Testing pharmaceuticals and related substances
20180326385 ยท 2018-11-15
Assignee
Inventors
- Jonathan C. Evans (Midland, MI, US)
- Derrick D. Hilliker (Midland, MI, US)
- Theodore W. Selby (Midland, MI, US)
Cpc classification
G01N25/26
PHYSICS
G01N33/15
PHYSICS
G01N25/20
PHYSICS
B01L9/06
PERFORMING OPERATIONS; TRANSPORTING
B01L2200/147
PERFORMING OPERATIONS; TRANSPORTING
B01L7/52
PERFORMING OPERATIONS; TRANSPORTING
G01N31/00
PHYSICS
B01J2219/00132
PERFORMING OPERATIONS; TRANSPORTING
B01J19/0013
PERFORMING OPERATIONS; TRANSPORTING
G01N25/22
PHYSICS
B01J19/02
PERFORMING OPERATIONS; TRANSPORTING
International classification
B01J19/00
PERFORMING OPERATIONS; TRANSPORTING
G01N31/00
PHYSICS
Abstract
An active pharmaceutical ingredients (API) or related substance (RS) can be tested for stability by placing the API or RS in an instrument containing a pressure-controllable atmosphere, controlling the pressure of the atmosphere in the instrument for a predetermined time, and evaluating the API or RS for stability. Testing can be carried out also at predetermined temperature(s) and/or under the influence of gaseous trigger(s) and so forth. For instance, an API sample can be placed in a bomb test instrument/reactor, oxygen as a gaseous trigger can be introduced to contact the API sample under constant and/or ramped temperature(s) and elevated pressure(s) for predetermined time(s), and the API sample can be evaluated for stability. An insert carousel may hold a sample of API(s) and/or RS(s) and/or aliquot(s) of sample(s) of API(s) and/or RS(s) for insertion into the bomb test instrument/reactor.
Claims
1. A method of testing a sample of at least one API or at least one RS for stability comprising placing the API or RS in an instrument containing a pressure-controllable atmosphere, controlling the pressure of the atmosphere in the instrument for a predetermined time, and evaluating the API or RS for stability.
2. The method of claim 1, which is carried out under at least one of the following additional conditions (A, B): A) at least one predetermined temperature; and B) under the influence of at least one gaseous trigger.
3. The method of claim 2, wherein the sample is an API; the sample is placed in a bomb test instrument/reactor; the at least one additional conditions include the gaseous trigger, which is gaseous oxygen, which is introduced to contact the API sample under constant and/or ramped temperature(s) and elevated pressure(s) for predetermined time(s); and the API sample is evaluated for stability.
4. The method of claim 3, wherein the bomb test instrument/reactor is a rotatable bomb device, which includes: a housing with a hollow interior for receipt of a rotatable component to a vessel, with support for the rotatable component in the interior; and in the housing, the rotatable component, wherein the rotatable component is or includes an inner container that will be rotated by magnetic interaction of a magnet which is coupled to the rotatable component of the inner container and a rotating magnet driver outside the hollow interior.
5. The method of claim 3, wherein the bomb test instrument/reactor is a rotatable bomb device, which includes: a stationary housing with a hollow interior that has a substantially cylindrical wall defining a side boundary of the hollow interior for receipt of a rotatable component to the vessel, with support for the rotatable component in the interior; and in the interior, the rotatable component, wherein the rotatable component is or includes a rotatable inner container; and the housing provides for a sealed bomb reactor with the rotatable inner container inside.
6. The method of claim 3, wherein the bomb test instrument/reactor is a rotatable bomb device, which includes a rotatable bomb device including a stationary housing with a hollow interior for receipt of a rotatable component to a vessel, with support for the rotatable component in the interior, and including, in the housing, the rotatable component, in which the rotatable component is or includes an inner container that will be rotated by magnetic interaction of a magnet which is coupled to the rotatable component or the inner container and a rotating magnet driver outside the hollow interior, which further includes a provision in the rotatable bomb device of at least one of the members (A, B, C, D, E, F) of the group consisting of: A) an insulating lower disc or washer located inside, bottom of the stationary housing, which provides for additional control of temperature by blocking energy that otherwise would be lost at the bottom of the stationary housing from the rotatable component, and which can be employed in lieu of pegs or feet on the bottom of the rotatable component that would provide an air gap for insulating heat loss and reduce bottom friction; B) a plurality of staggered heating bands encompassing the stationary housing, each of which able to be controlled or turned off independently of the other(s); C) a dry scan port in the stationary housing, accessible from outside the housing, front, into which a thermocouple or temperature sensor can be inserted and slid to any appropriate depth or position to tune or calibrate temperature; D) a rear upper port in the stationary housing, accessible from outside the housing, rear, into which a thermocouple or temperature sensor can be inserted and slid to any appropriate depth or position to monitor temperature during use of the bomb; E) a rear lower port in the stationary housing, accessible from outside the housing, rear, into which a thermocouple or temperature sensor can be inserted and slid to any appropriate depth or position to monitor temperature during use of the bomb; F) an extraction/injection fitting for access to the interior of the stationary housing through a lid thereto, which includes a tubular support system and a three-way valve and locking syringe system for employment therewith.
