IP Library › Granted Patent US 9,175,255
Granted Patent B2
US 9,175,255 · App. 13/583,746 · Granted Nov 3, 2015

Method of separating cells and separation apparatus

Inventor: Chikashi Nakamura (Tsukuba, JP)
Assignee: NATIONAL INSTITUTE OF ADVANCED INDUSTRIAL SCIENCE AND TECHNOLOGY
C12M47/04
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Quick Facts
Patent No.
US 9,175,255
App. No.
13/583,746
Granted
Nov 3, 2015
Kind
B2
Abstract

A method and apparatus for discriminating and separating only specific cells in cell samples is provided. The cell separation operation includes inserting a needle-shaped body, on which a substance that selectively binds to a marker substance within each target cell has been immobilized, into each of the cell samples on a substrate, thereby causing the marker substance within each target cell in the cell samples to bind to the needle-shaped body through the substance that selectively binds to the marker substance, and then, pulling up the needle-shaped body. The binding force between the needle-shaped body and each target cell when the marker substance within each target cell has bound to the needle-shaped body is made greater than an adhesion force of each of the cell samples to the substrate, so that only target cells each containing the marker substance are pulled up and separated from the substrate.

Claims (29)

1. A cell separation method of selectively separating only target cells in cell samples on a first substrate, each target cell containing a marker substance, the cell separation method comprising steps of:

inserting a needle-shaped body, on which a substance that selectively binds to the marker substance within each target cell has been immobilized, into each of the cell samples on the first substrate, thereby causing the marker substance within each target cell in the cell samples to bind to the needle-shaped body through the immobilized substance that selectively binds to the marker substance, and then pulling up the needle-shaped body; and

making a binding force between the needle-shaped body and each target cell in the cell samples on the first substrate when the needle-shaped body has been inserted into the target cell and the marker substance within the target cell has bound to the needle-shaped body greater than an adhesion force between the first substrate and each of the cell samples on the first substrate,

wherein in the step of making the binding force between the needle-shaped body and each target cell in the cell samples when the needle-shaped body has been inserted into the target cell and the marker substance within the target cell has bound to the needle-shaped body greater than the adhesion force between the first substrate and each of the cell samples on the first substrate, the adhesion force between the first substrate and each of the cell samples on the first substrate is adjusted such that an adhesion force is within 500 pN-2 nN when a loading rate of the needle-shaped body, on which the substance that selectively binds to the marker substance within each target cell has been immobilized, into each of the cell samples on the first substrate is 0.4 μN/sec.

2. The cell separation method according to claim 1 , wherein in the step of making the binding force between the needle-shaped body and each target cell in the cell samples when the needle-shaped body has been inserted into the target cell and the marker substance within the target cell has bound to the needle-shaped body greater than the adhesion force between the first substrate and each of the cell samples on the first substrate, the binding force between the needle-shaped body and each target cell in the cell samples when the needle-shaped body has been inserted into the target cell and the marker substance within the target cell has bound to the needle-shaped body is made greater than the adhesion force between the first substrate and each of the cell samples on the first substrate by increasing the binding force between the needle-shaped body and each target cell when the needle-shaped body has been inserted into the target cell and the marker substance within the target cell has bound to the needle-shaped body and/or by decreasing the adhesion force between the first substrate and each of the cell samples on the first substrate.

3. The cell separation method according to claim 2 , wherein in the step of making the binding force between the needle-shaped body and each target cell in the cell samples when the needle-shaped body has been inserted into the target cell and the marker substance within the target cell has bound to the needle-shaped body greater than the adhesion force between the first substrate and each of the cell samples on the first substrate, the binding force between the needle-shaped body and each target cell in the cell samples when the needle-shaped body has been inserted into the target cell and the marker substance within the target cell has bound to the needle-shaped body is made greater than the adhesion force between the first substrate and each of the cell samples on the first substrate by controlling the needle-shaped body to a shape that increases a contact area of the marker substance and the needle-shaped body within each target cell when the needle-shaped body has been inserted into the target cell and/or by controlling a dwell time of the needle-shaped body within each of the cell samples when the needle-shaped body has been inserted into the cell sample.

4. The cell separation method according to claim 3 , wherein the needle-shaped body, on which the substance that selectively binds to the marker substance within each target cell has been immobilized, is in a cylindrical shape with an aspect ratio of 50 or above and a diameter of 300 nm or below.

5. The cell separation method according to claim 3 , wherein in the step of inserting the needle-shaped body, on which the substance that selectively binds to the marker substance within each target cell has been immobilized, into each of the cell samples on the first substrate and pulling up the needle-shaped body, the dwell time within each of the cell samples of the needle-shaped body, on which the substance that selectively binds to the marker substance within each target cell has been immobilized, is 1-10 sec.

