IP Library › Granted Patent US 12,686,008
Granted Patent B2
US 12,686,008 · App. 17/998,585 · Granted Jul 21, 2026

Microfluidic device having specifically designed detection chambers

Inventor: Daniel Camsund (Uppsala, SE)
Assignee: Bifrost Biosystems Inc.
B01L3/502753B01L2200/0647B01L2300/0681B01L2300/0864
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Quick Facts
Patent No.
US 12,686,008
App. No.
17/998,585
Filed
Nov 11, 2022
Granted
Jul 21, 2026
Kind
B2
Art Unit
1797
USPC
422/503
Abstract

There is provided a microfluidic device ( 10 ) comprising a microfluidic structure having multiple spatially defined cell capturing channels ( 2 ) configured for enabling growth of cells or genetic libraries of cells or cell strains that are capable of producing or secreting compounds. The microfluidic structure of the microfluidic device ( 10 ) further comprises multiple spatially defined detection chambers ( 1; 1 A) configured to receive and accommodate target entities. Each of the detection chambers ( 1 ) is configured for fluid connection with at least one of the cell capturing channels ( 2 ), and has a selective barrier ( 3 A) defined between the detection chamber ( 1; 1 A) and the respective cell capturing channel or channels ( 2 ) and adapted for allowing flow of at least one of the compounds from the respective cell capturing channel or channels ( 2 ) into the detection chamber ( 1; 1 A) enabling the target entities in the detection chamber to be exposed to said at least one compound, while stopping cells or target entities from passing through the selective barrier ( 3 A).

Claims (39)

1 . A microfluidic device comprising:

a substrate having:

multiple spatially defined and separated cell capturing channels configured to receive and accommodate cells,

wherein each of said cell capturing channels is configured for fluid connection with a first common flow input/output channel via a first fluid port of the substrate,

wherein said substrate of said microfluidic device further comprises multiple spatially defined and separated detection chambers configured to receive and accommodate target entities,

wherein each of said detection chambers is in direct fluid connection with at least one of said cell capturing channels, and having a first selective barrier or filter structure defined between the detection chamber and the respective cell capturing channel or channels and adapted for allowing passage of fluid and objects smaller than a first dimension, while hindering passage of objects equal to or larger than said first dimension to pass through said first selective barrier or filter structure,

wherein each of said detection chambers is further configured for fluid connection with a second common flow input/output channel via a second fluid port of the substrate, and having a second selective barrier or filter structure defined between the detection chamber and said second common flow input/output channel and adapted for allowing passage of fluid and objects smaller than a second dimension into said second common flow input/output channel, while hindering passage of objects equal to or larger than said second dimension to pass through said second selective barrier or filter structure.

2 . The microfluidic device of claim 1 , wherein said first selective barrier or filter structure is adapted for allowing passage of fluid and objects, including at least one compound produced or secreted by said cells, that are smaller than said cells and said target entities, while hindering passage of cells and target entities to pass through said first selective barrier or filter structure.

3 . The microfluidic device of claim 2 , wherein said objects that are smaller than said cells and said target entities include molecules, molecular complexes, particles, compounds.

4 . The microfluidic device of claim 1 , wherein said second selective barrier or filter structure is adapted for allowing passage of fluid and objects smaller than said target entities into said second common flow input/output channel, while hindering passage of target entities to pass through said second selective barrier or filter structure.

5 . The microfluidic device of claim 4 , wherein said objects that are smaller than said target entities include molecules, molecular complexes, particles, compounds.

6 . The microfluidic device of claim 1 , wherein said microfluidic device is adapted and dimensioned so as to enable accommodation of said cells, said compounds and said target entities.

7 . The microfluidic device of claim 1 , wherein each one of at least a subset of said detection chambers has an access port for enabling loading of said target entities into said detection chambers.

8 . The microfluidic device of claim 1 , wherein each one of at least a subset of said detection chambers has at least one access channel configured for fluid connection with the detection chamber and configured for fluid connection with the second common flow input/output channel.

9 . The microfluidic device of claim 8 , wherein each one of at least a subset of said detection chambers has multiple access channels configured for fluid connection with the detection chamber and configured for fluid connection with the second common flow input/output channel.

10 . The microfluidic device of claim 1 , wherein each one of at least a subset of said detection chambers is configured for fluid connection with at least two of said cell capturing channels, and having a respective first selective barrier or filter structure defined between the detection chamber and each of the cell capturing channels.

11 . The microfluidic device of claim 10 , wherein each one of at least a subset of said detection chambers is configured for fluid connection with at least two of said cell capturing channels for enabling input of identifiable secretions from multiple cell capturing channels into the same detection chamber.

12 . The microfluidic device of claim 1 , wherein each one of at least a subset of said cell capturing channels is configured for accommodating an individual type of cells or individual strain of cells.

