Claims
- 1. In a method for effecting a base-pair length based separation of a mixture of double-stranded DNA fragments with a high pressure liquid chromatography system comprising mobile phase flow control means for controlling the flow of solvent solution and aqueous components of a mobile phase, the flow control means including computer instruction input means; a Matched Ion Polynucleotide Chromatography separation column; conduit means for directing mobile phase from the mobile phase flow control means to the separation column; and a computer in communication with the mobile phase flow control means having a software mobile phase flow control module resident therein; the computerized steps of:
a) receiving the numerical range of base-pair lengths in the mixture of DNA fragments to be separated; b) calculating the range of solvent concentrations and corresponding solvent gradient which will effect separation of selected fragments having said range of base-pair lengths, wherein said calculating comprises using an algorithm for calibrating said chromatography system and said column, wherein said algorithm relates the base pair length of DNA fragments in a standard mixture of double-stranded DNA fragments to solvent concentration required to elute the fragments in said standard mixture; c) providing said range of solvent concentrations and corresponding solvent gradient to the mobile phase flow control module; and d) conducting the separation, wherein the mobile phase flow control module controls the settings of the mobile phase flow control means to effect said range of solvent concentrations and corresponding solvent gradient required to effect separation of the selected fragments.
- 2. The method of claim 1 wherein the mobile phase flow control means are a set of flow control valves, each with automatic opening controls responsive to control commands from the flow control module.
- 3. The method of claim 1 wherein the mobile phase flow control means are a set of pumps, the flow setting of which are responsive to control commands from the flow control module.
- 4. The method of claim 1 wherein the selected base-pair length based separation of fragments is a separation of all of the fragments of the mixture of DNA fragments.
- 5. The method of claim 1 wherein the selected base-pair length based separation of fragments is a separation of one or more fragments of the mixture of DNA fragments.
- 6. The method of claim 1 wherein the gradient includes an isocratic gradient.
- 7. The method of claim 1 wherein the solvent concentration is calculated to begin below the value of %B calculated for the smallest fragment in said mixture of DNA fragments to be separated and is calculated to end above the value of %B calculated for the largest fragment in said mixture of DNA fragments to be separated, wherein %B is the percentage in the mobile phase of an aqueous solution containing organic solvent; wherein said %B is calculated by a linear, hyperbolic, quadratic or cubic formula having constants obtained by calibration of the chromatography system and separation column for the selected solvent with said standard mixture of double-stranded DNA fragments.
- 8. The method of claim 1 wherein the solvent concentration is calculated to begin below the value of %B calculated for the smallest fragment in said mixture of DNA fragments to be separated and is calculated to end above the value of %B calculated for the largest fragment in said mixture of DNA fragments to be separated, wherein %B is calculated by the following formula:
- 9. The method of claim 1 wherein the solvent concentration is calculated to begin below the value of %B calculated for the smallest fragment in said mixture of DNA fragments to be separated and is calculated to end above the value of %B calculated for the largest fragment in said mixture of DNA fragments to be separated, wherein %B is calculated by the following formula:
- 10. A high pressure liquid chromatography system including a computerized control means, the chromatography system comprising mobile phase flow control means for controlling the flow of solvent solution and aqueous components of a mobile phase, the flow control means including computer instruction input means; a Matched Ion Polynucleotide Chromatography separation column; conduit means for directing mobile phase from the mobile phase flow control means to the separation column; and a computer in communication with the mobile phase flow control means; a software mobile phase flow control module in working association with the computer and the mobile phase flow control means, wherein the mobile phase flow control means are a set of flow control valves, each with automatic opening controls responsive to control commands from the flow control module or the mobile phase control means is a set of pumps, the flow setting of which are responsive to control commands from the flow control module, said computer including solvent concentration and gradient computing software for computing the solvent gradient beginning and ending solvent concentrations for the separation of double-stranded DNA fragments.
- 11. The high pressure liquid chromatography system of claim 10 wherein the solvent concentration and gradient computing software comprises software means for receiving the range of fragment base pair lengths to be separated in a mixture of double-stranded DNA fragments and calculating the solvent concentration to begin below the value of %B calculated for the smallest fragment in said mixture of DNA fragments to be separated and is calculated to end above the value of %B calculated for the largest fragment in said mixture of DNA fragments to be separated, wherein said %B is the percentage in the mobile phase of an aqueous solution containing organic solvent, wherein said %B is calculated by a linear, hyperbolic, quadratic or cubic formula having constants obtained by calibration of the chromatography system and separation column for the selected solvent with a standard mixture of double-stranded DNA fragments, wherein said calibration comprises relating the base pair length of DNA fragments in a standard mixture of double-stranded DNA fragments to the %B required to elute the fragments in said standard mixture.