7. The method of claim 1, wherein an insert carousel is employed for holding at least one of said sample and at least one aliquot of said sample for insertion into the bomb test instrument/reactor, and the insert carousel is inserted into the hollow bomb housing of the bomb test instrument/reactor device with a pivotable, cradling framework orienting the hollow bomb housing vertically.
8. The method of claim 2, wherein an insert carousel is employed for holding at least one of said sample and at least one aliquot of said sample for insertion into the bomb test instrument/reactor, and the insert carousel is inserted into the hollow bomb housing of the bomb test instrument/reactor device with a pivotable, cradling framework orienting the hollow bomb housing vertically.
9. The method of claim 3, wherein an insert carousel is employed for holding at least one of said sample and at least one aliquot of said sample for insertion into the bomb test instrument/reactor, and the insert carousel is inserted into the hollow bomb housing of the bomb test instrument/reactor device with a pivotable, cradling framework orienting the hollow bomb housing vertically.
10. The method of claim 4, wherein an insert carousel is employed for holding at least one of said sample and at least one aliquot of said sample for insertion into the bomb test instrument/reactor, and the insert carousel is inserted into the hollow bomb housing of the bomb test instrument/reactor device with a pivotable, cradling framework orienting the hollow bomb housing vertically.
11. The method of claim 5, wherein an insert carousel is employed for holding at least one of said sample and at least one aliquot of said sample for insertion into the bomb test instrument/reactor, and the insert carousel is inserted into the hollow bomb housing of the bomb test instrument/reactor device with a pivotable, cradling framework orienting the hollow bomb housing vertically.
12. The method of claim 6, wherein an insert carousel is employed for holding at least one of said sample and at least one aliquot of said sample for insertion into the bomb test instrument/reactor, and the insert carousel is inserted into the hollow bomb housing of the bomb test instrument/reactor device with a pivotable, cradling framework orienting the hollow bomb housing vertically.
13. An article of manufacture comprising an insert carousel for holding a sample of API(s) and/or RS(s) and/or aliquot(s) of sample(s) of API(s) and/or RS(s) for insertion into a bomb test instrument/reactor, wherein the insert carousel is useful for holding at least one of said sample and at least one aliquot of said sample for insertion into the bomb test instrument/reactor.
14. The article of claim 13, which is assembled from two sample aliquot vial retainers; three sample aliquot vial top or bottom plates; and one or more threaded connecting shaft(s), each threaded through correspondingly threaded holes in the retainers and platessuch that at least one sample aliquot vial(s) for employment in evaluating oxidative stability is held thereby.
15. The article of claim 13, which includes the bomb test instrument/reactor.
16. The article of claim 14, which includes the bomb test instrument/reactor.
Description
[0015] The drawings form part of the specification hereof. With reference to the drawings, which are not necessarily drawn to scale, the following is briefly noted:
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[0024] The following list is a key to reference numerals found in the drawing figures: [0025] Number Remarks [0026] 1 Sample aliquot vial retainer [0027] 2 Sample aliquot vial top or bottom plate [0028] 3 Threaded connecting shaft [0029] 4 Sample aliquot vial [0030] 5 Insert carousel [0031] 10 Hollow bomb housing [0032] 10S Hollow bomb spacer for insert carousel [0033] 10T Hollow bomb housing lid [0034] 100 Rotating bomb device disclosed or employed in U.S. Pat. No. 7,678,328 B1, U.S. Pat. No. 8,679,405 B1 and U.S. Pat. No. 8,975,083 B2, and U.S. patent application U.S. Ser. No. 14/121,952 and U.S. 62/390,774 [0035] 101 Pivotable, cradling framework, as disclosed in U.S. patent application Ser. No. 14/121,952 and also employed in patent application No. U.S. 62/390,774.
[0036] The invention can be further understood by the following additional detail set forth below, which may be read in view of the drawings. As with the foregoing, the following is to be understood in an illustrative and not necessarily limiting sense.