13 . The microfluidic device of claim 1 , wherein each one of at least a subset of said cell capturing channels is configured for accommodating a single cell at an inner end of the channel closest to the first selective barrier and/or configured for excluding cells of other linages in the channel upon growth of said single cell.

14 . A method for loading a microfluidic device,

the microfluidic device comprising a substrate having multiple spatially defined and separated cell capturing channels configured to receive and accommodate cells,

wherein each of said cell capturing channels is configured for fluid connection with a first common flow input/output channel via a first fluid port of the substrate,

wherein said substrate of said microfluidic device further comprises multiple spatially defined and separated detection chambers configured to receive and accommodate target entities,

wherein each of said detection chambers is in direct fluid connection with at least one of said cell capturing channels, and having a first selective barrier or filter structure defined between the detection chamber and the respective cell capturing channel or channels and adapted for allowing passage of fluid and objects smaller than a first dimension, while hindering passage of objects equal to or larger than said first dimension to pass through said first selective barrier or filter structure,

wherein each of said detection chambers is further configured for fluid connection with a second common flow input/output channel via a second fluid port of the substrate, and having a second selective barrier or filter structure defined between the detection chamber and said second common flow input/output channel and adapted for allowing passage of fluid and objects smaller than a second dimension into said second common flow input/output channel, while hindering passage of objects equal to or larger than said second dimension to pass through said second selective barrier or filter structure;

wherein microfluidic device comprises a substrate having multiple spatially defined and separated cell capturing channels configured to receive and accommodate cells, wherein each of said cell capturing channels is configured for fluid connection with a first common flow input/output channel via a first fluid port of the substrate, wherein said substrate of said microfluidic device further comprises multiple spatially defined and separated detection chambers configured to receive and accommodate target entities, wherein each of said detection chambers is in direct fluid connection with at least one of said cell capturing channels, and having a first selective barrier or filter structure defined between the detection chamber and the respective cell capturing channel or channels and adapted for allowing passage of fluid and objects smaller than a first dimension, while hindering passage of objects equal to or larger than said first dimension to pass through said first selective barrier or filter structure, wherein each of said detection chambers is further configured for fluid connection with a second common flow input/output channel via a second fluid port of the substrate, and having a second selective barrier or filter structure defined between the detection chamber and said second common flow input/output channel and adapted for allowing passage of fluid and objects smaller than a second dimension into said second common flow input/output channel, while hindering passage of objects equal to or larger than said second dimension to pass through said second selective barrier or filter structure, wherein said method comprising:

inputting target entities in the second fluid port of the microfluidic device and transporting at least part of the target entities into the detection chambers through liquid flow; and

inputting cells in the first fluid port of the microfluidic device and transporting at least part of the cells into the cell capturing channels through liquid flow.

15 . The method of claim 14 , wherein the step of inputting target entities in the second fluid port of the microfluidic device and transporting at least part of the target entities into the detection chambers through liquid flow comprises transporting, for each of the detection chambers, target entities via a respective access channel interconnecting with the detection chamber at an intersection, initially using liquid flow in a first direction to enable target entities to be transported through the access channel into the detection chamber and then reversing the liquid flow to a second reversed direction to capture at least part of the target entities in a section of the detection chamber arranged downstream of the intersection with the access channel in the second reverse direction towards the second selective barrier or filter structure at the end of the detection chamber.

16 . A method for analyzing characteristics of cells, target entities and/or compounds by using a microfluidic device according to claim 1 ,

wherein said method comprises:

loading target entities into the detection chambers of the microfluidic device;

loading a library of genetically diverse cells into the into cell capturing channels of the microfluidic device;

initiating and/or enabling constitutive or induced production/secretion of compounds from cells and enabling flow of compounds from cell capturing channel(s) to at least a subset of the detection chambers; and

monitoring characteristics of target entities and/or compounds in at least a subset of the detection chambers.

17 . The method of claim 16 , wherein single-cell growth measurement is performed in at least a subset of said detection chambers harboring cells as target entities.

18 . The method of claim 16 , wherein the step of loading target entities into the detection chambers of the microfluidic device comprises loading, for each of the detection chambers, target entities via a respective access channel interconnecting with the detection chamber at an intersection, initially using liquid flow in a first direction to enable target entities to be transported through the access channel into the detection chamber and then reversing the liquid flow to a second reversed direction to capture at least part of the target entities in a section of the detection chamber arranged downstream of the intersection with the access channel in the second reverse direction towards the second selective barrier or filter structure at the end of the detection chamber.

19 . The method of claim 16 , further comprising identification of compound-producing/secreting cells and/or compound identities in all or a subset of the capturing channels.

20 . An analysis system comprising a microfluidic device according to claim 1 .

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 29, 2023
From: CAMSUND, DANIEL
To: BIFROST BIOSYSTEMS
Reel/Frame 063189/0450 →
Priority Claims (1)
SE 2030160-2 · May 14, 2020 · national
Continuity (1)
Related Publication 20230182135A1 · Jun 15, 2023
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