IP Library › Granted Patent US 12,629,650
Granted Patent B2
US 12,629,650 · App. 18/279,657 · Granted May 19, 2026

Parallel multi-step bio-reaction system and method

Inventors: Yiwen Ouyang (San Jose, CA); Sz-Chin Lin (San Jose, CA); Cheng Zhong (Menlo Park, CA)
Assignee: EGI Tech (Qing Dao) Co., Limited
B01J19/0046B01J2219/00326B01J2219/00351B01J2219/00495B01J2219/00585B01J2219/0059B01J2219/00689B01J2219/00698B01J2219/00702
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Quick Facts
Patent No.
US 12,629,650
App. No.
18/279,657
Granted
May 19, 2026
Kind
B2
Abstract

A parallel multi-step bio-reaction system( 10 ) comprising: (a) a substrate arrangement( 12 ) comprising a plurality of bio-reaction substrate holders( 18 ) configured to hold a plurality of bio-reaction substrates( 20 ); (b) a well arrangement( 14 ) comprising a plurality of fluidic wells( 22 ), the fluidic wells( 22 ) corresponding to a plurality of steps of a multi-step bio-reaction; (c) an actuator( 16 ) configured to: (i) move either the substrate arrangement( 12 ) or the well arrangement( 14 ) relative to the other of the substrate arrangement( 12 ) or the well arrangement( 14 ) to change the alignment of the bio-reaction substrates( 20 ) as a group relative to the fluidic wells( 22 ) as a group; and (ii) bring the bio-reaction substrates( 20 ) into and out of contact with fluids in the fluidic wells( 22 ).

Claims (44)

1 . A parallel multi-step bio-reaction system, comprising:

(a) a substrate arrangement comprising a plurality of bio-reaction substrate holders holding a plurality of bio-reaction substrates;

(b) a well arrangement comprising a plurality of fluidic wells, the fluidic wells corresponding to a plurality of steps of a multi-step bio-reaction;

(c) an actuator that:

(i) moves either the substrate arrangement or the well arrangement relative to the other of the substrate arrangement or the well arrangement to change the alignment of the bio-reaction substrates as a group relative to the fluidic wells as a group; and

(ii) brings the bio-reaction substrates into and out of contact with fluids in the fluidic wells by dipping the bio-reaction substrates into the fluidic wells; and

(d) a fluidic replacement sub-system that replaces fluids in the fluidic wells.

2 . The parallel multi-step bio-reaction system of claim 1 , wherein the system moves either the substrate arrangement or the well arrangement in a fashion that incrementally shifts the positions of the bio-reaction substrates relative to the fluidic wells equally.

3 . The parallel multi-step bio-reaction system of claim 1 , wherein the actuator rotates the well arrangement relative to the substrate arrangement to change the alignment of the bio-reaction substrates as a group relative to the fluidic wells as a group.

4 . The parallel multi-step bio-reaction system of claim 3 , wherein the actuator is configured to translate the well arrangement relative to the substrate arrangement to bring the bio-reaction substrates into and out of contact with fluids in the fluidic wells.

5 . The parallel multi-step bio-reaction system of claim 4 , wherein the actuator is configured to vertically translate the well arrangement relative to the substrate arrangement to dip the bio-reaction substrates into the fluids in the fluidic wells.

6 . The parallel multi-step bio-reaction system of claim 2 , wherein the actuator comprises a rotational actuator component configured to rotate the well arrangement relative to the substrate arrangement and a linear actuator component configured to translate the well arrangement relative to the substrate arrangement.

7 . The parallel multi-step bio-reaction system of claim 2 , wherein the well arrangement comprises a well plate.

8 . The parallel multi-step bio-reaction system of claim 7 , wherein the well plate comprises a well carousel.

9 . The parallel multi-step bio-reaction system of claim 7 , wherein the well plate further comprises a plurality of heaters and a plurality of temperature sensors.

10 . The parallel multi-step bio-reaction system of claim 9 , wherein the well plate further comprises a plurality of sections, each section including at least two of the fluidic wells, each section including at least one of the heaters and at least one of the temperature sensors.

11 . The parallel multi-step bio-reaction system of claim 10 , wherein at least some of the sections each comprise at least one reactive reagent fluidic well and at least one buffer fluid reagent well.

12 . The parallel multi-step bio-reaction system of claim 1 , wherein the fluidic replacement sub-system comprises at least one fluidic outlet and at least one fluidic inlet.