- 12. The high pressure liquid chromatography system of claim 10 wherein the solvent concentration and gradient computing software comprises software means for receiving the range of fragment base pair lengths to be separated in a mixture of double-stranded DNA fragments and calculating the solvent concentration to begin below the value of %B calculated for the smallest fragment to be separated and to end above the value of % B calculated for the largest fragment to be separated, wherein %B is calculated by the following formula:
- 13. The high pressure liquid chromatography system of claim 10 wherein the solvent concentration and gradient computing software comprises software means for receiving the range of fragment base pair lengths to be separated in a mixture of double-stranded DNA fragments and calculating the solvent concentration to begin below the value of %B calculated for the smallest fragment to be separated and to end above the value of % B calculated for the largest fragment to be separated, wherein %B is calculated by the following formula:
- 14. A software program comprising means for receiving a range of base pair lengths to be separated from a mixture of double-stranded DNA fragments, means for calculating solvent concentrations required to separate the range of base pair lengths to be separated by Matched Ion Polynucleotide Chromatography, and means for selecting the solvent gradient to be used to separate the range of base pair lengths to be separated by Matched Ion Polynucleotide Chromatography, wherein the means for calculating said solvent concentrations includes means for calculating the solvent concentration to begin below the value of %B calculated for the smallest fragment in said mixture to be separated and is calculated to end above the value of %B calculated for the largest fragment in said mixture to be separated, wherein %B is the percentage in the mobile phase of an aqueous solution containing organic solvent, wherein said %B is calculated by a linear, hyperbolic, quadratic or cubic formula having constants obtained by calibration of the chromatography system and separation column for the selected solvent with a standard mixture of double-stranded DNA fragments.
- 15. A software program of claim 14, wherein %B is calculated by the following formula:
- 16. A software program of claim 14 wherein %B is calculated by the following formula:
- 17. In a method for effecting a separation of equal length heteroduplex and homoduplex DNA molecules in a mixture, with a high pressure liquid chromatography system comprising a Matched Ion Polynucleotide Chromatography separation column; oven temperature control means for controlling the temperature of mobile phase entering the column, the oven temperature control means including computer instruction input means; and a computer in communication with the oven temperature control means having a oven temperature control software module resident therein; the method comprising the computerized steps of:
analyzing the mixture by Denaturing Matched Ion Polynucleotide chromatography in a series of Denaturing Matched ion Polynucleotide Chromatography separations in the temperature range of about 50° C. to about 75° C., each successive separation having a higher temperature than the preceding separation until a mutation separation profile is observed or the absence of any mutation separation profile in the mutation separation temperature range is observed, wherein a mutation separation profile identifies the presence of a mutation and the absence of a mutation separation profile indicates an absence of mutation in the sample; and wherein the oven temperature control module controls the settings of the oven temperature control means to effect the temperature during the successive separations.
- 18. In a method for effecting a separation of equal length heteroduplex and homoduplex DNA molecules in a mixture, with a high pressure liquid chromatography system comprising a Matched Ion Polynucleotide Chromatography separation column; oven temperature control means for controlling the temperature of mobile phase entering the column, the oven temperature control means including computer instruction input means; and a computer in communication with the oven temperature control means having a oven temperature control software module resident therein; the method comprising the computerized steps of:
analyzing the mixture by Denaturing Matched Ion Polynucleotide Chromatography in a series of Denaturing Matched Ion Polynucleotide Chromatography separations in the temperature range of 50° C. to about 75° C., each successive separation having a lower temperature than the preceding separation until a mutation separation profile is observed or the absence of any mutation separation profile in the mutation separation temperature range is observed, wherein a mutation separation profile identifies the presence of a mutation and the absence of a mutation separation profile indicates an absence of mutation in the sample; and wherein the oven temperature control module controls the settings of the oven temperature control means to effect the temperature during the successive separations.
- 19. The method of claim 17 wherein said Matched Ion Polynucleotide Chromatography separation column has an inlet end, and wherein the oven temperature control means comprises: an air bath oven having a re-circulating air temperature control system; a length of capillary tubing having an inlet end and an outlet end, the outlet end of the capillary tubing being connected with the inlet end of the separation column, and the inlet end of the capillary tubing comprising means for receiving process liquid, the tubing having a fully extended length of from 6 to 400 cm; and the separation column and the coil of capillary tubing being enclosed in the air bath oven and exposed to air therein, said temperature control system responsive to control commands from the oven temperature control module.
