EP0488769A2

Thermal cycler for automatic performance of the polymerase chain reaction with close temperature control.

Abstract

An instrument for performing highly accurate PCR employing a sample block in microtiter tray format. The sample block has local balance and local symmetry. A three zone film heater controlled by a computer and ramp cooling solenoid valves also controlled by the computer for gating coolant flow through the block controls the block temperature. Constant bias cooling is used for small changes. Sample temperature is calculated instead of measured. A heated cover deforms plastic caps to apply a minimum acceptable threshold force for seating the tubes and thermally isolates them. The control software includes diagnostics. An install program tests and characterizes the instrument. A new user interface is used. Disposable, multipiece plastic microtiter trays to give individual freedom to sample tubes are taught.

EP0488769A2, drawing sheet 1
Sheet 1 of 133

Term

Term ended

Projected expiry passed 29 November 2011, 14.8 years ago.

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  3. Published
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  5. Today

174 claims: 38 independent, 136 dependent

  1. 1
    A system for controlling an apparatus for automated performance of polymerase chain reactions in at least one sample tube containing a known volume of a liquid sample mixture, comprising:a. a sample block having at least one well for said at least one sample tube, b. a computing apparatus, c. Heating and cooling means controlled by said computing apparatus for changing the temperature of said sample block, and d. a block temperature sensor thermally coupled to said sample block, said sensor providing to said computing apparatus the temperature of said sample block over time, wherein said computing apparatus includes means for determining the temperature of said liquid sample mixture as a function of the temperature of said sample block over time.
  2. 18
    The apparatus of any of claims 12 through 15, wherein said computing apparatus adjusts said theoretical second power to make up said fraction in said current sample interval when said sample temperature in said immediately preceding sample interval is within an integral band of said target sample temperature after ramping, in order to close out remaining error.
  3. 20
    The apparatus of any of claims 12-19, wherein said computing apparatus adjusts said theoretical second power to make up said fraction in said current sample interval by adding thereto a power adjustment term, to account for power which, because of physical limitations, was not delivered in previous sample intervals, given by:where pwr_adj equals said power adjustment term, int_sum n is a value of an accumulating integral term at time n, int_sum n - i is a value of said accumulating integral term at time n-1, SP equals said target sample temperature after ramping, T sampn-1 equals the temperature of the sample at time n - 1 , and ki equals an integral gain constant.
  4. 27
    The apparatus of any of claims 24-26, wherein said computing apparatus determines said temperature of said sample block in said current sample intervall according to:where T Bn-1 is equal to the temperature of the block at time n-1, tinterval is the time in seconds between sample intervals, CP is equal to the thermal mass of said block, and Power is a total fourth power to all heating zones to achieve said preselected ramp rate.
  5. 28
    The apparatus of any of claims 24-27, wherein said computing apparatus determines the power lost to said foam backing as a function of said temperature of said foam backing according to:where foam-pwr is said power lost to said foam backing at time n, T foam , is equal to the temperature of the foam at time n and C is equal to the thermal mass of the foam backing.
  6. 29
    The apparatus of any of claims 23-28 additionally comprising means for delivering a bias coolant constantly applied to said sample block, wherein said computing apparatus determines the power lost to said manifolds in said current sample interval according to:where manifold_loss equals said power lost to said manifolds in said current sample interval, KA equals an end edge region-to-ambient conductance constant, T An equals the ambient temperature at the time n, Tc equals a temperature of said bias coolant at time n, KC equals a sample block-to-coolant conductance constant, Tm equals the thermal mass of said manifolds and dT/dt equals said preselected ramp rate.
  7. 30
    The apparatus of any of claims 23-29, wherein said apparatus for performing automated polymerase chain reactions includes an enclosure for said sample block defining an enclosed ambient atmosphere and said computing apparatus determines the power lost to ambient in said currant sample interval according to:where ambient-loss is said power lost to said ambient in said current sample interval, K2A equals an end edge region-to-ambient conductance constant, Tkequals ambient temperature at time n, K2C equals an end edge region-to-coolant constant, T Co equals the coolant temperature at time n, TM2 equals the thermal mass of said enclosed ambient atmosphere, and dT/dt equals said preselected ramp rate.
  8. 48
    The apparatus of either of claims 46-47, wherein said computing apparatus further comprises means for storing a plurality of protocols.
  9. 49
    The apparatus of any of claims 46-48, wherein said computing apparatus comprises means for including any said profile in a plurality of said protocols.
  10. 50
    The apparatus of any of claims 46-49, wherein said computing apparatus comprises means for protecting a profile included in any protocol from being deleted or overwritten.
  11. 53
    The apparatus of either of claims 51-52, further comprising means for automatically starting a soak upon restoration of said electrical power, said soak being at a temperature selected to maximize the chance of saving said samples.
  12. 55
    The apparatus of any of claims 45-54 further including means for automatically increasing the hold time of any or all setpoints from cycle to cycle in said cycle count.
  13. 57
    The apparatus of either of claims 55-56, wherein said automatic increases in the hold time of any or all setpoints from cycle to cycle are by first user defined values input via said input device.
  14. 60
    The apparatus of any of claims 45-59 further including means for automatically decreasing the hold time of any or all setpoints from cycle to cycle in said cycle count.
  15. 62
    The apparatus of either of claims 60-61, wherein said automatic decreases in the hold time of any or all setpoints from cycle to cycle are by second user defined values input via said input device.
  16. 65
    The apparatus of any of claims 45-64 further including means for automatically increasing the setpoint temperature of any or all setpoints from cycle to cycle in said cycle count.
  17. 67
    The apparatus of either of claims 65-66, wherein said automatic increases in the setpoint temperature of any or all setpoints from cycle to cycle are by third user defined values input via said input device.
  18. 70
    The apparatus of any of claims 45-69 further including means for automatically decreasing the setpoint temperature of any or all setpoints from cycle to cycle in said cycle count.
  19. 72
    The apparatus of either of claims 70-71, wherein said automatic decreases in the setpoint temperature of any or all setpoints from cycle to cycle are by fourth user defined values input via said input device.
  20. 75
    The apparatus of any of claims 43-74, further comprising a programmed pause option means to automatically halt a run for a user defined period of time.
  21. 77
    The apparatus of any of claims 7-76 further comprising a means to allow a user to define, via said input device, a temperature range such that said setpoint hold time will begin when said sample temperature is within said temperature range of said setpoint temperature.
  22. 88
    The apparatus of any of claims 43-50, wherein said computing apparatus comprises a means to display, during a run, the sample temperature at any given time in the run.
  23. 94
    The apparatus of any of claims 65-74, further comprising a means to check that the said automatically modified setpoint sample temperature has not exceeded 100°C and/or has not gone below 0°C.
  24. 95
    The apparatus of any of claims 55-74, further comprising a means to check that said automatically modified setpoint hold time is not negative.
  25. 98
    The apparatus of any of claims 43-50, further comprising means for printing information stored in said system.
  26. 100
    The apparatus of any of claims 1-99, further comprising the ability to perform all available user interface junctions remotely.
  27. 101
    The apparatus of any of claims 1-99 wherein said computing apparatus comprises means to display a menu driven user interface to reduce user reliance on written manuals.
  28. 102
    The apparatus of any of claims 43-50 wherein said computing apparatus maintains a history file of an immediately previous run containing details of said previous run intended for integrity checks and error analysis.
  29. 103
    A method for computer control of the automated performance of polymerase chain reactions in at least one sample tube containing a known volume of liquid sample mixture by means of a computer-controlled thermocycler including a computing apparatus, a sample block having at least one well for said at least one sample tube, a block temperature sensor thermally coupled to said sample block, and heating and cooling means controlled by said computing apparatus for changing the temperature of said sample block, comprising the steps by said computing apparatus of a. reading the block temperature at predetermined times, b. determining the temperature of said liquid sample mixture as a function of the temperature of said sample block over time, and c. controlling said heating and cooling means as a function of said sample temperature.
  30. 107
    Thermocycler apparatus suitable for automated performance of the polymerase chain reaction comprising a. a metal sample block having a major top surface and a major bottom surface, b. an array of spaced-apart sample wells formed in said major top surface, c. bias cooling constantly applied to said sample block at a rate sufficient to cause said block, if at a temperature within the range of 35-100°C, to cool uniformly at a rate of at least about 0.1 °C/sec unless external heat is supplied, and d. computer-controllable heating means responsive to said compuer system capable of uniformly raising the temperature of said block at a rate greater than the bias cooling rate, said thermocycler apparatus being capable, under the control of a computer, of maintaining the array of sample wells at a constant in the range of 35-100°C within a tolerance band of plus or minus about 0.5°C.
  31. 129
    Thermocycler apparatus according to any of claims 107-128 further comprising a computer system for controlling said heating means.
  32. 130
    Thermocycler apparatus according to any of claims 119-124 wherein said computer system controls said ramp cooling means.
  33. 131
