IP Library Granted Patent US 11,524,293
Granted Patent B2
US 11,524,293 · App. 15/873,039 · Granted Dec 13, 2022

Cell separation device, method and system

Inventors: Grishma Patel (Northville, MI); Mark S. Szczypka (Ann Arbor, MI); David Splan (Brighton, MI)
Assignee: Sartorius Stedim North America Inc.
B01L3/502761B01L3/502B01L3/50273B01L3/502746B01L3/502753C12M3/00C12M23/14C12M25/14C12M47/02C12N1/02G01N33/491B01L2200/028B01L2200/0636B01L2200/0652B01L2200/0668B01L2300/0681B01L2300/0864B01L2400/08
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Quick Facts
Patent No.
US 11,524,293
App. No.
15/873,039
Granted
Dec 13, 2022
Kind
B2
Abstract

Cell separation systems, and methods for separating cells from microcarriers, and harvesting the separated cells, are provided, wherein the system comprises a cell separation device, a cell settling device, and a cell screening device.

Claims (25)

1. A cell separation system comprising:

A) a conduit for fluid communication with a source container, the source container comprising a fluid comprising cells, the conduit having a first end and a second end;

B) a cell separation device comprising

(a) an inlet having an inlet inner diameter, and an outlet having an outlet inner diameter, wherein the inlet is in fluid communication with the second end of the conduit for fluid communication with the source container;

(b) a cell shear device, interposed between, and in fluid communication with, the inlet and the outlet, the shear device comprising a plurality of fluidly connected conduits arranged to provide at least a first fluid flow path and a second fluid flow path;

(i) the first fluid flow path comprising a first fluid flow path inlet and a first fluid flow path outlet, and at least two separate first fluid sub-flow paths, wherein the at least two separate first fluid sub-flow path are joined at a first fluid sub-flow path inlet and a first fluid sub-flow path outlet;

(ii) the second fluid flow path comprising a second fluid flow path inlet and a second fluid flow path outlet, and at least two separate second fluid sub-flow paths, wherein the at least two separate second fluid sub-flow paths are joined at a second fluid sub-flow path inlet and a second fluid sub-flow path outlet;

wherein at least one of the one or more connectors in each of the at least two separate first fluid sub-flow paths and in each of the at least two separate second fluid sub-flow paths has a portion with an internal diameter that is less than each of the inlet inner diameter and the outlet inner diameter;

C) a cell screening device comprising

(a) an interior volume; and

(b) a porous element having a pore structure that prevents the passage of microcarriers therethrough;

(C) a plurality of ports in fluid communication with the interior volume of the device, the ports allowing fluid to pass into and/or out of the device, the plurality of ports including at least one inlet port, and at least one outlet port;

wherein the cell screening device is arranged to allow fluid comprising cells and microcarriers to pass through the at least one inlet port into the interior volume of the cell screening device, the cells passing through the porous element and through the outlet port and along an outlet conduit, the microcarriers being retained by the porous element.

2. The cell separation system of claim 1 , wherein:

the at least two separate first fluid sub-flow paths of the cell separation device further comprise a plurality of conduits fluidly connected by one or more connectors, each connector having at least one internal diameter; and

the at least two separate second fluid sub-flow paths of the cell separation device further comprise a plurality of conduits fluidly connected by one or more connectors, each connector having at least one internal diameter.

3. The cell separation system of claim 2 , wherein the inlet inner diameter equals the outlet inner diameter.

4. A method of separating cells from microcarriers comprising:

passing a fluid comprising cells attached to microcarriers into the inlet of the cell separation device of the cell separation system of claim 2 ;

passing a first portion of the fluid and a second portion of the fluid through the cell shear device, including (a) passing the first portion of the fluid along the first flow path such that separate sub-portions of the first portion of the fluid pass along at the least two separate first fluid sub-flow paths wherein cells are detached from microcarriers; and (b) passing the second portion of the fluid along the second flow path such that separate sub-portions of the first portion of the fluid pass along at the least two separate first fluid sub-flow paths wherein cells are detached from microcarriers; and

passing detached cells and microcarriers through the outlet of the cell separation device.

5. The cell separation system of claim 1 , wherein the inlet inner diameter of the cell separation device equals the outlet inner diameter.

6. The method of claim 4 , further comprising passing detached cells and microcarriers into a cell settling device having a plurality of ports positioned at various heights on the front of the cell settling device, and passing detached cells and some microcarriers from one of the plurality of ports positioned at the front of the cell settling device into the cell screening device including a porous element therein, such that detached cells pass through the porous element and through an outlet port of the cell screening device, and microcarriers are retained by the porous element.

7. The method of claim 6 , further comprising passing cells from the outlet port of the cell screening device into a harvest container.

8. The cell separation system of claim 1 , further comprising D) a cell settling device.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 14, 2020
From: PALL CORPORATION
To: SARTORIUS STEDIM NORTH AMERICA INC.
Reel/Frame 052659/0088 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 12, 2018
From: PATEL, GRISHMA; SZCZYPKA, MARK S.
To: PALL CORPORATION
Reel/Frame 044895/0842 →
Continuity (1)
Related Publication 20190217296A1 · Jul 18, 2019