IP Library Granted Patent US 12,239,992
Granted Patent B2
US 12,239,992 · App. 16/694,877 · Granted Mar 4, 2025

Temperature-controllable reagent cartridge and temperature control system for the same

Inventors: Ashish Kumar (San Diego, CA); Kevin Michael Festini (Poway, CA); Venkatesh Mysore Nagaraja Rao (Woodlands Crescent, SG); Erik Lewis Williamson (Carlsbad, CA)
Assignees: Illumina, Inc.; Illumina Singapore Pte. Ltd.
B01L7/525B01L3/527B01L2300/0858B01L2300/0861B01L2300/1811B01L2400/0475
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Quick Facts
Patent No.
US 12,239,992
App. No.
16/694,877
Granted
Mar 4, 2025
Kind
B2
Abstract

Temperature-controllable reagent cartridges and systems for controlling the temperature in such reagent cartridges are provided. An example such system may include a reagent cartridge having reagent reservoirs located at least in part within an interior plenum volume of a cartridge housing. In such an example system, each reagent reservoir may be defined, in part, by a sidewall, and a first reagent reservoir may be spaced apart from a second reagent reservoir to form a fluid flow passage between corresponding sidewalls thereof. A fluid inlet through the cartridge housing may be provided that fluidically connects the interior plenum volume with a fluid supply port of a temperature control system of an analysis instrument when the reagent cartridge is received by the analysis instrument; a fluid outlet through the cartridge housing that fluidically connects the interior plenum volume with a fluid return port of the temperature control system may also be provided.

Claims (77)

1. A system comprising:

a reagent cartridge, the reagent cartridge including:

a cartridge housing defining an interior plenum volume, the cartridge housing to be received by an analysis instrument;

a plurality of reagent reservoirs, the plurality of reagent reservoirs including a first set of reagent reservoirs positioned, at least in part, within the interior plenum volume of the cartridge housing, wherein:

at least two of the reagent reservoirs have sidewalls that are at least partially shared in common,

each reagent reservoir of the first set of reagent reservoirs is defined, in part, by a sidewall and contains a corresponding reagent,

the sidewalls of the first set of reagent reservoirs extend from a common microfluidic plate, and

a first reagent reservoir of the first set of reagent reservoirs is spaced apart from a second reagent reservoir of the first set of reagent reservoirs to form a fluid flow passage between corresponding sidewalls of the first reagent reservoir and the second reagent reservoir;

a fluid inlet that passes through the cartridge housing and is in fluidic communication with the interior plenum volume of the cartridge housing, the fluid inlet fluidically connecting a fluid supply port of a temperature control system of the analysis instrument with the interior plenum volume when the reagent cartridge is received by the analysis instrument; and

a fluid outlet that passes through the cartridge housing and is in fluidic communication with the interior plenum volume of the cartridge housing, the fluid outlet fluidically connecting a fluid return port of the temperature control system of the analysis instrument with the interior plenum volume when the reagent cartridge is received by the analysis instrument, wherein the fluid inlet of the cartridge is to receive a fluid from the temperature control system of the analysis instrument at a predetermined temperature such that the reagent in the first reagent reservoir is at a first temperature and the reagent in the second reagent reservoir is at a second temperature that is different from the first temperature.

2. The system of claim 1 , wherein the first reagent reservoir contains one or more reagents selected from the group of: tris(hydroxypropyl)phosphine, ethanol amine, tris(hydroxymethyl)aminomethane, tris(hydroxymethyl)phosphine, and a mixture of tris(hydroxymethyl)aminomethane, acetic acid, and EDTA (ethylenediaminetetraacetic acid).

3. The system of claim 1 , wherein a shortest flow path within the cartridge housing from the fluid inlet to the first reagent reservoir of the first set of reagent reservoirs is shorter than a shortest flow path within the cartridge housing from the fluid inlet to the second reagent reservoir of the first set of reagent reservoirs.

4. The system of claim 3 , wherein the fluid inlet is located outside of a smallest enclosing perimeter of the first set of reagent reservoirs.

5. The system of claim 3 , wherein the first set of reagent reservoirs are arranged along a circle or multiple concentric circles and the fluid inlet is located outside of the circle or the concentric circles.

