, R.sub.6, R.sub.7 or R.sub.8 can comprise an alkyl, a substituted alkyl, an alkene, a substituted alkene, an alkyne or a substituted alkyne, and combinations of any of the foregoing.
(63) Additionally, in this composition, the group R.sub.5 can comprise at least one double bond, so that the composition has the structure:
(64) ##STR00019##
wherein R.sub.9 comprises H, a straight carbon chain, a branched carbon chain, a straight carbon chain comprising one or more heteroatoms, a branched carbon chain comprising one or more heteroatoms, a cyclic ring, a heterocyclic ring, an aromatic ring or a hetero-aromatic ring, and any combination of the foregoing; and wherein R.sub.10 comprises a straight carbon chain, a branched carbon chain, a straight carbon chain comprising one or more heteroatoms, a branched carbon chain comprising one or more heteroatoms, a cyclic ring, a heterocyclic ring, an aromatic ring or a hetero-aromatic ring, and any combination of the foregoing. In another embodiment, the group R.sub.9 or the group R.sub.10, or both R.sub.9 and R.sub.10 can comprise at least one double bond or at least one triple bond, or at least one double bond and at least one triple bond.
(65) Also contemplated by this invention is a composition as just described but where R.sub.5 comprises at least one triple bond, such a composition having the structure:
(66) ##STR00020##
wherein R.sub.9 comprises a straight carbon chain, a branched carbon chain, a straight carbon chain comprising one or more heteroatoms, a branched carbon chain comprising one or more heteroatoms, a cyclic ring, a heterocyclic ring, an aromatic ring or a hetero-aromatic ring, and any combination of the foregoing.
(67) In the various just described compositions, one or more of the groups R.sub.2, R.sub.3, R.sub.4, R.sub.5, R.sub.6, R.sub.7, R.sub.8, R.sub.9 or R.sub.10 can comprise one or more halides.
(68) In a variation of this invention, the group R.sub.5 can comprise an aromatic ring so that the composition has the structure:
(69) ##STR00021##
wherein R.sub.11 comprises H, OH, a halide, a straight carbon chain, a branched carbon chain, a straight carbon chain comprising one or more heteroatoms, a branched carbon chain comprising one or more heteroatoms, a cyclic ring, a heterocyclic ring, an aromatic ring or a hetero-aromatic ring, and any combination of the foregoing; and wherein R.sub.11 and R.sub.12 independently comprise a straight carbon chain, a branched carbon chain, a straight carbon chain comprising one or more heteroatoms, a branched carbon chain comprising one or more heteroatoms, a cyclic ring, a heterocyclic ring, an aromatic ring or a hetero-aromatic ring, and any combination of the foregoing.
(70) In yet a different variation, this invention provides the above described composition where the group R.sub.10 comprises an aromatic group so that the composition has the structure:
(71) ##STR00022##
wherein R.sub.11 comprises H, OH, a halide, a straight carbon chain, a branched carbon chain, a straight carbon chain comprising one or more heteroatoms, a branched carbon chain comprising one or more heteroatoms, a cyclic ring, a heterocyclic ring, an aromatic ring or a hetero-aromatic ring, and any combination of the foregoing; and wherein R.sub.11 and R.sub.12 independently comprise a straight carbon chain, a branched carbon chain, a straight carbon chain comprising one or more heteroatoms, a branched carbon chain comprising one or more heteroatoms, a cyclic ring, a heterocyclic ring, an aromatic ring or a hetero-aromatic ring, and any combination of the foregoing.
(72) In the just described compositions, the groups R.sub.10, R.sub.11, or both R.sub.10 and R.sub.11 comprise one or more halides.
(73) It should also be appreciated that in the above compositions, the C4 atom may be asymmetric and may comprise the 4R conformation or the 4S conformation.
(74) As in other compositions of this invention, the last described compositions can further comprise a detectable label. Such detectable labels are conventional and well known in the art. The detectable label can comprise a ligand or a fluorescent dye. In the case of the former, biotin, digoxygenin or fluorescein are contemplated and are useful. If fluorescent dyes are contemplated, a number of such dyes can be employed, including fluorescein, fluorescein isothiocyanate (FITC), 6-carboxyfluorescein (6-FAM), naphthofluorescein, rhodamine, rhodamine 6G, rhodamine X, rhodol, sulforhodamine 101, tetramethylrhodamine (TAMRA), tetramethylrhodamineisothiocyanate (TRITC), 4,7-dichlororhodamine, eosin, eosinisothiocyanate (EITC), dansyl, hydroxycoumarin, methoxycoumarin or p-(Dimethyl aminophenylazo) benzoic acid (DABCYL), cyanine dyes or derivatives, and any combinations of the foregoing.
(75) In another embodiment for the above described compositions, the Cl atom may be asymmetric and may comprise the 1R conformation or the 1S conformation.
(76) In these compositions just described, the heteroatom or heteroatoms can comprise S, N or O, and combinations thereof. As earlier described, the heteroatom or heteroatoms can form a number of linkages including those of the form
(77) ##STR00023##
and a combination of any of the foregoing.
(78) As in the case of other compositions of the present invention, at least two of the groups R.sub.1, R.sub.2, R.sub.3, R.sub.4 or R.sub.5 can be joined together to form one or more rings. Cyclization and the formation of rings by joining R groups has been described above.
(79) Also provided by the present invention is a composition of matter having the structure:
(80) ##STR00024##
wherein R.sub.1 is H or comprises O, N, S, a phosphate group or a phosphonate group, and any combination thereof; wherein R.sub.2 is H, or comprises a straight carbon chain, a branched carbon chain, a straight carbon chain comprising one or more heteroatoms, a branched carbon chain comprising one or more heteroatoms, a cyclic ring, a heterocyclic ring, an aromatic ring or a hetero-aromatic ring, and any combination of the foregoing; wherein R.sub.3 is H or comprises OH, NR.sub.6R.sub.7, N.sup.+R.sub.6R.sub.7R.sub.8, a straight carbon chain, a branched carbon chain, a straight carbon chain comprising one or more heteroatoms, a branched carbon chain comprising one or more heteroatoms, a cyclic ring, a heterocyclic ring, an aromatic ring or a hetero-aromatic ring, and any combination of the foregoing; wherein R.sub.6, R.sub.7 and R.sub.8 independently comprise H, a straight carbon chain, a branched carbon chain, a straight carbon chain comprising one or more heteroatoms, a branched carbon chain comprising one or more heteroatoms, a cyclic ring, a heterocyclic ring, an aromatic ring or a hetero-aromatic ring, and any combination of the foregoing; wherein R.sub.5 is H or comprises OH, a halide, ═O, a straight carbon chain, a branched carbon chain, a straight carbon chain comprising one or more heteroatoms, a branched carbon chain comprising one or more heteroatoms, a cyclic ring, a heterocyclic ring, an aromatic ring or a hetero-aromatic ring, and any combination of the foregoing; and wherein R.sub.9 and R.sub.10 independently comprise a straight carbon chain, a branched carbon chain, a straight carbon chain comprising one or more heteroatoms, a branched carbon chain comprising one or more heteroatoms, a cyclic ring, a heterocyclic ring, an aromatic ring or a hetero-aromatic ring, and any combination of the foregoing.
