PLURIPOTENT STEM CELLS OBTAINED BY NON-VIRAL REPORGRAMMING
20220010331 · 2022-01-13
Inventors
Cpc classification
C12N5/0696
CHEMISTRY; METALLURGY
International classification
Abstract
Methods for reprogramming primate somatic cells to pluripotency using an episomal vector that does not encode an infectious virus are disclosed. Pluripotent cells produced in the methods are also disclosed.
Claims
1-20. (canceled)
21. An in vitro population of primate pluripotent cells produced according to the method of: a) transiently introducing a plurality of plasmids into primate somatic cells of a postnatal individual in vitro; and b) culturing the cells obtained in step a) under conditions such that a population of pluripotent cells are obtained, wherein the plurality of plasmids transiently introduced into the cells are selected from the group consisting of: (i) pEP4-E-O2S-E-T2K, pEP4-E-O2S-E-N2K and pCEP4-M2L; (ii) pEP4-E-O2S-C-K2M-E-N2L and pEP4-E-O2S-E-T2K; and (iii) pEP4-E-O2S-E-N2L, pEP4-E-O2S-E-T2K and pEP4-E-O2S-E-M2K, wherein-pEP4 and pCEP4 are plasmids, E is an EF1α promoter; O is an OCT4 coding region, S is a SOX2 coding region, T is an SV40T antigen coding region, N is a NANOG coding region, K is a KLF4 coding region, M is a c-Myc coding region, C is a CMV promoter and L is a LIN28 coding region; and wherein pluripotent cells in the population comprise a plurality of plasmids from at least one of (i), (ii), or (iii) transiently introduced into the cells, wherein the resulting primate pluripotent cells do not stably retain the plasmids.
22. The population of claim 21, wherein the primate somatic cells are human somatic cells.
23. The population of claim 21, wherein OCT4 and SOX2 are human.
24. The population of claim 21, wherein LIN28, NANOG, c-Myc, and KLF4 are human.
25. A pharmaceutical composition comprising the cell population of claim 1 with a pharmaceutically acceptable carrier.
Description
BRIEF DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWINGS
[0014]
[0015]
[0016]
[0017]
[0018]
DETAILED DESCRIPTION OF PREFERRED EMBODIMENTS
[0019] The present invention broadly relates to novel methods for reprogramming differentiated primate somatic cells into reprogrammed primate cells that are substantially free of the vectors used in their production by introducing potency-determining factors on a non-viral vector that is present during reprogramming, but is substantially absent from the reprogrammed cells. As used herein, “reprogramming” refers to a genetic process whereby differentiated somatic cells are converted into de-differentiated cells having a higher potency than the cells from which they were derived.
[0020] Advantageously, the higher potency cells produced in the method are euploid pluripotent cells. As used herein. “pluripotent cells” refer to a population of cells that express pluripotent cell-specific markers, have a cell morphology characteristic of undifferentiated cells (i.e., compact colony, high nucleus to cytoplasm ratio and prominent nucleolus) and can differentiate into all three germ layers (e.g., endoderm, mesodern and ectoderm). When introduced into an immunocompromised animal, such as a SCID mouse, the phuripotent cells form teratomas that typically contain cells or tissues characteristic of all three germ layers. One of ordinary skill in the art can assess these characteristics by using techniques commonly used in the art. See, e.g., Thomson et al., supra. Pluripotent cells are capable of both proliferation in cell culture and differentiation towards a variety of lineage-restricted cell populations that exhibit multipotent properties. Pluripotent cells have a higher potency than somatic multipotent cells, which by comparison are more differentiated, but which are not terminally differentiated. The pluripotent products of primate somatic cell reprogramming methods are referred to herein as “reprogrammed primate pluripotent cells” or as induced pluripotent (iPS) cells. Such cells are suitable for use in research and therapeutic applications currently envisioned for human ES cells or existing iPS cells.