[0037] For use in evaluating the oxidative stability of an API or RS the bomb test instrument/reactor device 100 with pivotable, cradling framework 101, which is commercially available from Tannas Company, Midland, Mich. as the Quantum rotatable bomb test instrument, beneficially is placed in the vertical position as in the manner it is employed for grease oxidation testing (ASTM D942) as found in U.S. patent application Ser. No. 14/121,952 and U.S. 62/390,774. Insert carousel 5which can be assembled conveniently from parts: two sample aliquot vial retainers 1, for example, made of #316 stainless steel; three sample aliquot vial top or bottom plates 2, for example, made of #316 stainless steel; and one or more threaded connecting shaft(s) 3, for example, made of #316 stainless steel, each threaded through correspondingly threaded holes in the retainers 1 and plates 2can hold one or more sample aliquot vial(s) 4 typically employed otherwise in the art to evaluate oxidative stability, say, eight in total with four in a lower level and four in an upper level of the insert carousel 5, each sample aliquot vial 4 able to contain an API and/or RS for evaluation of its oxidative stability and/or other property(ies). The carousel 5 may be configured to accommodate more or less sample aliquot vials 4, say, six sample aliquot vials 4 larger than those depicted in two levels; ten, twelve or fourteen sample aliquot vials 4 smaller than those depicted in two levels; or fifteen, eighteen or twenty-one sample aliquot vials 4 smaller than those depicted in three levels; and so forth. The insert carousel 5 is configured with appropriate head space at each level so as to ensure good exposure to the gaseous trigger, for example, elemental oxygen. Removal of an upper level of or provision of greater head space above a set of sample aliquot vials 4 may provide for emplacement of stirring apparatus, particularly when the sample to be tested is a liquid rather than a powder or other solid. When loaded with sample aliquot vial(s) 4, the insert carousel 5 is inserted into the hollow bomb housing 10 of the bomb test instrument/reactor device 100 with pivotable, cradling framework 101 orienting the hollow bomb housing 10 vertically. Hollow bomb spacer 10S, made of any suitable material, for example, Teflon polytetrafluoroethylene, may be placed on top of the insert carousel 5 loaded with properly filled sample aliquot vials 4 to keep the carousel with its sample(s) from moving up and down undesirably, and bomb conditions can be established after sealing with hollow bomb housing lid 10T.
[0038] Dimensions or angles set forth in the figures are exemplary, with dimensions in inches and angles in degrees. They may be considered to be approximate, to have typical engineering deviations, or even to be exact. All edges of parts 1, 2, 3 of the insert carousel 5 may be broken and deburred.
[0039] In an exemplary employment, rates of oxidation of an API are determined readily with the aforementioned devices 100, 101 and carousel 5. Once a rate of oxidation for the API is known, then it may be determined whether oxidation is inhibited through controlling the environment of the API. This can be done in many ways, typically, for example, by means of capsules, tablet coatings and/or special packaging. It would be of great interest to know before evaluating the above commonly used means for preventing oxidation, however, whether the rate of oxidation actually could be inhibited or drastically slowed in the API by limiting its exposure to oxygen. This is done quite easily with the aforementioned devices 100, 101 and carousel 5 by additionally evaluating the API in an inert atmosphere at various temperatures.
[0040] The instant invention may be employed to augment another API or RS test protocol.
[0041] APIs or pharmaceutical compositions with API(s) may be for administration to humans and/or animals. An RSwhich may be generally insert such as with an excipient, for example, gum arabic or a starch; an ointment or cream base; or a tablet coating, for example, a wax or synthetic polymer; or which may be more active such as a transdermal carrier, for example, dimethyl sulfoxidemay be for application for humans and/or animals, and may otherwise be for application to plant life in which case the RS may be a growth stimulant or inhibitor, an herbicide, a fertilizer, and so forth and the like. Accordingly, an RS may be for accompanying an API or be employed independently of an API.
INCORPORATIONS BY REFERENCE
[0042] The specification, to include drawings, of the aforementioned provisional patent application No. 62/601,955 is incorporated herein by reference in its entirety. And, the specifications to include drawings, of the aforementioned U.S. Pat. No. 7,678,328 B1, U.S. Pat. No. 8,679,405 B1 and U.S. Pat. No. 8,975,083 B2, and U.S. patent application Ser. No. 14/121,952 and U.S. 62/390,774, are incorporated herein by reference in their entireties.
CONCLUSION TO THE INVENTION
[0043] The present invention is thus provided. Various feature(s), part(s), step(s), subcombination(s) and/or combination(s) can be employed with or without reference to other feature(s), part(s), step(s), subcombination(s) and/or combination(s) in the practice of the invention, and numerous and sundry adaptations can be effected within its spirit, the literal claim scope of which is particularly pointed out by the following claims: