IP Library Granted Patent US 8,388,220
Granted Patent B2
US 8,388,220 · App. 12/598,672 · Granted Mar 5, 2013

Large array differential scanning calorimeter, DSC measuring unit

Inventors: Edwin A. Lewis (Starkville, MS); Donald J. Russell (Orem, UT)
Assignee: Waters Technologies Corporation
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 8,388,220
App. No.
12/598,672
Granted
Mar 5, 2013
Kind
B2
Abstract

Embodiments of the present invention feature a method and apparatus for an energetics-based approach to screen and to characterize binding interactions between potential therapeutic (or diagnostic) agents and unknown target molecules. The methods and apparatus detect the occurrence of these reactions, the strength of the binding interaction and possibly the rate at which these processes take place.

Claims (38)

1. A calorimeter array comprising:

a) one or more scan control modules;

b) a scan block in thermal communication with the scan control modules;

c) one or more temperature control modules;

d) a two-stage calorimetric block having first and second stages in thermal communication with the temperature control modules, said two-stage calorimetric block comprising a passive low thermal conductivity dampening layer between the first and second stages of the two-stage calorimetric block;

e) an array of heat flow sensors coupled to the two-stage calorimetric block;

f) an array of sensor pins in thermal communication with the array of heat flow sensors, said array of sensor pins corresponding to the array of heat flow sensors, and said array of sensor pins configured to fit into a well plate having a corresponding array of sample wells,

wherein the sensor pins are configured to be inserted into the sample wells;

g) an adiabatic shield; and

h) one or more shield control modules in thermal communication with the adiabatic shield.

2. The calorimeter array of claim 1 , wherein temperature gradients in the calorimeter block are minimized using the adiabatic shield, said adiabatic shield comprising a metallic block made of a high thermal conductivity and high heat capacity material, having an array of holes dimensioned and located such that the array of sensor pins corresponds to the array of holes in the metallic block.

3. The calorimeter array of claim 1 , wherein the array of heat flow sensors comprises 96 heat flow sensors, and wherein each of the 96 heat flow sensors may be used in either a single ended or differential mode when paired with any other sensor in the array or with several other specifically located sensors in the array.

4. The calorimeter array of claim 1 , wherein the adiabatic shield is capable of receiving a 96 well sample plate.

5. The calorimeter array of claim 1 , further comprising a 96 well sample plate, wherein each of the 96 wells in the 96 well sample plate is sealed to a pressure adequate to contain water at temperatures to 120° C.

6. The calorimeter array of claim 1 , further comprising a sample well plate, a sealing gasket positioned over the sample well plate and a lift assembly capable of generating an applied sealing force to the sealing gasket adequate to prevent loss of water through evaporation or boiling at temperatures to 120° C.

7. A calorimeter array comprising:

a) one or more scan control modules;

b) a scan block in thermal communication with the scan control modules;

c) one or more temperature control modules;

d) a two-stage calorimetric block in thermal communication with the temperature control modules;

e) a passive low thermal conductivity dampening layer between the two stages of the two-stage calorimetric block;

f) an array of heat flow sensors coupled to the calorimetric block; and

g) an array of sensor pins, wherein each of the sensor pins is in thermal communication with a corresponding heat flow sensor in the array of heat flow sensors.

8. The calorimeter array of claim 7 , wherein the two-stage calorimeter block has a first stage and a second stage, and wherein the temperature of the first stage is actively controlled and the temperature of the second stage is passively controlled.

9. The calorimeter array of claim 7 , wherein the dampening layer comprises an aluminum layer and a silicone rubber layer.

10. The calorimeter array of claim 7 , further comprising a well plate comprising an array of sample wells covered by one or more protective membranes, wherein the array of sensor pins is configured to puncture through the protective membranes and enter the array of sample wells.

11. A calorimeter array comprising:

a) one or more scan control modules;

b) a scan block in thermal communication with the scan control modules;

c) one or more temperature control modules;

i) a two-stage calorimetric block in thermal communication with the temperature control modules, said two-stage calorimetric block comprising a passive low thermal conductivity dampening layer between the first and second stages of the two-piece calorimetric block;

d) an array of heat flow sensors coupled to the calorimetric block;

e) a matching array of sensor pins in thermal communication with the heat flow sensors; and

f) a well plate comprising a matching array of sample wells containing liquid samples, wherein each of the sensor pins is configured to fit into a corresponding sample well in the array of sample wells.

12. The calorimeter array of claim 11 , further comprising a well seal gasket having a matching array of channels.

13. The calorimeter array of claim 12 , further comprising one or more protective membranes positioned over one or more of the channels.

14. The calorimeter array of claim 13 , configured such that when the sample wells are raised up, the sensor pins puncture through the protective membranes.

15. The calorimeter array of claim 11 , further comprising an adiabatic shield comprising a metallic block made of a high thermal conductivity and high heat capacity material.

Assignments (4)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 2, 2012
From: WATERS TECHNOLOGIES CORPORATION
To: TA INSTRUMENTS-WATERS LLC
Reel/Frame 028707/0476 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 26, 2012
From: ENERGETIC GENOMICS CORPORATION
To: CALORIMETRY SCIENCES COPORATION
Reel/Frame 028648/0475 →
MERGER Recorded Jul 26, 2012
From: CALORIMETRY SCIENCES CORPORATION
To: WATERS TECHNOLOGIES CORPORATION
Reel/Frame 028648/0766 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 25, 2010
From: LEWIS, EDWIN A., MR.; RUSSELL, DONALD J., MR.
To: ENERGETIC GENOMICS CORPORATION
Reel/Frame 023991/0941 →
Continuity (2)
Provisional Application 60930463 · May 16, 2007
Related Publication 20100322281A1 · Dec 23, 2010