6. The cell separation method according to claim 2 , wherein in the step of making the binding force between the needle-shaped body and each target cell in the cell samples when the needle-shaped body has been inserted into the target cell and the marker substance within the target cell has bound to the needle-shaped body greater than the adhesion force between the first substrate and each of the cell samples on the first substrate, the binding force between the needle-shaped body and each target cell in the cell samples when the needle-shaped body has been inserted into the target cell and the marker substance within the target cell has bound to the needle-shaped body is made greater than the adhesion force between the first substrate and each of the cell samples on the first substrate by decreasing the adhesion force between the first substrate and each of the cell samples by treatment of the cell samples with a proteolytic enzyme and/or treatment of the cell samples with an adhesion protein expression inhibitor.

7. The cell separation method according to claim 1 , the cell separation method further comprising any one or more of:

controlling density of a cell adhesion material to be immobilized on the first substrate;

controlling a suction power when suction immobilizing the cell samples on the first substrate; and

controlling each cell contact area of chambers provided in the first substrate for holding the cell samples.

8. The cell separation method according to claim 1 , the step of inserting the needle-shaped body, on which the substance that selectively binds to the marker substance within each target cell has been immobilized, into each of the cell samples on the first substrate and pulling up the needle-shaped body includes controlling a speed of pulling up the needle-shaped body and/or controlling a position of insertion and a frequency of insertion of the needle-shaped body into each cell sample.

9. The cell separation method according to claim 8 , wherein in the step of inserting the needle-shaped body, on which the substance that selectively binds to the marker substance within each target cell has been immobilized, into each of the cell samples on the first substrate and pulling up the needle-shaped body, the speed of pulling up the needle-shaped body is 1-500 μm/sec.

10. The cell separation method according to claim 8 , wherein in the step of inserting the needle-shaped body, on which the substance that selectively binds to the marker substance within each target cell has been immobilized, into each of the cell samples on the first substrate and pulling up the needle-shaped body, the insertion position of the needle-shaped body into a same cell sample is changed each time the needle-shaped body is inserted into the cell sample, and the frequency of insertion of the needle-shaped body into a same cell sample is 3-10 times.

11. A cell recovery method of recovering target cells each pulled up by a needle-shaped body with the cell separation method according to claim 1 , the cell recovery method comprising:

causing each of the target cells pulled up by a needle-shaped body to contact a second substrate and then pulling up the needle-shaped body, thereby causing the pulled-up target cell to be separated from the needle-shaped body and recovered to the second substrate; and

making an adhesion force of each of the pulled-up target cells to the second substrate greater than a binding force between the needle-shaped body and the pulled-up target cell.

12. The cell recovery method according to claim 11 , further comprising any one or more of:

controlling a contact time of each pulled-up target cell relative to the second substrate;

controlling density of a cell adhesion material to be immobilized on the second substrate;

controlling a suction power when suction immobilizing each pulled-up target cell on the second substrate; and

controlling each cell contact area of chambers provided in the second substrate for holding recovered target cells.

13. A cell recovery method of recovering target cells, each pulled up by a needle-shaped body with the cell separation method according to claim 1 , in a liquid by increasing resistance of the liquid relative to each pulled-up target cell, thereby causing each pulled-up target cell to drop from the needle-shaped body and recovering the pulled-up target cell in the liquid, the cell recovery method comprising:

moving the needle-shaped body holding each pulled-up target cell in a liquid at a speed high enough to dislodge the cell from the needle-shaped body;

and/or

causing the needle-shaped body holding each pulled-up target cell to contact a flowing liquid.

14. The cell separation or recovery method according to claim 1 , wherein a plurality of the needle-shaped bodies, on each of which the substance that selectively binds to the marker substance within each target cell has been immobilized, are arrayed, and respective needle-shaped bodies are individually inserted into the cell samples at the same time.

Assignments (2)
CORRECTIVE ASSIGNMENT TO CORRECT THE ASSIGNEE'S ADDRESS SHOULD BE "3-1 KASUMIGASEKI 1-CHOME, CHIYODA-KU TOKYO, JAPAN 1008921" PREVIOUSLY RECORDED ON REEL 028926 FRAME 0726. ASSIGNOR(S) HEREBY CONFIRMS THE ASSIGNEE'S STREET ADDRESS WAS INCORRECTLY SPELLED AND IS HEREBY CORRECTED. Recorded Sep 26, 2012
From: NAKAMURA, CHIKASHI
To: NATIONAL INSTITUTE OF ADVANCED INDUSTRIAL SCIENCE AND TECHNOLOGY
Reel/Frame 029042/0975 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 10, 2012
From: NAKAMURA, CHIKASHI
To: NATIONAL INSTITUTE OF ADVANCED INDUSTRIAL SCIENCE AND TECHNOLOGY
Reel/Frame 028926/0726 →
Priority Claims (1)
JP 2010-054556 · Mar 11, 2010 · national
Continuity (1)
Related Publication 20130005038A1 · Jan 3, 2013