- 20. The method of claim 17 wherein the oven temperature control means comprises: a heat conducting block having a first heat transfer surface, a separation column receptacle, and a capillary coil receptacle; a separation column positioned within the separation column receptacle in heat conducting relationship with an inner wall thereof; and a coil of capillary tubing positioned in the capillary coil receptacle, the outer extremities of the coil being in heat conducting relationship with an inner wall of the capillary coil receptacle, said temperature control system responsive to control commands from the oven temperature control module.
- 21. The method of claim 20 wherein the oven temperature control means comprises a Peltier heating and cooling unit, the Peltier heating and cooling unit being in heat conducting relationship with said first heat transfer surface.
- 22. In a method for effecting a separation of equal length heteroduplex and homoduplex DNA molecules in a mixture, with a high pressure liquid chromatography system comprising a Matched Ion Polynucleotide Chromatography separation column; oven temperature control means for controlling the temperature of mobile phase entering the separation column, the oven temperature control means including computer instruction input means; and a computer in communication with the oven temperature control means having a oven temperature control software module resident therein; the method comprising the computerized steps of:
a) receiving a predicted heteromutant site separation temperature; b) heating said mixture of DNA molecules to said predicted heteromutant site separation temperature; and c) analyzing the product of step (b) with Denaturing Matched Ion Polynucleotide Chromatography at the predicted heteromutant site separation temperature to identify the presence of any heteromutant site separated components therein.
- 23. The method of claim 22 wherein the predicted heteromutant site separation temperature is obtained by the steps of:
a) a calculation step for obtaining a calculated heteromutant site separation temperature; b) a prediction step for obtaining the predicted heteromutant site separation temperature; wherein the calculation step comprises calculating said calculated heteromutant site separation temperature according to a first mathematical model; wherein the prediction step comprises adjusting said calculated heteromutant site separation temperature according to a second mathematical model; wherein the second mathematical model is based on a comparison of empirically determined heteromutant site separation temperatures with calculated heteromutant site separation temperatures.
- 24. A method of claim 22 wherein the predicted heteromutant site separation temperature is calculated by the following formula: T(hsst)=X+m·T(w), wherein T(hsst) is the predicted heteromutant site separation temperature, T(w) is the temperature calculated by software or determined experimentally, at which there is a selected equilibrium between denatured and non-denatured states of the wild type double stranded DNA, X is the Denaturing Matched Ion Polynucleotide Chromatography detection factor, and m is a weighting factor selected between 0 and 2.
- 25. A denaturing high pressure liquid chromatography system including a computerized control means, the chromatography system comprising a Matched Ion Polynucleotide Chromatography separation column; oven temperature control means for controlling the temperature of the mobile phase entering the separation column, the temperature control means including computer instruction input means; conduit means for directing mobile phase the MIPC separation column; a computer in communication with the oven temperature control means; a oven temperature control software module in working association with the computer and the oven temperature control means, said computer including temperature computing software for computing the heteromutant site separation temperature for the separation of equal length heteroduplex and homoduplex DNA molecules in a mixture.
- 26. The system of claim 25 wherein said Matched Ion Polynucleotide Chromatography separation column has an inlet end, and wherein the oven temperature control means comprises: an air bath oven having a re-circulating air temperature control system; a length of capillary tubing having an inlet end and an outlet end, the outlet end of the capillary tubing being connected with the inlet end of the separation column, and the inlet end of the capillary tubing comprising means for receiving process liquid, the tubing having a fully extended length of from 6 to 400 cm; and the separation column and the coil of capillary tubing being enclosed in the air bath oven and exposed to air therein, said temperature control system responsive to control commands from the oven temperature control module.
- 27. The system of claim 25 wherein the oven temperature control means comprises: a heat conducting block having a first heat transfer surface, a separation column receptacle, and a capillary coil receptacle; a separation column positioned within the separation column receptacle in heat conducting relationship with an inner wall thereof; and a coil of capillary tubing positioned in the capillary coil receptacle, the outer extremities of the coil being in heat conducting relationship with an inner wall of the capillary coil receptacle, said temperature control system responsive to control commands from the oven temperature control module.
- 28. The method of claim 27 wherein the oven temperature control means comprises a Peltier heating and cooling unit, the Peltier heating and cooling unit being in heat conducting relationship with said first heat transfer surface.
