Claims
- 1. A calorimeter comprising:
a sample cell; a reference cell; a pressure system that applies a variable pressure to the sample cell; and a pressure controller that controls the pressure applied by the pressure system to the sample cell.
- 2. The calorimeter of claim 1, wherein the pressure system applies the variable pressure to both the sample cell and the reference cell simultaneously.
- 3. The calorimeter of claim 2, wherein the pressure system comprises a pressure chamber that communicates continuously with both the sample cell and the reference cell, the pressure in the pressure chamber determining the pressure applied to both the sample cell and the reference cell.
- 4. The calorimeter of claim 3, wherein the pressure controller comprises first and second pressure sources coupled to the pressure chamber, the first and second pressure sources applying first and second pressures, respectively, to the pressure chamber.
- 5. The calorimeter of claim 3, wherein the pressure controller further comprises a control valve, the valve allowing either a first pressure source to apply a first pressure to the pressure chamber or a second pressure source to apply a second pressure to the pressure chamber.
- 6. The calorimeter of claim 1, further comprising a heat monitoring system that determines differences between the amount of heat absorbed or released by the sample cell and by the reference cell.
- 7. The calorimeter of claim 6, wherein the heat monitoring system comprises a temperature sensor that monitors a temperature differential between the sample cell and the reference cell.
- 8. The calorimeter of claim 7, wherein the temperature sensor monitors the temperature differential that arises in response to a change in the pressure applied by the pressure system.
- 9. The calorimeter of claim 1, wherein the sample cell comprises a vessel shaped to contain a liquid.
- 10. The calorimeter of claim 9, wherein the pressure system applies the variable pressure to a liquid holding portion of the sample cell.
- 11. The calorimeter of claim 9, wherein the reference cell also comprises a vessel shaped to contain a liquid, and the sample cell vessel and the reference cell vessel are substantially identical in mass and volume.
- 12. The calorimeter of claim 11, wherein the reference cell vessel contains a liquid, and the sample cell contains a solution comprising the liquid and a test substance.
- 13. The calorimeter of claim 12, wherein the test substance comprises a biopolymer.
- 14. The calorimeter of claim 1, further comprising an electrical control system electrically coupled to the pressure controller.
- 15. The calorimeter of claim 14, wherein the electrical control system comprises a computer program disposed on a computer-readable medium, for automating operation of the microcalorimeter, the computer program including instructions for causing a processor to cause the pressure controller to periodically vary the pressure applied by the pressure system.
- 16. The calorimeter of claim 14, further comprising a heating assembly thermally coupled to the sample and reference cells and electrically coupled to the control system.
- 17. The calorimeter of claim 16, wherein the electrical control system comprises a computer program, disposed on a computer-readable medium, for automating operation of the microcalorimeter, the computer program including instructions for causing a processor to:
cause the heating assembly to change the temperature of the sample and reference cells at a rate specified by a user; and cause the pressure controller to periodically vary the pressure applied by the pressure system.
- 18. The calorimeter of claim 17, further comprising a temperature sensor that monitors a temperature differential between the sample cell and the reference cell, wherein the electrical control system is electrically coupled to the temperature sensor, and the computer program further includes instructions for causing the processor to store in a computer readable memory information sufficient to determine temperature differentials between the sample and reference cells that arise in response to each change in the pressure applied by the pressure system.
- 19. The calorimeter of claim 18, wherein the information sufficient to determine temperature differentials is selected from the group consisting of actual temperature differentials between the sample and reference cells, and differential power applied to the sample cell versus the reference cell in order to maintain the sample and reference cells at substantially equal temperatures.
- 20. A calorimeter comprising:
a sample cell; a reference cell; a pressure system in continuous communication with both the sample cell and the reference cell, the pressure system being configured to apply a pressure to both the sample cell and the reference cell; and a pressure controller that controls pressure applied by the pressure system, wherein the pressure controller is configured to vary the pressure applied by the pressure system.
- 21. The calorimeter of claim 20, further comprising a heat monitoring system that determines the differential heat effect between the sample cell and the reference cell in response to a change in the pressure applied by the pressure system.