13 . The parallel multi-step bio-reaction system of claim 12 , further comprising a second actuator configured to move the fluidic outlet and the fluidic inlet between a first position and a second position.

14 . The parallel multi-step bio-reaction system of claim 13 , wherein, when in the first position, the at least one fluidic outlet is positioned to dispense a fresh fluid into a first fluidic well located at the fluidic replacement sub-system and the at least out fluidic inlet is positioned to withdraw a spent fluid from the first fluidic well located at the fluidic replacement sub-system.

15 . The parallel multi-step bio-reaction system of claim 14 , wherein, when in the first position, the at least one fluidic outlet is positioned above a fluid fill level of the first fluidic well.

16 . The parallel multi-step bio-reaction system of claim 15 , wherein, when in the first position, the at least one fluidic inlet is positioned proximate a bottom of the first fluidic well.

17 . The parallel multi-step bio-reaction system of claim 16 , wherein, when in the second position, the at least one fluidic inlet is withdrawn relative to the fluidic wells.

18 . The parallel multi-step bio-reaction system of claim 13 , wherein the fluidic replacement sub-system comprises at least a first fluidic outlet, a first fluidic inlet, a second fluidic outlet, and a second fluidic inlet;

wherein the first fluidic outlet comprises a first reagent fluid outlet;

wherein the second fluidic outlet comprises a second reagent fluid outlet; and

the first reagent fluid being a different type of reagent from the second reagent fluid.

19 . The parallel multi-step bio-reaction system of claim 18 , wherein, when in the first position:

the first fluidic outlet is positioned to dispense a fresh first reagent fluid into a first fluidic well located at the fluidic replacement sub-system;

the first fluidic inlet is positioned to withdraw spent first reagent fluid from the first fluidic well;

the second fluidic outlet is positioned to dispense a fresh second reagent fluid into a second fluidic well located at the fluidic replacement sub-system;

the second fluidic inlet is positioned to withdraw spent second reagent fluid from the second fluidic well.

20 . The parallel multi-step bio-reaction system of claim 12 , further comprising an environmental enclosure enclosing the substrate arrangement, the well arrangement, the fluidic outlet, and the fluidic inlet.

21 . The parallel multi-step bio-reaction system of claim 20 , wherein the system is configured to fill the environmental enclosure with a gas.

22 . The parallel multi-step bio-reaction system of claim 21 , wherein the system further comprises an oxygen detector configured to detect oxygen in the environmental enclosure.

23 . The parallel multi-step bio-reaction system of claim 20 , wherein the system further comprises a humidification sub-system configured to monitor and humidify the environmental enclosure.

24 . The parallel multi-step bio-reaction system of claim 20 , wherein the environmental enclosure is optically opaque.

25 . The parallel multi-step bio-reaction system of claim 20 , wherein the environmental enclosure is not optically opaque.

26 . The parallel multi-step bio-reaction system of claim 1 , wherein the bio-reaction substrates each comprise at least one surface defining a plurality of analyte binding sites.

27 . The parallel multi-step bio-reaction system of claim 26 , wherein the plurality of analyte binding sites comprise an array of discrete functionalized sites configured to bind discrete analyte units.

28 . The parallel multi-step bio-reaction system of claim 26 , wherein the bio-reaction substrates each comprise a detector configured to detect bio-reaction events at the analyte binding sites.

29 . The parallel multi-step bio-reaction system of claim 28 , wherein the detector comprises a photodiode array.

30 . The parallel multi-step bio-reaction system of claim 28 , wherein the system further comprises at least one readout sub-system, the system configured to wirelessly transmit data collected by the detector to the readout sub-system.

31 . The parallel multi-step bio-reaction system of claim 28 , wherein the system further comprises at least one readout sub-system, the system configured to transmit data collected by the detector to the readout sub-system over a physical data connection.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 24, 2023
From: EGI USA, INC.
To: EGI TECH (QING DAO) CO., LIMITED
Reel/Frame 065321/0670 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 7, 2023
From: OUYANG, YIWEN; LIN, SZ-CHIN; ZHONG, CHENG
To: EGI USA, INC.
Reel/Frame 064827/0846 →
Continuity (2)
Provisional Application 63164803 · Mar 23, 2021
Related Publication 20240139701A1 · May 2, 2024
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