(81) In another embodiment for the just described composition, one or more of the groups, R.sub.2, R.sub.3, R.sub.4, R.sub.5, R.sub.6, R.sub.7, R.sub.8, R.sub.9 or R.sub.10, can comprise at least one double bond or at least one triple bond, or both at least one double bond and at least one triple bond. In yet another embodiment, the straight carbon chain, the branched carbon chain, the straight carbon chain comprising one or more heteroatoms or the branched carbon chain comprising one or more heteroatoms in R.sub.2, R.sub.3, R.sub.4, R.sub.5, R.sub.6, R.sub.7, R.sub.8, R.sub.9 or R.sub.10 can comprise an alkyl, a substituted alkyl, an alkene, a substituted alkene, an alkyne or a substituted alkyne, and combinations of any of the foregoing. Moreover, one or more of the groups, R.sub.2, R.sub.3, R.sub.4, R.sub.5, R.sub.6, R.sub.7, R.sub.8, R.sub.9 or R.sub.10, can comprise one or more halides.
(82) It should also be appreciated that in these compositions, R.sub.3 and R.sub.4 can independently comprise the same or different R or S isomer. Moreover, R.sub.3 and R.sub.4 together can comprise an isomer that is 2R, 3R; 2S, 3S; 2R, 3S; or 2S, 3R. Furthermore, in these compositions, the C4 atom may be asymmetric and may comprise the 4R conformation or the 4S conformation.
(83) These last described compositions can further comprise a detectable label, which are conventional and known in the art. Such detectable labels can comprise a ligand or a fluorescent dye. In the case of the former, biotin, digoxygenin or fluorescein are contemplated but should not be considered limiting. In the case of the latter, many fluorescent dyes are known in the art, but for the sake of illustration, the following are useful in accordance with this invention: fluorescein, fluorescein isothiocyanate (FITC), 6-carboxyfluorescein (6-FAM), naphthofluorescein, rhodamine, rhodamine 6G, rhodamine X, rhodol, sulforhodamine 101, tetramethylrhodamine (TAMRA), tetramethylrhodamineisothiocyanate (TRITC), 4,7-dichlororhodamine, eosin, eosinisothiocyanate (EITC), dansyl, hydroxycoumarin, methoxycoumarin or p-(Dimethyl aminophenylazo) benzoic acid (DABCYL), cyanine dyes or derivatives, and any combinations of the foregoing.
(84) In other aspects for these compositions, the Cl atom may be asymmetric and comprise the 1R conformation. Alternatively, the Cl atom may be asymmetric and comprise the is conformation.
(85) In the last described compositions of the present invention, the heteroatom or heteroatoms can comprise S, N or O, and combinations thereof. Furthermore, such heteroatom or heteroatoms can form a number of linkages, including the following list which should be considered limiting but only illustrative:
(86) ##STR00025##
and a combination of any of the foregoing.
(87) In these compositions described above, at least two of the groups, R.sub.1, R.sub.2, R.sub.3, R.sub.4 or R.sub.5, can be joined together to form one or more rings through the cyclization of R groups using conventional methods of chemical synthesis.
(88) This invention also provides a composition of matter having the structure:
(89) ##STR00026##
wherein R.sub.1 is H or comprises O, N, S, a phosphate group or a phosphonate group, and any combination thereof; wherein R.sub.2 is H, or comprises a straight carbon chain, a branched carbon chain, a straight carbon chain comprising one or more heteroatoms, a branched carbon chain comprising one or more heteroatoms, a cyclic ring, a heterocyclic ring, an aromatic ring or a hetero-aromatic ring, and any combination of the foregoing; wherein R.sub.3 is H or comprises OH, NR.sub.6R.sub.7, N.sup.+R.sub.6R.sub.7R.sub.8, a straight carbon chain, a branched carbon chain, a straight carbon chain comprising one or more heteroatoms, a branched carbon chain comprising one or more heteroatoms, a cyclic ring, a heterocyclic ring, an aromatic ring or a hetero-aromatic ring, and any combination of the foregoing; wherein R.sub.6, R.sub.7 and R.sub.8 independently comprise H, a straight carbon chain, a branched carbon chain, a straight carbon chain comprising one or more heteroatoms, a branched carbon chain comprising one or more heteroatoms, a cyclic ring, a heterocyclic ring, an aromatic ring or a hetero-aromatic ring, and any combination of the foregoing; wherein R.sub.5 is H or comprises OH, a halide, ═O, a straight carbon chain, a branched carbon chain, a straight carbon chain comprising one or more heteroatoms, a branched carbon chain comprising one or more heteroatoms, a cyclic ring, a heterocyclic ring, an aromatic ring or a hetero-aromatic ring, and any combination of the foregoing; wherein R.sub.9 and R.sub.10 independently comprise a straight carbon chain, a branched carbon chain, a straight carbon chain comprising one or more heteroatoms, a branched carbon chain comprising one or more heteroatoms, a cyclic ring, a heterocyclic ring, an aromatic ring or a hetero-aromatic ring, and any combination of the foregoing.
(90) In the last described composition, one or more of the groups, R.sub.2, R.sub.3, R.sub.4, R.sub.5, R.sub.6, R.sub.7, R.sub.8, R.sub.9 or R.sub.10, can comprise at least one double bond or at least one triple bond, or both at least one double bond and at least one triple bond. Furthermore, the straight carbon chain, the branched carbon chain, the straight carbon chain comprising one or more heteroatoms or the branched carbon chain comprising one or more heteroatoms in R.sub.2, R.sub.3, R.sub.4, R.sub.5, R.sub.6, R.sub.7 or R.sub.8 can comprise an alkyl, a substituted alkyl, an alkene, a substituted alkene, an alkyne or a substituted alkyne, and combinations of any of the foregoing. Moreover, one or more of the groups, R.sub.2, R.sub.3, R.sub.4, R.sub.5, R.sub.6, R.sub.7, R.sub.8, R.sub.9 or R.sub.10, can comprise one or more halides.
(91) In other embodiments for this composition, R.sub.3 and R.sub.4 can independently comprise the same or different R or S isomer. In a further aspect, R.sub.3 and R.sub.4 can together comprise an isomer that is 2R, 3R; 2S, 3S; 2R, 3S; or 2S, 3R.