- 22. A computer program, disposed on a computer-readable medium, for automating operation of a calorimeter, the calorimeter comprising a sample cell, a reference cell, and a temperature sensor that monitors a temperature differential between the sample cell and the reference cell, the computer program including instructions for causing a processor to:
periodically vary a pressure applied to the sample and reference cells; and store in memory information sufficient to determine temperature differentials that result when the pressure is varied.
- 23. The computer program of claim 22, wherein the calorimeter further comprises a heating assembly thermally coupled to the sample and reference cells, and the computer program further includes instructions for causing the processor to cause the heating assembly to scan the temperature of the sample and reference cells at a rate specified by a user.
- 24. A method of performing calorimetry comprising:
providing a calorimeter comprising a reference cell and a sample cell, the reference cell containing a liquid, and the sample cell containing a solution comprising the liquid and a test substance; varying the pressure above the solution in the sample cell and above the liquid in the reference cell; and determining a differential heat effect between the sample cell and the reference cell in response to a change in the pressure applied by the pressure system.
- 25. The method of claim 24, wherein the varying step includes applying a pressure perturbation to both the sample cell and the reference cell.
- 26. The method of claim 24, wherein the determining step includes measuring a difference between the temperature of the sample cell and the temperature of the reference cell.
- 27. A method of determining a thermal coefficient of expansion of a substance, the method comprising:
providing a first liquid holder containing a solution comprising the substance, and a second liquid holder containing a liquid in which the substance is not present; applying a pressure perturbation to the solution in the first liquid holder and to the liquid in the second liquid holder at a known temperature; determining a differential heat effect between the first and second liquid holders in response to the pressure perturbation; calculating, from the differential heat effect, the heat effect of the substance in response to the pressure perturbation; and using the first and second laws of thermodynamics to determine the thermal coefficient of expansion of the substance at the known temperature.
- 28. The method of claim 27, further comprising repeating the applying step through the using step at a plurality of known temperatures, and constructing a function for the thermal coefficient of expansion of the substance as a function of temperature.
- 29. A method of determining the change in volume occupied by a target molecule as the molecule transitions from a first structure to a second structure in response to a change in temperature, the method comprising:
providing a first liquid holder containing a solution comprising plurality of the target molecules, and a second liquid holder containing a liquid that comprises no target molecules; applying a pressure perturbation to the contents of the first and second liquid holders at a plurality of different temperatures, wherein the plurality of temperatures includes temperatures at which the target molecules are transitioning from the first structure to the second structure; determining a differential heat effect between the contents of the first and second liquid holders in response to each pressure perturbation; calculating, from each differential heat effect, the heat effect of the molecule in response to each pressure perturbation; and calculating a change in volume occupied by the target molecule from a data set that includes the pressure perturbation values, the temperatures at which each pressure perturbation was applied, the volume of an individual target molecule in either its first or its second structure, and the heat effect of the molecule for each pressure perturbation.
- 30. The method of claim 29, wherein the second calculating step includes:
determining a thermal coefficient of expansion (α) of the molecule at each temperature (T) in the data set; constructing a function α(T) from the data set; identifying, from the data set, a transition temperature range during which the target molecule is actively transitioning from the first structure to the second structure; constructing a second function α2(T) for the transition range, where α(T) represents the thermal expansion coefficients that would have been measured in the transition range if the molecule did not change volume as it transitioned from its first to its second structure; calculating the total area between α(T) and α2(T) over the transition range; and multiplying the total difference by the molar volume of the molecule.
- 31. The method of claim 29, wherein the target molecule is selected from the group consisting of a protein, an oligonucleotide, a lipid, and a carbohydrate.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application is a continuation of application Ser. No. 09/961,872, filed on Sep. 24, 2001, allowed, which is a division of application Ser. No. 09/858,622, filed on May 16, 2001, now U.S. Pat. No. 6,485,173, which is a division of application Ser. No. 09/362,412, filed on Jul. 28, 1999, abandoned, the contents of each of which are incorporated herein by reference.
Divisions (2)
|
Number |
Date |
Country |
Parent |
09858622 |
May 2001 |
US |
Child |
09961872 |
Sep 2001 |
US |
Parent |
09362412 |
Jul 1999 |
US |
Child |
09858622 |
May 2001 |
US |
Continuations (1)
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Number |
Date |
Country |
Parent |
09961872 |
Sep 2001 |
US |
Child |
10354934 |
Jan 2003 |
US |