[0021] Differentiated somatic cells, including cells from a fetal, newborn, juvenile or adult primate, including human, individual, are suitable starting cells in the methods. Suitable somatic cells include, but are not limited to, bone marrow cells, epithelial cells, endothelial cells, fibroblast cells, hematopoietic cells, keratinocytes, hepatic cells, intestinal cells, mesenchymal cells, myeloid precursor cells and spleen cells. Another suitable somatic cell is a CD29.sup.+ CD44.sup.+ CD166.sup.+ CD105.sup.+ CD73.sup.+ and CD31.sup.− mesenchymal cell that attaches to a substrate. Alternatively, the somatic cells can be cells that can themselves proliferate and differentiate into other types of cells, including blood stem cells, muscle/bone stem cells, brain stem cells and liver stem cells. Suitable somatic cells are receptive, or can be made receptive using methods generally known in the scientific literature, to uptake of potency-determining factors including genetic material encoding the factors. Uptake-enhancing methods can vary depending on the cell type and expression system. Exemplary conditions used to prepare receptive somatic cells having suitable transduction efficiency are well-known by those of ordinary skill in the art. The starting somatic cells can have a doubling time of about twenty-four hours.
[0022] The vectors described herein can be constructed and engineered using methods generally known in the scientific literature to increase their safety for use in therapy, to include selection and enrichment markers, if desired, and to optimize expression of nucleotide sequences contained thereon. The vectors should include structural components that permit the vector to self-replicate in the somatic starting cells. For example, the known Epstein Barr oriP/Nuclear Antigen-1 (EBNA-1) combination (see, e.g., Lindner, S. E. and B. Sugden, The plasmid replicon of Epstein-Barr virus: mechanistic insights into efficient, licensed, extrachromosomal replication in human cells, Plasmid 58:1 (2007), incorporated by reference as if set forth herein in its entirety) is sufficient to support vector self-replication and other combinations known to function in mammalian, particularly primate, cells can also be employed. Standard techniques for the construction of expression vectors suitable for use in the present invention are well-known to one of ordinary skill in the art and can be found in publications such as Sambrook J, et al., “Molecular cloning: a laboratory manual.” (3rd ed. Cold Spring harbor Press, Cold Spring Harbor, N.Y. 2001), incorporated herein by reference as if set forth in its entirety.
[0023] In the methods, genetic material encoding a set of potency-determining factors is delivered into the somatic cells via one or more reprogramming vectors. Suitable potency-determining factors can include, but are not limited to OCT-4, SOX2, LIN28, NANOG, c-Myc, KLF4, and combinations thereof. Each potency-determining factor can be introduced into the somatic cells as a polynucleotide transgene that encodes the potency-determining factor operably linked to a heterologous promoter that can drive expression of the polynucleotide in the somatic cell. Although SV40 T Antigen is not a potency-determining factor per se, it advantageously introduced into somatic cells as it provides the cells with a condition sufficient to promote cell survival during reprogramming while the potency-determining factors are expressed. Other conditions sufficient for expression of the factors include cell culture conditions described in the examples.
[0024] Suitable reprogramming vectors are episomal vectors, such as plasmids, that do not encode all or part of a viral genome sufficient to give rise to an infectious or replication-competent virus, although the vectors can contain structural elements obtained from one or more virus. One or a plurality of reprogramming vectors can be introduced into a single somatic cell. One or more transgenes can be provided on a single reprogramming vector. One strong, constitutive transcriptional promoter can provide transcriptional control for a plurality of transgenes, which can be provided as an expression cassette. Separate expression cassettes on a vector can be under the transcriptional control of separate strong, constitutive promoters, which can be copies of the same promoter or can be distinct promoters. Various heterologous promoters are known in the art and can be used depending on factors such as the desired expression level of the potency-determining factor. It can be advantageous, as exemplified below, to control transcription of separate expression cassettes using distinct promoters having distinct strengths in the target somatic cells. Another consideration in selection of the transcriptional promoter(s) is the rate at which the promoter(s) is silenced in the target somatic cells. The skilled artisan will appreciate that it can be advantageous to reduce expression of one or more transgenes or transgene expression cassettes after the product of the gene(s) has completed or substantially completed its role in the reprogramming method. Exemplary promoters are the human EF1α elongation factor promoter, CMV cytomegalovirus immediate early promoter and CAG chicken albumin promoter, and corresponding homologous promoters from other species. In human somatic cells, both EF1α and CMV are strong promoters, but the CMV promoter is silenced more efficiently than the EF1α promoter such that expression of transgenes under control of the former is turned off sooner than that of transgenes under control of the latter.
[0025] The potency-determining factors can be expressed in the somatic cells in a relative ratio that can be varied to modulate reprogramming efficiency. For example, somatic cell reprogramming efficiency is fourfold higher when OCT-4 and SOX2 are encoded in a single transcript on a single vector in a 1:1 ratio than when the two factors are provided on separate vectors, such that the uptake ratio of the factors into single cells is uncontrolled. Preferably, where a plurality of transgenes is encoded on a single transcript, an internal ribosome entry site is provided upstream of transgene(s) distal from the transcriptional promoter. Although the relative ratio of factors can vary depending upon the factors delivered, one of ordinary skill in possession of this disclosure can determine an optimal ratio of factors.
[0026] The skilled artisan will appreciate that the advantageous efficiency of introducing all factors via a single vector rather than via a plurality of vectors, but that as total vector size increases, it becomes increasingly difficult to introduce the vector. The skilled artisan will also appreciate that position of a factor on a vector can affect its temporal expression, and the resulting reprogramming efficiency. As such, Applicants employed various combinations of factors on combinations of vectors. Several such combinations are here shown to support reprogramming.
[0027] After introduction of the reprogramming vector(s) and while the somatic cells are being reprogrammed, the vectors can persist in target cells while the introduced transgenes are transcribed and translated. Transgene expression can be advantageously downregulated or turned off in cells that have been reprogrammed to a pluripotent state. The reprogramming vector(s) can remain extra-chromosomal. At extremely low efficiency, the vector(s) can integrate into the cells' genome. The reprogramming vector(s) replicate coordinately with the recipient cell's genome and, as such, are reasonably stable for about two weeks, longer than episomal vectors that cannot replicate their DNA. Nevertheless, because the vectors are not partitioned evenly at cell division, in the absence of selective pressure, cells lose the episomal vector(s) so one can readily recover vector-free pluripotent cells in the method. For example, it usually takes two-to-three weeks for oriP/EBNA-1-based episomal plasmids to be stably maintained in somatic cells. During the initial two-to-three weeks, cells quickly lose episomal plasmids. Once the cells are stabilized, the cells continue to lose episomal vector at ˜5% per generation.
[0028] Pluripotent cells produced in the method can be cultured in any medium that supports pluripotent cell growth, including but not limited to a defined medium, such as TeSR™ (StemCell Technologies, Inc.; Vancouver, Canada), niTeSR™ (StemCell Technologies, Inc.) and StemLine® serum-free medium (Sigma; St. Louis, Mo.), or a conditioned medium such as mouse embryonic fibroblast (MEF)-conditioned medium. As used herein, a “defined medium” refers to a biochemically defined formulation comprised solely of biochemically-defined constituents which can include constituents of known chemical composition or constituents derived from known sources. As used herein, “conditioned medium” refers to a growth medium that is further supplemented with soluble factors from cells cultured in the medium. Alternatively, cells can be maintained on MEFs in culture medium.
[0029] The invention will be more fully understood upon consideration of the following non-limiting Examples.
EXAMPLES
Example 1
Design and Construction of Expression Cassettes
[0030] Suitable expression cassettes structures were created using conventional methods by direct polymerase chain reaction (PCR) amplification of open reading frames (ORFs) from some or all of the transgenes, using the first and last 20-22 bases of the coding region as primers, and from the Internal Ribosome Entry Sites listed in Table 1. The sources of SV40 T Antigen and human telomerase reverse transcriptase, plasmids pBABE-puro SV40 LT and pBABE-hygro-hTERT, are commercially available from Addgene, Inc, Cambridge, Mass., as plasmids 13970 and 1773, respectively. The sources of IRES1 and IRES2, plasmids pIRESpuro3 and pIRES2EGFP, are commercially available from Clontech Laboratories, Inc., Mountain View, Calif. Foot-and-mouth disease virus segment 2, was chemically synthesized. In-frame expression cassettes are described using the codes set forth below in Table 1. For example, “E-O2S” refers to an expression cassette having an EF1α promoter upstream of the OCT4 and SOX2 coding regions, with IRES2 therebetween. Likewise, “C-M2K” refers to an expression cassette having a CMV promoter upstream of the c-Myc and Klf4 coding regions, with IRES2 therebetween. In several constructs, none of which was used in subsequent reprogramming, a variant O2S expression cassette (“O2S(2)”) was employed that differed from O2S in that it contained a TK promoter—Hyg-TK polyA cassette (compare
[0031] The relative effects of various promoters, IRES sequences, and transgene arrangements on the expression of the upstream and downstream ORFs were evaluated by separately cloning various transgene expression cassettes into pSin4, a modified lentivirus-based vector, to test their ability to reprogram human somatic cells after transfection, as previously described (Yu et al., supra). 293FT cells were transfected with lentiviral plasmid vectors expressing OCT4 and SOX2 linked by IRES1 or IRES2 using SuperFect (Qiagen, Valencia, Calif.), as depicted below. Cells were collected two days post-transfection.
[0032]
Example 2
Reprogramming Human Newborn Foreskin Fibroblasts Using Lentiviral Constructs
[0033] Preliminary reprogramming experiments were conducted by introducing lentiviral vectors into human neonatal foreskin fibroblasts.
[0034]
[0035]
Example 3
Reprogramming of Human Newborn Foreskin Fibroblasts Using Non-Viral Episomal Constructs
[0036] Human newborn foreskin fibroblasts (Cat #CRL-2097™, ATCC) were maintained in foreskin fibroblast culture medium (DMEM (Cat #11965, Invitrogen) supplemented with 10% heat-inactivated fetal bovine serum (FBS, HyClone Laboratories, Logan, Utah), 2 mM Glutamax, 0.1 mM non-essential amino acids, and 0.1 mM ß-mercaptoethanol).
[0037] Various combinations of potency-determining factors provided as transgene expression cassettes constructed as in Example 1 and as detailed below in Table 3 were introduced into somatic cells using an episomal construct pCEP4-EGFP (as shown in
[0038] Vectors were introduced into the fibroblasts via a single nucleofection event, using Human Dermal Fibroblasts Nucleofector Kit (Normal Human Dermal Fibroblasts, Amaxa, Inc. Cat. No. VPD-1001), in accord with the manufacturer's instructions. After nucleofection, the transfected fibroblasts (˜0.8 to 1.0×10.sup.6 cells each) were immediately plated onto three 10 cm dishes seeded with irradiated mouse embryonic fibroblasts (MEF). Foreskin fibroblast culture medium was replaced every other day. After four days, the foreskin fibroblast culture medium was replaced with human ES cell culture medium (DMEM/F12 culture medium supplemented with 20% KnockOut serum replacer, 0.1 mM non-essential amino acids (all from Invitrogen Corp.), 1 mM Glutamax, 0.1 mM 6-mercaptoethanol and 100 ng/ml zebrafish basic fibroblast growth factor (zbFGF) as previously described (Amit et al., Developmental Biology 227:271-278 (2006); Ludwig et al., Nature Methods 3:637-646 (2006), each of which is incorporated herein by reference as if set forth in its entirety). When the seeded MEF could no longer sustain the reprogramming culture, about 8 to 10 days after plating, human ES cell culture medium conditioned with irradiated MEF was used instead. When appropriate (about 2-3 weeks after transfection), the cultures were stained for alkaline phosphatase as an indication of human iPS colony development.
[0039] To determine suitable parameters for introducing transgene constructs, temporal expression was initially evaluated by measuring EGFP level over time after introduction of EGFP from pEGFP-N2 (control) and pCEP4-EGFP episomal vector into 293FT cells was evaluated (
[0040] The effect of the amount of transgene construct introduced on human newborn foreskin fibroblast cell survival was also evaluated in preliminary experiments.
[0041]
[0042]
[0043] Twenty-five to thirty days after transfection, the reprogramming cultures were passaged once to fresh 10 cm MEF dishes (1:3 ratio), due to the presence of many non-iPS cell colonies with morphologies similar to human iPS cell colonies. Colonies were then picked for further analysis.
[0044] Advantageously, the reprogramming efficiency of greater than 1% of the newborn foreskin fibroblast cells reprogrammed was achieved, at significantly lower reprogramming time than was achieved using four gene combinations.
TABLE-US-00001 TABLE 1 Reprogramming genes and translation elements SEQ Accession # Gene Symbol Abbr. Source ID NO or sequence OCT4 O hESC 1 NM_002701 SOX2 S hESC 2 NM_003106 NANOG N hESC 3 NM_024865 LN28 L hESC 4 NM_024674 c-Myc M hESC 5 NM_002467 KLF4 K hESC 6 NM_004235 SV40 T T pBABE-puro 7 EF579667 SV40 LT p TERT TERT pBABE-hygro- 8 NM_198253 hTERT IRES1 1 pIRESpuro3 — IRES2 2 pIRES2EGFP — F2A F2A (synthesized) 9 CMV C 10 EF1α E 11 EF2α — 12
TABLE-US-00002 TABLE 2 Episomal constructs # Name Size (bp) 1 pCEP4-EGFP 10984 2 .sup.b pEP4-E-O2S(2) 13523 3 .sup.b pEP4-E-M2K 14293 4 .sup.a pCEP4-M2K 13643 5 .sup.b pEP4-E-K2M 14268 6 .sup.a pCEP4-K2M 13636 7 .sup.b pEP4-E-N2K 13819 8 .sup.b pEP4-E-T2K 15071 9 .sup.a pCEP4-M2L 12852 10 .sup.b pEP4-E-N2L 13020 11 .sup.b pEP4-E-T2L 14284 12 .sup.c pEP4-E-O2S-C-M2K 16038 13 .sup.c pEP4-E-O2S-E-M2K 16680 14 .sup.c pEP4-E-O2S-C-K2M 16010 15 .sup.c pEP4-E-O2S-E-K2M 16652 16 .sup.c pEP4-E-O2S-E-N2K 16206 17 .sup.c pEP4-E-O2S-E-T2K 17458 18 .sup.c pEP4-E-O2S-E-N2L 15415 19 .sup.c pEP4-E-O2S-E-T2L 16679 20 .sup.c pEP4-O2S-C-M2L 15247 21 .sup.c pEP4-E-O2S-E-K2T 17474 22 .sup.c pEP4-E-O2S-C-M2L-E-N2K 19956 23 .sup.c pEP4-E-O2S-C-M2K-E-N2L 19956 24 .sup.c pEP4-E-O2S-C-K2M-E-N2L 19949 25 .sup.c pEP4-E-O2S-C-M2L-E-T2K 21220 26 .sup.c pEP4-E-O2S-C-M2K-E-T2L 21220 27 .sup.c pEP4-E-O2S-C-K2M-E-T2L 21213 28 .sup.c pEP4-E-O2S-C-M2L-E-K2T 21224 .sup.a All linked gene cassettes were cloned into the pCEP4-EGFP between BamHI and NheI restriction sites. .sup.b All linked gene cassettes plus the EF1α promoter were cloned into the pCEP4-EGFP between BamHI and SpeI (19) restriction sites. .sup.c All expression cassettes were cloned into the pCEP4-EGFP between BamHI and NruI restriction sites.
TABLE-US-00003 TABLE 3 Combinations of episomal constructs tested for reprogramming activity Equivalent of pCEP4-EGF(μg) Test # Plasmids μg Morph. Changes AP+ colony/plate EXPERIMENT 1 6.3 1 pEP4-E-O2S-C-M2K 9.2 +/− 0 6.3 2 pEP4-E-O2S-K2Neo 9.3 +/− 0 6.3 pCEP4-M2L 7.4 6.3 3 pEP4-E-O2S-E-N2K 9.3 +/− 0 6.3 pCEP4-M2L 7.4 6.3 4 pEP4-E-O2S-E-T2K 10 +++ 0 6.3 pCEP4-M2L 7.4 6.3 5 pEP4-E-O2S-E-TERT2K 10.8 +/− 0 6.3 pCEP4-M2L 7.4 6.3 6 pEP4-E-O2S-C-M2L 8.7 +/− 0 6.3 pEP4-E-N2K 7.9 6.3 7 pEP4-E-O2S-C-M2L 8.7 + 0 6.3 pEP4-E-T2K 8.6 6.3 8 pEP4-E-O2S-C-M2L 8.7 +/− 0 6.3 pEP4-E-TERT2K 9.4 EXPERIMENT 2 1 pEP4-E-O2S-C-M2K 5.0 +/− 0 3.3 2 pEP4-E-O2S-E-M2K 5.0 +/− 0 3.3 3 pEP4-E-O2S-C-K2M 5.0 +/− 0 3.3 4 pEP4-E-O2S-E-K2M 5.0 +/− 0 2.5 5 pEP4-E-O2S(2) 3.0 +/− 0 2.5 pCEP4-M2K 3.0 2.5 6 pEP4-E-O2S(2) 3.0 +/− 0 2.3 pEP4-E-M2K 3.0 2.5 7 pEP4-E-O2S(2) 3.0 +/− 0 2.5 pCEP4-K2M 3.0 2.5 8 pEP4-E-O2S(2) 3.0 +/− 0 2.3 pEP4-E-K2M 3.0 1.7 9N pEP4-E-O2S(2) 2.0 +/− 0 1.5 pEP4-E-N2K 2.0 1.7 pCEP4-M2L 2.0 +/− 0 1.7 10N pEP4-E-O2S(2) 2.0 +/− 0 1.7 pEP4-E-N2L 2.0 1.7 pCEP4-M2K 2.0 1.7 11N pEP4-E-O2S(2) 2.0 +/− 0 1.7 pEP4-E-N2L 2.0 1.5 pEP4-E-M2K 2.0 1.7 12N pEP4-E-O2S(2) 2.0 +/− 0 1.7 pEP4-E-N2L 2.0 1.7 pCEP4-K2M 2.0 1.7 13N pEP4-E-O2S(2) 2.0 +/− 0 1.7 pEP4-E-N2L 2.0 1.5 pEP4-E-K2M 2.0 2.3 14N pEP4-E-O2S-E-N2K 3.5 +/− 0 2.1 pCEP4-M2L 2.5 2.5 15N pEP4-E-O2S-E-N2L 3.5 +/− 0 2.1 pCEP4-M2K 2.5 2.5 16N pEP4-E-O2S-E-N2L 3.5 +/− 0 1.9 pEP4-E-M2K 2.5 2.5 17N pEP4-E-O2S-E-N2L 3.5 +/− 0 2.1 pCEP4-K2M 2.5 2.5 18N pEP4-E-O2S-E-N2L 3.5 +/− 0 1.9 pEP4-E-K2M 2.5 EXPERIMENT 3 1.7 9T pEP4-E-O2S(2) 2.0 +/− 0 1.4 pEP4-E-T2K 2.0 1.7 pCEP4-M2L 2.0 1.7 10T pEP4-E-O2S(2) 2.0 + 0 1.5 pEP4-E-T2L 2.0 1.7 pCEP4-M2K 2.0 1.7 11T pEP4-E-O2S(2) 2.0 + 0 1.5 pEP4-E-T2L 2.0 1.5 pEP4-E-M2K 2.0 1.7 12T pEP4-E-O2S(2) 2.0 +/− 0 1.5 pEP4-E-T2L 2.0 1.7 pCEP4-K2M 2.0 1.7 13T pEP4-E-O2S(2) 2.0 +/− 0 1.5 pEP4-E-T2L 2.0 1.5 pEP4-E-K2M 2.0 2.2 14T pEP4-E-O2SET2K 3.5 +++ 0 2.1 pCEP4-M2L 2.5 2.3 15T pEP4-E-O2S-E-T2L 3.5 + 0 2.1 pCEP4-M2K 2.5 2.3 16T pEP4-E-O2S-E-T2L 3.5 + 0 1.9 pEP4-E-M2K 2.5 2.3 17T pEP4-E-O2S-E-T2L 3.5 +/− 0 2.1 pCEP4-K2M 2.5 2.3 18T pEP4-E-O2S-E-T2L 3.5 +/− 0 1.9 pEP4-E-K2M 2.5 1.9 19 pEP4-E-O2S-E-T2K 3.0 +++ 1 2.0 pEP4-E-O2S-E-N2K 3.0 1.7 pCEP4-M2L 2.0 EXPERIMENT 4 6 1 pEP4-E-O2S-C-M2K-E-N2L 10.9 +/− 0 4 2 pEP4-E-O2S-C-M2K-E-N2L 7.3 +++ 0 2 pEP4-E-O2S-E-T2K 3.2 6 3 pEP4-E-O2S-C-K2M-E-N2L 10.9 +/− 0 4 4 pEP4-E-O2S-C-K2M-E-N2L 7.3 ++ 2 2 pEP4-E-O2S-E-T2K 3.2 3 5 pEP4-E-O2S-E-N2L 4.2 +/− 0 3 pEP4-E-O2S-E-M2K 4.6 3 6 pEP4-E-O2S-E-N2L 4.2 ++ 1 2 pEP4-E-O2S-E-T2K 3.2 3 pEP4-E-O2S-E-M2K 4.6 3 7 pEP4-E-O2S-E-N2L 4.2 +/− 0 3 pEP4-E-O2S-C-M2K 4.4 3 8 pEP4-E-O2S-E-N2L 4.2 + 0 2 pEP4-E-O2S-E-T2K 3.2 3 pEP4-E-O2S-C-M2K 4.4 3 9 pEP4-E-O2S-E-N2L 4.2 +/− 0 3 pEP4-E-O2S-E-K2M 4.5 3 10 pEP4-E-O2S-E-N2L 4.2 +/− 0 2 pEP4-E-O2S-E-T2K 3.2 3 pEP4-E-O2S-E-K2M 4.5 3 11 pEP4-E-O2S-E-N2L 4.2 +/− 0 3 pEP4-E-O2S-C-K2M 4.4 3 12 pEP4-E-O2S-E-N2L 4.2 + 0 2 pEP4-E-O2S-E-T2K 3.2 3 pEP4-E-O2S-C-K2M 4.4 2 13 pEP4-E-O2S-C-M2L-E-T2K 3.9 + 0 4 pEP4-E-O2S-E-N2K 5.9 6 14 pEP4-E-O2S-C-M2K-E-T2L 11.6 + 0 3 15 pEP4-E-O2S-C-M2K-E-T2L 5.8 + 0 3 pEP4-E-O2S-E-N2K 4.4 6 16 pEP4-E-O2S-C-K2M-E-T2L 11.6 +/− 0 3 17 pEP4-E-O2S-C-K2M-E-T2L 5.8 + 0 3 pEP4-E-O2S-E-N2K 4.4 6 18 pEP4-E-O2S-C-M2L-E-K2T 11.6 +/− 0 3 19 pEP4-E-O2S-C-M2L-E-K2T 5.8 +/− 0 3 pEP4-E-O2S-E-N2K 4.4 3 20 pEP4-E-O2S-E-K2T 4.8 +/− 0 3 pEP4-E-O2S-E-N2K 4.4 2 pEP4-E-O2S-C-M2L 2.8 +/−: No or very few colonies with morphological change were observed (FIG. 4B). +, ++ and +++: Different number (from less to more) of colonies with morphological change were observed.
[0045] It is understood that certain adaptations of the invention described in this disclosure are a matter of routine optimization for those skilled in the art, and can be implemented without departing from the spirit of the invention, or the scope of the appended claims. All publications and patents mentioned in the above specification are herein incorporated by reference. Various modifications and variations of the described method and system of the invention will be apparent to those skilled in the art without departing from the scope and spirit of the invention. It is understood, however, that examples and embodiments of the present invention set forth above are illustrative and not intended to confine the invention. The invention embraces all modified forms of the examples and embodiments as come with the scope of the following claims.