(92) As described for other compositions of the present invention, these last compositions can also comprise a detectable label which are conventional and known in the art. Such detectable labels can comprise a ligand or a fluorescent dye. In the case of the former, biotin, digoxygenin or fluorescein are contemplated but are not intended to be limiting. In the case of the latter, many fluorescent dyes are known. For purposes of illustration, these can include fluorescein, fluorescein isothiocyanate (FITC), 6-carboxyfluorescein (6-FAM), naphthofluorescein, rhodamine, rhodamine 6G, rhodamine X, rhodol, sulforhodamine 101, tetramethylrhodamine (TAMRA), tetramethylrhodamineisothiocyanate (TRITC), 4,7-dichlororhodamine, eosin, eosinisothiocyanate (EITC), dansyl, hydroxycoumarin, methoxycoumarin or p-(Dimethyl aminophenylazo) benzoic acid (DABCYL), cyanine dyes or derivatives, and any combinations of the foregoing.
(93) The Cl atom in these compositions may be asymmetric and may comprise the 1R conformation or the 1S conformation.
(94) In further aspects, the heteroatom or heteroatoms can comprise S, N or O, and combinations thereof. Such heteroatom or heteroatoms can form a linkage which are described in the art. For illustration purposes only, these linkages can comprise any of the following
(95) ##STR00027##
and a combination of any of the foregoing. Moreover, these linkages can take the above configuration, or they can be used in reverse or opposite configurations. In other words, the orientation can be varied and is not limited to the precise form shown above.
(96) As described earlier, in these last compositions, at least two of the groups, R.sub.1, R.sub.2, R.sub.3, R.sub.4 or R.sub.5, can be joined together to form one or more rings. Such cyclization and ring formation using R groups in the compounds and analogs can be carried out using conventional methods. The rings can be joined covalently or non-covalently.
(97) Pharmacokinetics and Patient Management
(98) Another important aspect of the present invention is a method for monitoring the course of pharmacokinetics of a drug after administration to a subject or patient. In this method, a drug comprising any of the compounds described above is administered to a subject or patient. The administered drug can be detected at selected intervals, thereby monitoring the course of pharmacokinetics of the drug. Such a method is useful in studying and monitoring patient management because the course and progress of the administered drug can be followed within cells, tissues, organs or the subject or patient as a whole. By attaching signaling moieties to the compounds and analogs of this invention, in vivo imaging can be carried out following the administration of the drug to detect the presence of the drug within cells of the subject or patient. Cell staining can also be carried out to locate the presence of the drug within cells of the subject or patient's sample or specimen. Radioactivity in the form of radioactively labeled drugs, i.e., compounds or analogs, can also be utilized.
(99) Indications/Diseases
(100) Yet another important feature of this invention is a method for treating tumors of the central nervous system. This method comprises the step of administering to a subject or patient having a tumor or tumors of the central nervous system any of the above-described compounds of the present invention. The tumors of the central nervous system can comprise various forms known in the art, including glioblastoma, and more particularly, glioblastoma multiforme (GBM). Useful in the treatment of GBM is the compound below which comprises
(101) ##STR00028##
(102) The above-described compounds and analogs of the present invention are useful for treatment and monitoring of a number of indications and diseases. In Ser. No. 12/387,228, filed Apr. 29, 2009 (contents incorporated by reference), the following indications and diseases are disclosed: killing or damaging cancer cells (leukemia cells, breast cancer cells, prostate cancer cells, pancreatic cancer cells, glioma cancer cells, colon cancer cells, lung cancer cells, ovarian cancer cells, melanoma cells, renal cancer cells); causing cancer cells to undergo apoptosis; inhibiting growth, metastasis and development of chemoresistance in cancer cells, treating or reducing symptoms of leukemia; increasing the ability of anticancer agent to kill cancer cells; inhibiting survival signaling in cancerous cells; attenuating immune reactivity; and reducing symptoms of multiple sclerosis.
(103) In addition to the above-named indications and diseases, the compounds and analogs of the present invention are useful for diseases associated with neural cell death or muscular cell death, such as Parkinson's disease, Alzheimer's disease, amniotropic lateral sclerosis and muscular dystrophy, AIDS, fulminant hepatitis, and diseases linked to degeneration of the brain (e.g., Creutzfeld-Jakob disease, retinitis pigmentosa and cerebellar degeneration, myelodysplasis (e.g., aplastic anemia, ischemic diseases such as myocardial infarction and stroke, hepatic diseases such as alcoholic hepatitis, hepatitis B and hepatitis C, joint diseases such as osteoarthritis, atherosclerosis, alopecia, damage to the skin due to UV light, lichen planus, atrophy of the skin, cataract and graft rejections. These compounds and analogs described herein are applicable to immunopathology caused by influenza virus. Other diseases include those implicating caveolar endocytosis, plasma membrane microdomain formation, transmembrane signaling or integrin function (e.g., inflammatory diseases including cancer, MS, prothrombotic risk, ulcerative colitis and renal disease). These might occur as the result of infection by certain bacteria, fungi or viral species, e.g., SV40 virus.
(104) Among other uses of the compounds and analogs of the present invention are inhibition of angiogenesis in tumors, modulation of the immune system by altering lymphocyte trafficking for treatment of autoimmune diseases or prolongation of allograft transplant survival, and preventing, inhibiting or treating neuropathic pain. Also within the scope of use for the present compounds and analogs are the treatment or prevention of disorders or syndromes including cell proliferative disorders, e.g., cancer, ischemia or restenosis. The compounds and analogs of the present invention can also be used to screen for a modulator of disorders/syndromes including the aforementioned cell proliferative disorders (cancers, ischemia or restenosis).
(105) These compounds and analogs are applicable to treating or attenuating complications in subjects or patients suffering from trauma or sepsis.
(106) Other pathological conditions can be addressed through the use and application of the present compounds and analogs, including cardiovascular diseases, diabetes, stroke, autoimmune and inflammatory diseases, allergic diseases such as dermatitis, T helper-1, related diseases, chronic obstructive pulmonary disease, asthma, cancer and neurodegenerative disorders, some of which have already been described above.
(107) The following examples are offered by way of illustration and not by way of limitation to the present invention.
Example 1: Synthesis of BML-258
(108) The compound described and used below, BML-258, was synthesized according to the following protocol and procedures.