    Thermocycler apparatus suitable for automated, rapid performance of the polymerase chain reaction comprising a. a thermally homogeneous metal sample block of low thermal mass having a major top surface and a major bottom surface, said block containing in a central region of its upper surface an 8-by-12 rectangular array of sample wells having center-to-center spacing compatible with industry standard microtiter plate format, said block also containing a peripheral region surrounding said array, said peripheral region comprising a guard band having thermal characteristics similar to the thermal characteristics of the central region, b. a bias cooling system for constantly cooling said sample block at a bias cooling rate sufficient to cause said block, if at a temperature within the range of35-100°C, to cool uniformly at a rate of at least about 0.1°C/sec unless external heat is supplied, c. a computer system for receiving and storing user data regarding times and temperatures defining a plurality of reaction cycles, d. a ramp cooling system controlled by said computer system for selectively cooling said sample block at a ramp cooling rate of at least about 4°C/sec from 100°C and at least about 2°C/sec from 40°C, e. a multizone heating system controlled by said computer system having a heating zone for the central region of the block and a heating zone for the guard band, said heating system being capable of providing heat necessary to maintain the sample block at a constant temperature in the range of 35-100°C and also capable of providing ramp heating to the block, f. a pressing cover vertically displaceable above said sample block, and g. cover displacing means for raising said cover and for lowering said cover and maintaining its vertical position against a resisting force of at least about 3000 grams, said thermocycler apparatus being capable of maintaining the array of sample wells at a constant temperature in the range of 35-100°C within a tolerance band of plus or minus 0.5°C.
  34. 141
    A two-piece plastic holder for loosely holding up to 96 microtiter sample tubes of a preselected design, each having a cylindrically shaped upper section open at its top end and a closed, tapered lower section extending downwardly therefrom, each tube being of circular cross section and having a circumferential shoulder extending outwardly from said upper section at a position on said upper section below the open end thereof, comprising a. a one-piece tray member comprising i. a flat, horizontal plate section containing 96 holes in an 8-by-12 rectangular array compatible with industry standard microtiter plate format, said holes being slightly larger than the outside diameter of the upper sections of said tubes but smaller than the outside diameter of said shoulder, ii. a first vertical tray sidewall section completely around said plate extending upwardly to a height greater than the height of a tube resting in one of said holes, iii. a second vertical tray sidewall section around said plate extending downwardly approximately to the bottom of the upper section of a tube resting in one of said holes, b. a one-piece retainer releasably engageable inside said tray over any sample tubes resting in said tray comprising i. a flat, horizontal plate section containing 96 holes in an 8-by-12 rectangular array compatible with industry standard microtiter plate format, said holes being slightly larger than the outside diameter of the upper sections of said tubes but smaller than the outside diameter of said shoulder, ii. a vertical retainer sidewall section around said retainer plate section extending upwardly from said plate, wherein when said retainer is engaged inside said tray, the retainer plate section lies slightly above the shoulder of a tube resting in said tray and the first tray sidewall section is about as high as said retainer sidewall section, whereby tubes resting in said tray are retained loosely both vertically and laterally.
  35. 157
    Apparatus accoridng to claim 156 wherein said caps are deformable by heat and vertically downward force.
  36. 159
    In a thermocycler apparatus suitable for performing the polymerase chain reaction, which thermocycler apparatus includes a metal sample block having an array of spaced-apart sample wells each of which has an inside surface, said wells being provided with one or more capped sample tubes each containing a sample mixture placed in a microtiter plate having an uppermost edge, which plate is seated on said sample block, a cover to enclose said capped sample tubes, which cover comprises a flat, horizontal rectangular portion and downwardly projecting skirt portions along the periphery thereof and further comprises a device for heating at least the underside of said horizontal portion, said cover being dimensioned to contact said sample block and to enclose said microtiter plate and capped sample tubes on said sample block when the tops of the capable on said sample tubes deform, due to the application of heat and a downwardly directed force on said cover.
  37. 164
    In a thermocycler apparatus suitable for performing the polymerase chain reaction having a sample well in which is seated at least one capped plastic sample tube containing a sample mixture, the improvement comprising a heated cover to aid in providing flush contact between said at least one sample tube and said sample well.
  38. 165
    A disposable reaction container comprising a substantially conically shaped first wall portion and a substantially cylindrically shaped second wall portion, said first wall portion being adapted to contact along substantially its entire outer surface a correspondingly shaped portion of a heat exchanger, said first wall portion being substantially thinner in wall cross-section than said second wall portion.
Independent claims38