- 29. A software program comprising means for receiving the base pair length of equal length heteroduplex and homoduplex DNA molecules in a mixture to be separated, means for calculating a heteromutant site separation temperature required for the separation of said equal length heteroduplex and homoduplex DNA molecules by Denaturing Matched Ion Polynucleotide Chromatography, wherein said heteromutant site separation temperature is calculated by the following formula: T(hsst)=X+m·T(w), wherein T(hsst) is the heteromutant site separation temperature, T(w) is the temperature calculated by software or determined experimentally, at which there is a selected equilibrium between denatured and non-denatured states of the wild type double stranded DNA, X is the Denaturing Matched Ion Polynucleotide Chromatography detection factor, and m is a weighting factor selected between 0 and 2.
- 30. In a method for effecting a separation of equal length heteroduplex and homoduplex DNA molecules in a mixture, with a high pressure liquid chromatography system comprising mobile phase flow control means for controlling the flow of solvent solution and aqueous components of a mobile phase, the flow control means including computer instruction input means; a Matched Ion Polynucleotide Chromatography separation column; conduit means for directing mobile phase from the mobile phase flow control means to the separation column; and a computer in communication with the mobile phase flow control means having a software mobile phase flow control module resident therein; the computerized steps of:
a) receiving the numerical value of the base-pair length of a double-stranded DNA molecule having the length of a homoduplex or heteroduplex molecule in the mixture; b) calculating a solvent concentration which will effect elution of a molecule having said base-pair length from said column under non-denaturing conditions, wherein said calculating comprises using an algorithm for calibrating said chromatography system and said column, wherein said algorithm relates the base pair length of DNA fragments in a standard mixture of double-stranded DNA fragments to solvent concentration required to elute the fragments in said standard mixture; c) calculating a range of solvent concentrations and corresponding mobile phase gradient to begin below a solvent concentration that will elute said double-stranded DNA molecule and to end above a solvent concentration that will elute said double-stranded DNA molecule; d) providing said range of solvent concentrations and corresponding mobile phase gradient to the mobile phase flow control module; and e) conducting the separation under conditions effective to partially denature said heteroduplexes, wherein the mobile phase flow control module controls the settings of the mobile phase flow control means to effect said range of solvent concentrations and corresponding mobile phase gradient to effect separation of said homoduplex and said heteroduplex molecules.
- 31. The method of claim 30 wherein the mobile phase flow control means are a set of flow control valves, each with automatic opening controls responsive to control commands from the flow control module.
- 32. The method of claim 30 wherein the mobile phase flow control means are a set of pumps, the flow setting of which are responsive to control commands from the flow control module.
- 33. The method of claim 30 wherein the gradient includes an isocratic gradient.
- 34. The method of claim 30 wherein the solvent concentration is calculated to begin below the value of %B calculated for a DNA molecule having said base-pair length a and is calculated to end above the value of %B calculated for a DNA molecule of said base-pair length, wherein said %B is the percentage in the mobile phase of an aqueous solution containing organic solvent, wherein said %B is calculated by a linear, hyperbolic, quadratic or cubic formula having constants obtained by calibration of the chromatography system and separation column for the selected solvent with said standard mixture of double-stranded DNA fragments.
- 35. A denaturing high pressure liquid chromatography system including a computerized control means, the chromatography system comprising mobile phase flow control means for controlling the flow of solvent solution and aqueous components of a mobile phase, the flow control means including computer instruction input means; a Matched Ion Polynucleotide Chromatography separation column; conduit means for directing mobile phase from the mobile phase flow control means to the separation column; and a computer in communication with the mobile phase flow control means; a software mobile phase flow control module in working association with the computer and the mobile phase flow control means, wherein the mobile phase flow control means are a set of flow control valves, each with automatic opening controls responsive to control commands from the flow control module or the mobile phase control means is a set of pumps, the flow setting of which are responsive to control commands from the flow control module, said computer including solvent concentration and gradient computing software for computing the solvent gradient and beginning and ending solvent concentrations for the separation of equal length heteroduplex and homoduplex DNA molecules in a mixture.
- 36. The high pressure liquid chromatography system of claim 35 wherein the solvent concentration and gradient computing software comprises software means for receiving the base-pair length of a homoduplex or a heteroduplex molecule in said mixture and calculating the solvent concentration to begin below the value of %B calculated for a DNA molecule having said base-pair length and is calculated to end above the value of %B calculated for a DNA molecule of said base-pair length, wherein %B is the percentage in the mobile phase of an aqueous solution containing organic solvent, wherein said %B is calculated by a linear, hyperbolic, quadratic or cubic formula having constants obtained by calibration of the chromatography system and separation column for the selected solvent with a standard mixture of double-stranded DNA fragments.