BML-258 Synthetic Protocol
(109) ##STR00029##
(110) To 4-n-pentylphenylacetylene 1 (3.343 g, 0.01776 mol) in 65 mL dry THF at −20° C. under an atmosphere of N2 was added n-BuLi (10.2 mL of 1.6M in hexanes, 0.01628 mol) dropwise. The reaction mixture was stirred at −20° C. for 2 hours. Methyl (R)-(+)-3-(t-butoxycarbonyl)-2,2-dimethyl-4-oxazolidinecarboxylate 2 (3.393 g, 0.01480 mol) in 25 mL dry THF was added via cannula/N2. The reaction was stirred overnight at −20° C. overnight. TLC (20% ethyl acetate/hexanes) indicated completeness of reaction. The mixture was diluted with Et.sub.2O and carefully washed with water and brine. Flash column chromatography (12% Ethyl acetate/hexanes, silica gel) yielded 4.50 g (73%) of a mixture of erythro and threo products. Preparative HPLC (Dynamax Si, 15% Ethyl acetate/hexanes, 260 nm) yielded 3.71 g erythro 3 and 0.49 g threo. 1H NMR (CDCl.sub.3) erythro: 7.34-7.32 (d, 2H), 7.12-7.09 (d, 2H), 5.19-5.16 (d, 1H), 4.73-4.70 (d, 1H), 4.26-3.96 (m, 3H), 2.61-2.56 (t, 2H), 1.62 (s, 3H), 1.60-1.50 (m, 2H), 1.54 (s, 3H), 1.50 (s, 9H), 1.34-1.27 (m, 4H), 0.91-0.86 (t, 3H).
(111) ##STR00030##
(112) To oxazolidine 3 (3.48 g, 0.00814 mol) in 100 mL MeOH was added Amberlyst-15 (200 mg). The reaction was stirred overnight at room temperature. TLC (30% Ethyl acetate/hexanes) indicated completeness of reaction. The mixture was filtered and flash chromatographed (5% MeOH/methylene chloride, silica gel) to give 2.44 g (79%) of aminoalcohol 4. 1H NMR (CDCl.sub.3): 7.34-7.32 (d, 2H), 7.12-7.09 (d, 2H), 5.45-5.38 (d, 1H), 4.88-4.82 (m, 1H), 4.25-4.19 (m, 1H), 3.91- 3.80 (m, 2H), 3.26-3.23 (d, 1H), 2.61-2.56 (t, 2H), 1.63-1.54 (m, 2H), 1.49 (s, 9H), 1.35-1.26 (m, 4H), 0.91-0.86 (t, 3H).
(113) ##STR00031##
(114) To alkyne 4 (2.44 g, 0.00646 mol) in 125 mL dry Et.sub.2O at 0° C. under an atmosphere of N2 was added Red-Al (9.85 mL of 65 wt % in toluene, 0.03232 mol) dropwise. The reaction was allowed to warm to room temperature following the addition and was stirred for 36 hours. TLC (40% Ethyl acetate/hexanes) indicated completeness of reaction. The reaction was cooled to 0° C. and carefully quenched with 15% NaOH solution. This mixture was stirred vigorously until both layers were clear (45 min). The layers were separated and the aqueous layer extracted with chloroform (3×). The combined organic layers were washed with 15% NaOH, water and brine. Flash chromatography (gradient of 5% MeOH/methylene chloride to 20% MeOH/methylene chloride+1% NH.sub.4OH, silica gel) yielded 1.76 g (72%) of trans alkene 5. 1H NMR (CDCl.sub.3): 7.31-7.29 (d, 2H), 7.15-7.12 (d, 2H), 6.70-6.65 (d, 1H, J=16 Hz), 6.26-6.18 (dd, 1H, J=16 Hz), 5.35- 5.32 (d, 1H), 4.55-4.49 (m, 1H), 4.03-3.96 (m, 1H), 3.80-3.68 (m, 2H), 2.83-2.79 (d, 1H), 2.61-2.56 (t, 2H), 1.65-1.55 (m, 2H), 1.44 (s, 9H), 1.34-1.25 (m, 4H), 0.91-0.86 (t, 3H).
(115) ##STR00032##
(116) To BOC-alkene 5 (0.350 g, 0.00092 mol) in 20 mL dry THF under an atmosphere of N.sub.2 was carefully added DIBAL (9.22 mL of 1M in THF, 0.00922 mol) at room temperature. Following the addition, the reaction was brought to reflux. After 24 hours of reflux, the mixture was cooled to room temperature and an additional 5.0 mL DIBAL solution (0.00500 mol) was added. Reflux was resumed for another 24 hours. The reaction was cooled to 0° C. and carefully quenched with water (0.60 mL), 15% NaOH (0.60 mL) and water again (1.50 mL). THF (50 mL) was added and the mixture stirred vigorously for 15 minutes. Na.sub.2SO.sub.4 (2 g) and celite (2 g) were then added and stirring was continued for 30 minutes while warming to room temperature. The mixture was filtered and the filter cake extracted with copious THF. Flash chromatography (gradient of 2% MeOH/methylene chloride to 10% MeOH/methylene chloride+0.75% NH.sub.4OH) yielded 0.187 g (73%) of amine 6. 1H NMR (CDCl.sub.3): 7.31-7.29 (d, 2H), 7.15-7.12 (d, 2H), 6.68-6.63 (d, 1H, J=16 Hz), 6.22-6.14 (dd, 1H, J=16 Hz), 4.51-4.47 (m, 1H), 3.80-3.74 (m, 3H), 2.61-2.56 (t, 2H), 2.50 (s, 3H), 2.40-2.10 (broad, 2H), 1.65-1.55 (m, 2H), 1.34-1.25 (m, 4H), 0.91-0.86 (t, 3H). HRMS (MH+): Calc. −278.2120, Found −278.2119.
(117) ##STR00033##
(118) To amine 6 (0.335 g, 0.00121 mol) in 15 mL dry Et.sub.2O at 0° C. was added 3.0 mL of 1M HCl/Et.sub.2O. A white precipitate formed immediately. After stirring for 15 minutes at room temperature, the precipitate was filtered and washed with Et.sub.2O to give 0.325 g (89%) of BML-258. 1H NMR (DMSO): 8.75-8.50 (bd, 2H), 7.38-7.34 (d, 2H), 7.19-7.15 (d, 2H), 6.65-6.60 (d, 1H, J=16 Hz), 6.30-6.22 (dd, 1H, J=16 Hz), 5.84-5.82 (m, 1H), 5.30-5.25 (m, 1H), 4.60-4.54 (m, 1H), 3.76-3.72 (m, 2H), 3.18-3.10 (m, 1H), 2.64 (s, 3H), 2.56-2.50 (t, 2H), 1.60-1.50 (m, 2H), 1.34-1.23 (m, 4H), 0.90-0.85 (t, 3H).
(119) SK1-I, (2R,3S,4E)-N-methyl-5-(4′-pentylphenyl)-2-aminopent-4-ene-1,3-diol (BML-258), was synthesized by BIOMOL International (Plymouth Meeting, Pa.) as described in Example 1. Sphingosine and N,N-dimethylsphingosine were obtained from BIOMOL. [γ-.sup.32P]ATP (3000 Ci/mmol) was purchased from Perkin Elmer (Boston, Mass.). Boc-D-FMK (BOC), Z-VAD-FMK (ZVAD) and etoposide were from EMD Biosciences (San Diego, Calif.). Terminal deoxynucleotidyl transferase Br-dUTP nick end labeling (TUNEL) kit for flow cytometry was from Sigma Aldrich (St. Louis, Mo.). TUNEL kit for immunohistochemistry was from Roche Applied Science (Indianapolis, Ind.). FITC-4 labeled annexin V/propidium iodide staining kit for apoptosis was from BD Biosciences (San Jose, Calif.).