6. The system of claim 1 , wherein:

the first set of reagent reservoirs are arranged in a cluster about a rotary valve located in the cartridge housing,

there are multiple fluid flow passages between the sidewalls of the reagent reservoirs in the first set of reagent reservoirs, and

the multiple fluid flow passages provide one or more fluidic flow paths around the rotary valve.

7. The system of claim 1 , where in the reagent cartridge further includes:

an inlet passage that fluidically connects, and is fluidically interposed between, the fluid inlet and the interior plenum volume; and

an outlet passage that fluidically connects, and is fluidically interposed between, the fluid outlet and the interior plenum volume, wherein:

the inlet passage, the outlet passage, and the first reagent reservoir are all located at least partially within a common quadrant of a reference circle centered on an average center point of the reagent reservoirs in the first set of reagent reservoirs.

8. The system of claim 1 , further comprising:

an inlet passage that fluidically connects, and is fluidically interposed between, the fluid inlet and the interior plenum volume; and

an outlet passage that fluidically connects, and is fluidically interposed between, the fluid outlet and the interior plenum volume, wherein:

the inlet passage is at least partially located within a first quadrant of a reference circle centered on an average center point of the reagent reservoirs in the first set of reagent reservoirs,

the outlet passage is at least partially located in a second quadrant of the reference circle, and

the first quadrant and the second quadrant are 180° out of phase with each other about the average center point.

9. The system of claim 1 , further comprising a second set of reagent reservoirs, wherein:

each reagent reservoir of the second set of reagent reservoirs is defined, in part, by a corresponding sidewall,

each reagent reservoir of the second set of reagent reservoirs contains a corresponding reagent,

two of the reagent reservoirs in a first subset of the reagent reservoirs in the second set of reagent reservoirs are spaced apart from one another to form an inlet passage between the respective sidewalls thereof, and

the inlet passage fluidically connects, and is fluidically interposed between, the fluid inlet and the interior plenum volume.

10. The system of claim 9 , wherein:

two reagent reservoirs in a second subset of the reagent reservoirs in the second set of reagent reservoirs are spaced apart from one another to form an outlet passage between the respective sidewalls thereof,

the outlet passage fluidically connects, and is fluidically interposed between, the fluid outlet and the interior plenum volume, and

the first subset and the second subset are not identical.

11. The system of claim 10 , wherein:

the reagent reservoirs in the second set of reagent reservoirs are arranged around an outer perimeter of the interior plenum volume, and

portions of the sidewalls of at least some of the reagent reservoirs in the second set of reagent reservoirs define, at least in part, the outer perimeter of the interior plenum volume.

12. The system of claim 1 , further comprising the analysis instrument, wherein:

the analysis instrument includes the temperature control system, and

the temperature control system includes:

a recirculation plenum with a plenum inlet and a plenum outlet,

a first fluid pump fluidically interposed between the plenum inlet of the recirculation plenum and the plenum outlet of the recirculation plenum and configured to urge fluid within the recirculation plenum from the plenum inlet of the recirculation plenum towards the plenum outlet of the recirculation plenum when activated, and

one or more thermoelectric heat pumps, each thermoelectric heat pump in thermally conductive contact with a corresponding first radiator structure positioned within the recirculation plenum such that at least part of the fluid that the first fluid pump is configured to urge through the recirculation plenum passes through the corresponding first radiator structure, wherein:

the plenum inlet of the recirculation plenum is fluidically connected with the fluid return port, and

the plenum outlet of the recirculation plenum is fluidically connected with the fluid supply port.

13. The system of claim 12 , wherein the temperature control system further includes:

an ambient plenum with a plenum inlet and a plenum outlet; and

a second fluid pump fluidically interposed between the plenum inlet of the ambient plenum and the plenum outlet of the ambient plenum and configured to urge fluid within the ambient plenum from the plenum inlet of the ambient plenum towards the plenum outlet of the ambient plenum when activated, wherein each thermoelectric heat pump is also in thermally conductive contact with a corresponding second radiator structure positioned within the ambient plenum such that at least part of the fluid that the second fluid pump is configured to urge through the ambient plenum passes through the corresponding second radiator structure.