- 37. A software program comprising means for receiving the base pair length of equal length heteroduplex and homoduplex DNA molecules in a mixture to be separated, means for calculating a solvent concentration required to elute a DNA molecule having said base-pair length by Matched Ion Polynucleotide Chromatography, and means for selecting the solvent gradient to be used to separate said heteroduplex and homoduplex DNA molecules under partially denaturing conditions, wherein the means for calculating said solvent concentration includes means for calculating the solvent concentration to begin below the value of %B calculated for a DNA molecule having said base-pair length and is calculated to end above the value of %B calculated for a DNA molecule of said base-pair length, wherein %B is the percentage in the mobile phase of an aqueous solution containing organic solvent, wherein said %B is calculated by a linear, hyperbolic, quadratic or cubic formula having constants obtained by calibration of the chromatography system and separation column for the selected solvent with a standard mixture of DNA fragments.
- 38. A software program of claim 37, wherein %B is calculated by the following formula:
- 39. A software program of claim 37 wherein %B is calculated by the following formula:
- 40. In a method for effecting a separation of equal length heteroduplex and homoduplex DNA molecules in a mixture, with a high pressure liquid chromatography system comprising a Matched Ion Polynucleotide Chromatography separation column; mobile phase flow control means for controlling the flow of solvent solution and aqueous components of a mobile phase, the flow control means including computer instruction input means; conduit means for directing mobile phase from the mobile phase flow control means to the separation column; oven temperature control means for controlling the temperature of mobile phase entering the separation column, the oven temperature control means including computer instruction input means; and a computer in communication with the mobile phase flow control means having a software mobile phase flow control module resident therein; said computer in communication with the oven temperature control means having a oven temperature control software module resident therein; the method comprising the computerized steps of:
a) receiving the numerical value of the base-pair length of a double-stranded DNA molecule having the length of a homoduplex or heteroduplex molecule in the mixture; b) calculating a %B which will effect elution of a double-stranded DNA molecule having said base-pair length from said column under non-denaturing conditions, wherein said calculating comprises using an algorithm for calibrating said chromatography system and said column, wherein said algorithm relates the base pair length of a standard mixture of double-stranded DNA fragments to the %B required to elute the fragments in said standard mixture, wherein %B is the percentage in the mobile phase of an aqueous solution containing organic solvent; c) calculating a range of %B and corresponding mobile phase gradient to begin below the value of %B that will elute said double-stranded DNA molecule having said base-pair length and to end above a %B that will elute said double-stranded DNA molecule having said base-pair length; d) providing said range of %B and corresponding mobile phase gradient to the mobile phase flow control module; e) receiving a predicted heteromutant site separation temperature;
heating said mixture of DNA molecules to said predicted heteromutant site separation temperature; and f) conducting the separation, wherein the mobile phase flow control module controls the settings of the mobile phase flow control means to effect said range of %B and corresponding mobile phase gradient required to effect separation of the homoduplex and heteroduplex fragments by Denaturing Matched Ion Polynucleotide Chromatography at the predicted heteromutant site separation temperature to identify the presence of any heteromutant site separated components in the mixture.
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] This application is a continuation application of U.S. patent application Ser. No. 09/469,551, filed Dec. 22, 1999, which is a continuation-in-part of U.S. patent application Ser. No. 09/457,125, filed Dec. 7, 1999 (abandoned), which is a continuation-in-part of U.S. patent application Ser. No. 09/129,105, filed Aug. 4, 1998 (now U.S. Pat. No. 6,287,822). This application is a regular U.S. patent application under 35 U.S.C. §111 (a) and 35 U.S.C. §1.53(b) and claims priority from the following, commonly assigned provisional applications, each filed under 35 U.S.C. §111 (b), all of which are incorporated herein by reference: No. 60/140,130 filed Jun. 21, 1999; No. 60/141,176 filed Jun. 25, 1999; and No. 60/146,713 filed Jul. 30, 1999.
Continuations (1)
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Number |
Date |
Country |
Parent |
09469551 |
Dec 1999 |
US |
Child |
10308576 |
Dec 2002 |
US |
Continuation in Parts (2)
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Number |
Date |
Country |
Parent |
09457125 |
Dec 1999 |
US |
Child |
09469551 |
Dec 1999 |
US |
Parent |
09129105 |
Aug 1998 |
US |
Child |
09457125 |
Dec 1999 |
US |