Example 2: General Procedure for Synthesis of SK1-I Analogs from Alkynes
(120) ##STR00034##
(121) To alkyne, 1, (1.2 eq) in dry THF at −20° C. was added n-BuLi (1.1 eq. of 1.6M hexanes) drop wise. The reaction was stirred at −20° C. for 2 hours. The aldehyde, 2, (1 eq., dissolved in dry THF, was added drop wise. The reaction was placed in a −20° C. freezer overnight. After approximately 18 hours, the reaction was diluted with diethyl ether and washed with water and brine. Flash column chromatography yielded a mixture of erythro and threo products. The pure erythro compound, 3, was isolated via HPLC.
(122) ##STR00035##
(123) The resulting erythro oxazolidine, 3, was stirred with Amberlyst 15 resin in methanol overnight to remove the acetonide protecting group. Flash column chromatography yielded the Boc protected aminodiol, 4.
(124) ##STR00036##
(125) To alkyne aminodiol, 4, (1 eq.) in diethyl ether at 0° C. was added Red-Al (5 eq. of 65 wt % in toluene) drop wise. The reaction was allowed to warm to room temperature overnight. After approximately 18 hours of reaction, the mixture was cooled to 0° C. and quenched with 15% NaOH (5 eq). Flash column chromatography yielded the alkenyl aminodiol 5.
(126) ##STR00037##
(127) To alkenylaminodiol, 5, (1 eq) in dry THF at 0° C. was added DIBAL (10 eq. of 1M/THF) drop wise. Following the addition, the reaction was gradually warmed to room temperature and then refluxed overnight. After 24 hours of reaction, the mixture was cooled to 0° C. and quenched successively with water (4 eq), 15% NaOH (4 eq) and water (10 eq). Flash column chromatography yielded the target compound, 6.
(128) ##STR00038##
Analogs of general structure, 7, are prepared using the appropriately substituted alkyne following the general procedure. R=3,4-dimethoxy; 4-phenyl; 3-pentyl.
Synthesis of SK1-I Analogs with Various N-Alkyl Groups
(129) The appropriately substituted BOC-protected SK1-I analog is synthesized using the general procedure outlined previously.
(130) ##STR00039##
(131) To BOC-protected SKI-1, 8, (1 eq) in methanol at 0° C. is bubbled hydrogen chloride gas until the mixture is saturated. The reaction is stirred at room temperature until TLC indicates completeness of reaction. The resulting solution is evaporated to dryness and dissolved in dry pyridine. Acetic anhydride (1 eq.) is added and the reaction stirred at room temperature until complete by TLC. Flash chromatography yielded the monoacetyl derivative, 9.
(132) ##STR00040##
(133) To N-acetyl-SKI-1, 9, (1 eq) in dry THF at 0° C. is added Lithium Aluminum Hydride (4 eq. of 1M/THF). Following the addition, the reaction mixture is warmed to room temperature and then refluxed overnight. The mixture was then cooled to 0° C. and quenched successively with water (4 eq), 15% NaOH (4 eq) and water (10 eq). Flash column chromatography yielded the target alkylamine, 10.
Synthesis of Di-N-Alkyl SK1-I Analogs
(134) ##STR00041##
(135) To SK1-I, 11, (1 eq) in dry THF at room temperature was added methyl iodide (1 eq). The reaction was stirred until TLC indicated complete reaction. Flash column chromatography yielded the desired compound, 12.
(136) Materials and Methods
(137) Cell culture. U373-MG and LN229 human glioblastoma cells (ATTC, Manassas, Va.) were cultured in DMEM supplemented with 5% FCS. Primary human non-established glioblastoma GBM6 cells were kindly provided by Dr. C. David James and were passaged as tumors in nude mice and subcultured for 1 week following isolation from tumors in media containing 2% FCS to prevent growth of contaminating rodent fibroblasts and then cultured in 5% FCS as described (Yacoub et al., Mol Cancer Ther 7:314-329, 2008). LN229 cells were transfected with H2B-EGFP plasmid and stable colonies were isolated following selection with 1 mg/ml of G418. LN229-H2B-EGFP cells were passaged as tumors as described above.
(138) Xenograft tumors. Adult male NCI nu/nu mice were purchased from NCI (Frederick, Md.). All animal studies were conducted in the Animal Research Core Facility at VCU School of Medicine in accordance with the institutional guidelines. LN229 cells (1×10.sup.6) were injected in the flanks (4 sites per mouse). Palpable tumors appeared in about one week. Five days later, when tumors reached 3-4 mm in diameter, mice were randomly separated into 2 groups and injected i.p. with saline or SK1-I (10 mg/kg) every other day. Tumor measurements were made with calipers, and tumor volume was calculated using the formula: (π×[length in millimeters]×[width in millimeters]2)/6. At the end of the experiment, the animals were euthanized and the tumors removed, fixed in formalin and embedded in paraffin, or frozen in liquid nitrogen.
(139) Intracranial LN229 xenograft tumors. Adult female NCI nu/nu mice were anesthetized and LN229-H2B-EGFP cells (2.5×10.sup.4 in 1 μl PBS) were stereotactically implanted in the putamen region (1 mm anterior and 2.5 mm lateral to the Bregma at the depth of 3.5 mm at a rate of 0.1 μl/min). Mice were monitored for recovery until complete wakening. 20 days after implantation, mice were injected i.p. with SK1-I (20 mg/kg in PBS) every other day. Mice were observed daily following tumor implantation and were euthanized on reaching a moribund state.
(140) Details about infection of cells with recombinant adenoviruses, cell proliferation and cell death assays, immunohistochemistry, immunocytochemistry, and confocal microscopy are presented in the information below.