14. The system of claim 13 , wherein a cross-section of the recirculation plenum for at least a portion of the recirculation plenum is nested within a corresponding cross-section of the ambient plenum for at least a corresponding portion of the ambient plenum.

15. The system of claim 1 , further comprising a rotary valve configured to be selectively actuatable in order to cause different channels within the microfluidic plate to be in fluidic communication with different ones of the reagent reservoirs in the first set of reagent reservoirs.

16. An analysis instrument comprising:

a reagent cartridge comprising:

a cartridge housing defining an interior plenum volume, the cartridge housing to be received by a cartridge receptacle of the analysis instrument;

a plurality of reagent reservoirs, the plurality of reagent reservoirs including a first set of reagent reservoirs positioned, at least in part, within the interior plenum volume of the cartridge housing, wherein:

at least two of the reagent reservoirs have sidewalls that are at least partially shared in common,

each reagent reservoir of the first set of reagent reservoirs is defined, in part, by a sidewall and contains a corresponding reagent, and

a first reagent reservoir of the first set of reagent reservoirs is spaced apart from a second reagent reservoir of the first set of reagent reservoirs to form a fluid flow passage between corresponding sidewalls of the first reagent reservoir and the second reagent reservoir;

a fluid inlet that passes through the cartridge housing and is in fluidic communication with the interior plenum volume of the cartridge housing; and

a fluid outlet that passes through the cartridge housing and is in fluidic communication with the interior plenum volume of the cartridge housing;

a cartridge receptacle; and

a temperature control system having:

a recirculation plenum with a plenum inlet and a plenum outlet,

an ambient plenum with a plenum inlet and a plenum outlet,

a first fluid pump fluidically interposed between the plenum inlet of the recirculation plenum and the plenum outlet of the recirculation plenum and configured to urge fluid within the recirculation plenum from the plenum inlet of the recirculation plenum towards the plenum outlet of the recirculation plenum when activated,

a second fluid pump fluidically interposed between the plenum inlet of the ambient plenum and the plenum outlet of the ambient plenum and configured to urge fluid within the ambient plenum from the plenum inlet of the ambient plenum towards the plenum outlet of the ambient plenum when activated,

one or more thermoelectric heat pumps, each thermoelectric heat pump in thermally conductive contact with a corresponding first radiator structure positioned within the recirculation plenum such that at least part of the fluid that the first fluid pump is configured to urge through the recirculation plenum passes through the corresponding first radiator structure and with a corresponding second radiator structure positioned within the ambient plenum such that at least part of the fluid that the second fluid pump is configured to urge through the ambient plenum passes through the corresponding second radiator structure,

a fluid supply port fluidically connected with the interior plenum volume via the fluid inlet, and

a fluid return port fluidically connected with the interior plenum volume via the fluid outlet, wherein:

the reagent cartridge is positioned within the cartridge receptacle,

the plenum inlet of the recirculation plenum is fluidically connected with the fluid return port, and

the plenum outlet of the recirculation plenum is fluidically connected with the fluid supply port.

17. The analysis instrument of claim 16 , wherein a cross-section of the recirculation plenum for at least a portion of the recirculation plenum is nested within a corresponding cross-section of the ambient plenum for at least a corresponding portion of the ambient plenum.

18. The analysis instrument of claim 16 ,

wherein the fluid inlet of the cartridge is to receive a fluid from the temperature control system of the analysis instrument at a predetermined temperature such that the reagent in the first reagent reservoir is at a first temperature and the reagent in the second reagent reservoir is at a second temperature that is different from the first temperature.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 24, 2020
From: KUMAR, ASHISH; FESTINI, KEVIN MICHAEL; WILLIAMSON, ERIK LEWIS
To: ILLUMINA, INC.
Reel/Frame 051908/0983 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 24, 2020
From: RAO, VENKATESH MYSORE NAGARAJA
To: ILLUMINA SINGAPORE PTE LTD.
Reel/Frame 051909/0039 →
Continuity (2)
Provisional Application 62774000 · Nov 30, 2018
Related Publication 20200171502A1 · Jun 4, 2020
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