(141) Results
(142) SK1-I Potently Inhibits Growth and Survival of Human Glioblastoma Cells
(143) Previous studies demonstrated that S1P and SphK1, the kinase that produces it, play critical roles in growth and survival of glioblastoma cells (Van Brocklyn et al., J Neuropathol Exp Neurol 64:695-705, 2005; Van Brocklyn et al., Cancer Lett 181:195-204, 2002; and Radeff-Huang et al. J Biol Chem 282:863-870, 2007). In agreement, downregulation of SphK1 expression decreased growth of both U373 cells, which express mutated PTEN, and LN229 cells expressing wild type PTEN, in serum-free medium (
(144) The first SphK1-specific inhibitor, SK1-I, was recently described (Paugh et al., Blood 283:3365-3375, 2008). SK1-I inhibited growth of both U373 (
(145) SK1-I Inhibits Migration and Invasion of Glioblastoma Cells
(146) As S1P and SphK1 have been shown to regulate migration and invasion of glioblastoma cells (Lepley et al. Cancer Res 65:3788-3795, 2005; Young et al. Exp Cell Res 313:1615-1627, 2007; Van Brocklyn et al. Cancer Lett 199:53-60, 2003; and Malchinkhuu et al. Oncogene 24:6676-6688, 2005), and SphK1 regulates actin cytoskeletal dynamics (Kusner et al. J Biol Chem 282:23147-23162, 2007) and lamellipodia formation (Maceyka et al. Mol Cell Biol 28:5687-5697, 2008), it was of interest to examine whether inhibition of SphK1 by SK1-I correlated with changes in reorganization of the actin cytoskeleton. F-actin was distributed across unstimulated U373 cells, as revealed by staining with Alexa488-conjugated phalloidin (
(147) These results support the notion that SphK1 activity is required for actin filament dynamics (Kusner et al. J Biol Chem 282:23147-23162, 2007). Therefore, the effect of SK1-I on migration and invasion of glioma cells was next examined. Directed motility (chemotaxis) of U373 cells toward serum or EGF in Boyden chamber assays was reduced by SK1-1 (
(148) SK1-I Reduces Basal and Stimulated Akt Phosphorylation
(149) S1P-induced glioblastoma cell proliferation is greatly suppressed by inhibition of ERK1/2 and PI3K/Akt pathways (Van Brocklyn et al. Cancer Lett 181:195-204, 2002). Thus, it was of interest to examine the effects of SK1-I on these signaling pathways. We utilized phospho-specific antibodies to examine phosphorylation of Akt at Thr308 in the activation loop and at Ser473 at the C-terminus, which are required for full activation (Haas-Kogan et al. Curr. Biol 8:1195-1198, 1998). Consistent with their expression of wild-type PTEN, LN229 cells have low basal Akt phosphorylation, which was rapidly increased by serum, LPA, and EGF, to a lesser extent (
(150) To substantiate that the effects of SK1-I were due to its ability to inhibit SphK1, S1P add-back experiments were carried out. Consistent with the reduction in levels of S1P by SK1-I (
(151) Because downregulation of SphK1 not only decreases S1P, it also increases ceramide levels (Maceyka et al. J Biol Chem 280:37118-37129, 2005; Pchejetski et al. Cancer Res 65:11667-11675, 2005; Taha et al. FASEB J 20:482-484, 2006; Berdyshev et al. Cell Signal 18:1779-1792, 2006), it was of interest to examine the effects of inhibition of SphK1 with SK1-I on these sphingolipid metabolites that have been reported to have opposing effects on cell growth and apoptosis (Cuvillier et al. Nature 381:800-803, 1996; and Hannun et al. Nat Rev Mol Cell Biol 9:139-150, 2008). There was a significant reduction in S1P levels within 20 min after addition of SK1-I (
(152) Inhibition of c-Jun N-Terminal Kinase Attenuates SK1-I-Induced Cell Death
(153) In agreement with many previous studies showing that downregulation of SphK1 and ceramide elevation are associated with increased apoptosis (reviewed in (Hannun et al. Nat Rev Mol Cell Biol 9:139-150, 2008; Cuvillier, O. Expert Opin Ther Targets 12:1009-1020, 2008; and Shida et al. Curr Drug Targets 9:662-673, 2008), treatment with SK1-I induced apoptosis of LN229 cells as demonstrated by increased cleavage of PARP (
(154) Sphingolipid metabolites, S1P versus sphingosine and ceramide, usually have opposing effects on Akt and the stress-related c-Jun NH2-terminal kinase (JNK) pathways (Cuvillier et al. Nature 381:800-803, 1996; and Hannun et al. Nat Rev Mol Cell Biol 9:139-150, 2008). Concomitant with the inactivation of the cytoprotective Akt pathway, exposure of LN229 cells to SK1-I was accompanied by delayed activation of JNK (
(155) The output of ERK1/2 and Akt signaling versus JNK signaling represents a key homeostatic mechanism that in many cells regulates the balance between cell survival and cell death processes (Xia et al. Science 270:1326-1231, 1995). Thus, the effects of a variety of agents that perturb these signaling pathways on SK1-I mediated lethality was next examined. Inhibition of MEK1/2, PI3K, and p38 by U0126, LY294002, SB202190, respectively, enhanced SK1-I lethality, whereas inhibition of JNK by SP600125 markedly attenuated the effects of SK1-I in both U373 and LN229 cells (
(156) Effect of SK1-I on Primary Non-Established Glioblastoma
(157) Observations with SK1-I to primary non-established human GBM6 glioblastoma cells was expanded. GBM6 glioblastoma cells have been shown to produce invasive, diffuse tumors in the brains of mice (Giannini et al. Neuro-oncol 7:164-176, 2005; and Yacoub et al. Cancer Biol Ther 7:917-933, 2008). GBM6 express mutant p53, wild-type PTEN, and EGFRvIII, a constitutively activated mutant form of EGFR (Yacoub et al. Cancer Biol Ther 7:917-933, 2008; and Yacoub et al. Cancer Biol Ther 3:739-751, 2004). Similar to LN229 and U373 cells, growth of GBM6 cells was greatly reduced by SK1-I (
(158) SK1-I Reduces Tumor Growth in Mice
(159) Encouraged by these findings, the effect was examined of SK1-I on subcutaneous tumor growth of LN229 cells, which are fairly invasive and grow phenotypically similar to invasive gliomas in situ (Nakamizo et al. Cancer Res 65:3307-3318, 2005). Tumors appeared as palpable masses about one week after subcutaneous injection of one million cells in the flank of a mouse (
(160) SK1-I Enhances Survival of Mice with LN229 Orthotopic Tumors
(161) It was of interest to also examine whether SK1-I was effective in the more clinically relevant orthotopic model of intracranially implanted LN229 cells. On the basis of trial growth rate analyses, intraperitoneal treatment with SK1-I was initiated at day 20 after intracranial implantation of GFP-labeled LN229 cells when the tumors would be established and the mice would be expected to be asymptomatic. Animals in the vehicle treated group began to show symptoms of tumor burden at day 40 and were euthanized on reaching a moribund state between day 43 and 49 (
(162) Discussion
(163) Currently available therapies only minimally improve the prognosis of GBM patients and new therapeutic targets are desperately needed. Accumulating evidence suggests that SphK1 is an attractive new target. SphK1 message and protein levels are upregulated in GBM (Van Brocklyn et al. J Neuropathol Exp Neurol 64:695-705, 2005) and in astrocytoma tissues compared to adjacent normal brain (Li et al. Clin Cancer Res 14:6996-7003, 2008). Patients whose tumors were among the highest one-third with regard to SphK1 expression survived a median of 102 days, whereas those within the lower two-thirds survived a median of 357 days (Van Brocklyn et al. J Neuropathol Exp Neurol 64:695-705, 2005). High expression of SphK1 was shown to be a predictor of poor prognosis for astrocytoma patients (Li et al. Clin Cancer Res 14:6996-7003, 2008).
(164) Here targeting SphK1 with SK1-I has been shown to suppress proliferation of several human glioblastoma cell lines, including U373, LN229, U87, and U118 cells as well as non-established GBM6 cells. SK1-I also potently induced apoptosis and inhibited invasion of these cells. Similar to the effects of SK1-I, downregulation of SphK1 expression has been shown to reduce glioblastoma cell growth, survival, migration, and invasion (Van Brocklyn et al. J Neuropathol Exp Neurol 64:695-705, 2005). SK1-I was effective in GBM that are mutant for PTEN or p53 or have a constitutively activated form of EGFR. This is particularly important since more than 80% of GBMs show strong Akt activation, many due to lost or mutated PTEN. Activation of EGFR is also a critical pathogenetic event, with amplifications, mutations, or rearrangements commonly observed (Wen et al. N Eng J Med 359:492-507, 2008). SK1-I also showed significant antitumor activity in vivo, inducing GBM tumor cell apoptosis and reducing tumor vascularization.
(165) The mechanisms by which inhibition of SphK1 by SK1-I so profoundly reduces proliferation and survival of GBM in vitro and inhibits tumor growth in vivo is now beginning to become unraveled. SK1-I rapidly suppresses phosphorylation of Akt and its targets p70S6K and GSK3□, and thus interferes with signaling through the Akt pathway, which is frequently activated in gliomagenesis (Wen et al. N Eng J Med 359:492-507, 2008). This inhibition by SK1-I is not due to a direct effect on Akt, as it did not inhibit Akt activity in an in vitro kinase assay (Paugh et al. Blood 112:1382-1391, 2008). It is also well accepted that S1P produced by activation of SphK1 is released from cells and stimulates its receptors that are linked to activation of Akt. Indeed, the reduction of S1P levels by SK1-I is rapid and could contribute to decreased phosphorylation of Akt. The effects of SK1-I may not be mediated solely by reduction of “inside-out signaling” by S1P but also by reduction of intracellular S1P. These results are consistent with previous reports showing that SphK1 and intracellular S1P are critical for Akt activation and cell proliferation independently of S1P receptors (Radeff-Huang et al. J Biol Chem 282:863-870, 2007; and Oliviera et al. J. Biol Chem 278:46452-46460, 2003). Moreover, in 1321N1 glioblastoma cells, DNA synthesis and cyclin D expression was increased in a SphK1- and Akt-dependent manner independently of S1P receptors (Radeff-Huang et al. J Biol Chem 282:863-870, 2007). In agreement, overexpression of SphK1 promotes cell survival and growth even in cells devoid of functional S1PRs (Olivier et al., ibid.). Similarly, overexpression of SphK1 is a S1P receptor-independent oncogenic event in progression of erythroleukemia that involves activation of Akt (Le Scolan et al. Blood 106:1808-1816, 2005). In agreement with previous results in leukemia cells (Paugh et al. Blood 112:1382-1391, 2008), SK1-I not only inhibited S1P production in glioma cells, it also increased levels of its pro-apoptotic precursor ceramide that has been shown to cause growth inhibition and apoptosis by inhibiting Akt (Hannun et al. Nat Rev Mol Cell Biol 9:139-150, 2008). Thus, biphasic inhibition of Akt is likely due to a rapid decrease in intracellular S1P and later sustained increases in ceramide. Furthermore, a recent study in glioma cells showed that inhibition of the Akt pathway strongly upregulated ceramide levels by inhibiting conversion of ceramide to complex sphingolipids due to reduction of ER to Golgi trafficking of ceramide (Giussani et al. J Biol Chem 284:5088-5096, 2009). Because ceramide in turn further inhibits Akt, this engages a vicious cycle that amplifies the apoptotic effect of SK1-I. Activation of JNK may also be due to inhibition of Akt following SK1-I treatment as several studies raised the intriguing possibility that the ability of Akt to inhibit JNK signaling is due to phosphorylation of specific targets in this pathway (Kim et al. Mol Cell Biol 21:893-901, 2001; and Barthwal et al. J Biol Chem 278:3897-3902, 2003).
(166) Downregulation of SphK1, similar to SK1-I, causes a marked elevation in levels of ceramide (Maceyka et al. J Biol Chem 280:37118-37129, 2005; Pchejetski et al. Cancer Res 65:11667-11675, 2005; Taha et al. FASEB J 20:482-484, 2006; Berdyshev et al. Cell Signal 18:1779-1792, 2006). Consistent with the higher expression of SphK1 in GBM, ceramide levels are lower in human gliomas compared to surrounding brain tissue, and are inversely related to tumor progression and short patient survival (Riboni et al. Glia 39:105-113, 2002). Thus, actions of SphK1 might be related to its role in regulation of ceramide levels.
(167) The existence of redundant survival pathways suggests that targeting a single dysregulated pathway may not be sufficient to eliminate tumors. Indeed, it has been suggested that effective GBM therapy may require combinations of inhibitors targeting multiple signaling pathways (Stommel et al. Science 318:287-290, 2007). The finding of the present invention that inhibiting SphK1 with SK1-I further enhanced glioblastoma cell lethality induced by inhibitors of other important signaling pathways that are frequently dysregulated in GBM may have implications for the design of protocols combining SphK1 inhibitors together with conventional anticancer agents or experimental therapeutics.
(168) Supplementary Materials and Methods
(169) Reagents. S1P was obtained from BIOMOL (Plymouth Meeting, Pa.). Serum and medium were from Biofluids (Rockville, Md.). EGF was from Life Technologies (Gaithersburg, Md.). Anti-phospho Akt (Ser473 and Thr308), anti-Akt, anti-phospho-ERK1/2 (Thr202/Tyr204), anti-phospho-ATF2 (Thr71), anti-phospho-JNK (Thr183/Tyr185) antibodies were from Cell Signaling (Beverly, Mass.) and anti-ERK2, anti-phospho-c-Jun (Ser63/73) and anti-clathrin heavy chain (CHC) antibodies were from Santa Cruz (Santa Cruz, Calif.). Rabbit polyclonal SphK1 antibodies were described previously (Hait et al. J Biol Chem 280:29462-29469, 2005). Horseradish peroxidase (HRP)-conjugated and fluorescently labeled secondary antibodies were from Jackson ImmunoResearch (West Grove, Pa.) and Molecular Probes (Eugene, Oreg.), respectively. Control and SphK1-specific siRNAs (Hait et al., ibid.) were obtained from Qiagen (Valencia, Calif.). WST-1 cell proliferation reagent and TUNEL kit for immunohistochemistry were from Roche Applied Science (Indianapolis, Ind.). SK1-I ((2R,3S,4E)-N-methyl-5-(4′-pentylphenyl)-2-aminopent-4-ene-1,3-diol, BML-258), was synthesized as the HCl salt by BIOMOL International (now Enzo Life Sciences International, Plymouth Meeting Pa.). SP600125 and SB202190 were from Sigma-Aldrich (St. Louis, Mo.), JNK peptide inhibitor 1 and the negative control peptide were from EMD Biosciences (San Diego, Calif.), and LY294002 and U0126 were from Cell Signaling Technology.
(170) Downregulation of SphK1. U373-MG and LN229 cells were transfected with 100 nM control siRNA or siRNA against SphK1 (sequence targeted: GGGCAAGGCCTTGCAGCTC [SEQ ID NO:1]), using Dharmafect 1 reagent (Dharmacon, Chicago, Ill.) as described (Paugh et al. FASEB J 22:455-465, 2008).
(171) SphK1 activity. SphK1 activity was determined exactly as described (Hait et al. J Biol Chem 280:29462-29469, 2005).
(172) Western blotting. Cells were scraped in buffer containing 20 mM Tris-HCl, pH 7.5, 50 mM NaCl, 50 mM NaF, 30 mM Na.sub.4P.sub.2O.sub.7, 20 mM 2-glycerophosphate, 1 mM Na.sub.3VO.sub.4, 5 mM EDTA, 2 mM EGTA, 0.5% SDS and protease inhibitor cocktail (1:200 dilution) and probe-sonicated. Equal amounts of protein determined with bicinchoninic acid (Pierce, Rockford, Ill.), were resolved by SDS-PAGE and transferred to nitrocellulose membranes. Blots were blocked with 5% non-fat dry milk in Tris-buffered saline containing 0.1% Triton X-100 (TBST) for 1 h at room temperature, and then incubated with primary antibodies (1:3,000 in 1% BSA) overnight, followed by the appropriate HRP-conjugated secondary antibodies (1:40,000 in 1% BSA). Immunocomplexes were visualized by enhanced chemiluminescence (Pierce).
(173) Immunohistochemistry. Paraffin sections were dewaxed, rehydrated, incubated with proteinase K before permeabilization, and then stained with hematoxylin-eosin. Frozen sections were dried, fixed in formalin, and stained with antibodies against mouse CD-31 (BD Pharmingen, San Jose, Calif.), or rabbit antibodies against phospho-Akt (Ser473) (Cell Signaling) followed by immunohistochemistry with Alexa-488-conjugated species-specific secondary antibodies. Cryosections were air dried, permeabilized with 0.5% Triton X-100, and stained with a fluorescein TUNEL labeling kit (Roche Applied Sciences, Indianapolis, Ind.) followed by counterstaining with Hoechst. Sections were also stained with goat anti-human VEGF affinity-purified antibody (R&D), visualized with anti-goat horseradish peroxidase-diaminobenzidene staining kit (R&D) and counterstained with hematoxylin.
(174) Immunocytochemistry and confocal microscopy. Cells were grown on 3-aminopropyl-triethoxysilane-treated 15 mm glass cover slips in 24 well plates. Following treatments, cells were washed with PBS, fixed with 3% paraformaldehyde for 10 min at room temperature, and blocked in TBST buffer containing 1% BSA. After washing, cells were incubated in the same buffer containing Alexa-conjugated phalloidin for 30 min, followed by 15 min incubation in 10 μg/ml of Hoechst 33342. For TUNEL assays, fixed cells were permeabilized with 0.5% TX-100 for 30 min, washed and incubated in TdT buffer supplemented with 250 μM CoCl.sub.2, 20 units TdT (NEB, Ipswich, Mass.) and 1 nM fluorescein-12-dUTP (Roche) for 1 h at 37° C. Coverslips were washed with TBST, rinsed in water, air dried and mounted on glass slides with Cytoseal 60 polymer (Richard-Allan Scientific, Kalamazoo, Mich.). Images were collected on an LSM 510 laser confocal microscope (Zeiss, Thornwood, N.Y.) with a 100× oil immersion objective.
(175) Cell proliferation and cell death assays. Cells were plated at 10,000 cells/well in 48-well plates and allowed to attach for 24 h. Cell proliferation was measured at the indicated times with WST-1 and absorbance was measured in a plate reader at 450 nm with background subtraction at 630 nm. Cell death was detected by trypan blue exclusion assays in which the percent of blue dye incorporating cells were determined using a light microscope and a hemacytometer as described (Yacoub et al. Mol Cancer Ther 7:314-329, 2008). Apoptotic cell death was measured by staining cell nuclei with the Hoechst dye bisbenzimide and apoptotic cells were identified by condensed, fragmented nuclear regions as described previously (Sankala et al. Cancer Res 67:10466-10474, 2007). A minimum of 300 cells was scored.
(176) Colony formation assay. Cells were plated at a density of 1000 cells/well in a 12-well plate in DMEM containing 5% serum. After 8 h, SK1-I was added and 2 h later, the media was changed. After 10 days, cells were fixed in 4% paraformaldehyde and stained with crystal violet (0.05%). Colonies larger then 0.5 mm in diameter were counted.
(177) Infection of cells with recombinant adenoviruses. Cells were plated at 3×10.sup.3 per cm.sup.2 and infected after 24 h (at a multiplicity of infection of 50) with a control empty vector virus (CMV) or adenoviruses expressing constitutively active (ca) Akt, dominant-negative (dn) Akt, caMEK1, dnMEK1, or Bcl-xL (Vector Biolabs, Philadelphia, Pa.).
(178) Invasion and chemotaxis assays. Boyden chamber invasion assays were carried out essentially as described (Shida et al. Cancer Res 68:6569-6577, 2008).
(179) Mass spectrometric analyses. Lipids were extracted and phosphorylated and unphosphorylated sphingoid bases, individual ceramide acyl chain species, as well as SK1-I and its metabolites were quantified by liquid chromatography, electrospray ionization-tandem mass spectrometry (LC-ESI-MS/MS) as described previously (Merrill et al. Methods 36:207-224, 2005).
(180) Statistical analysis. Experiments were repeated at least three times with consistent results. For each experiment, data from triplicate samples were expressed as means±S.D. Statistics were performed by single factor ANOVA, and p<0.05 was considered significant. The Kaplan-Meier estimator was used to generate the survival curves and to estimate the median survival values. Differences between survival curves were compared using a log-rank test.
(181) All patents, patent applications, patent publications, scientific articles and the like, cited or identified in this application, are hereby incorporated by reference in their entireties.
(182) Many obvious variations will no doubt be suggested to those of ordinary skill in the art, in light of the above detailed description and examples of the present invention. It will be appreciated by those skilled in the art that any arrangement which is calculated to achieve the same purpose may be substituted for the specific embodiments shown. This application and invention are intended to cover any adaptations or variations of the present invention. All such variations are fully embraced by the scope and spirit of the invention as more particularly defined in the claims that now follow.