IP Library › Granted Patent US 11,932,868
Granted Patent B2
US 11,932,868 · App. 17/176,188 · Granted Mar 19, 2024

Microplates for magnetic 3D culture

Inventor: Glauco Souza (Houston, TX)
C12N5/0062B01L3/50853C12M23/10C12M23/12C12M23/38C12M33/00C12M33/04C12M35/06C12M47/04C12N13/00B01L2300/046B01L2300/0803B01L2300/0829B01L2400/043
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Quick Facts
Patent No.
US 11,932,868
App. No.
17/176,188
Granted
Mar 19, 2024
Kind
B2
Abstract

Devices for magnetic 3d culture are described including magnetic lids/bases for single Petri plates and adjustable height cap for same. Similar devices for multi-magnet culture plates wherein multiwell plates have all adjacent magnets orientated in the opposite polarity, and methods of making same.

Claims (18)

1. A magnetic culture plate for three-dimensional (3D) cell culturing, comprising:

a) a standard ANSI-SLAS microtiter plate comprising a plurality of wells in an array and having a length of 127.76 mm ±0.5 mm and a width of 85.48 mm ±0.5 mm,

b) a cap comprising a magnetic holder and an intervening cover, wherein said cap is sized to fit over and cover said standard ANSI-SLAS microtiter plate, said cap having a lip around a circumference thereof and a plurality of magnets in an array, each magnet affixed to a depression in said magnetic holder, such that adjacent magnets are oriented in opposite polarity, wherein each magnet of the plurality of magnets protrudes inside a corresponding well of said intervening cover, said intervening cover being arranged between the magnets and the standard ANSI-SLAS microtiter plate and having a number of wells corresponding to a number of magnets of the plurality of magnets, said wells of the intervening cover configured to receive the magnets and to protrude inside the wells of the standard ANSI-SLAS microtiter plate when said cap is fitted in place over said standard ANSI-SLAS microtiter plate, such that each well of the standard ANSI-SLAS microtiter plate has a single magnet protruding inside said well of the standard ANSI-SLAS microtiter plate when said cap is fitted in place over said standard ANSI-SLAS microtiter plate, wherein the magnets do not touch a culture media inside said well, and wherein the cap holds the magnets at a fixed distance of 0.2 to 10 mm from said culture media inside said well of the standard ANSI-SLAS microtiter plate.

2. The magnetic culture plate of claim 1 , wherein said magnets are exchangeably affixed to the depression on the cap.

3. The magnetic culture plate of claim 1 , said standard ANSI-SLAS microtiter plate having 6 wells and said cap having 6 magnets of 20-100 lbs pull force, 10000-15000 Gauss Brmax and 30-60 MGOe Bhmax.

4. The magnetic culture plate of claim 1 , said standard ANSI-SLAS microtiter plate having 12 wells and said cap having 12 magnets of 2-20 lbs pull force, 10000-15000 Gauss Brmax and 30-60 MGOe Bhmax.

5. The magnetic culture plate of claim 1 , said standard ANSI-SLAS microtiter plate having 24 wells and said cap having 24 magnets of 2-10 lbs pull force, 10000-15000 Gauss Brmax and 30-60 MGOe Bhmax.

6. The magnetic culture plate of claim 1 , said standard ANSI-SLAS microtiter plate having 96 wells and said cap having 96 magnets of 0.5-2 lbs pull force, 10000-15000 Gauss Brmax and 30-60 MGOe Bhmax.

7. The magnetic culture plate of claim 1 , said standard ANSI-SLAS microtiter plate having 384 wells and said cap having 384 magnets of 0.05-1 lbs pull force, 10000-15000 Gauss Brmax and 30-60 MGOe Bhmax.

8. The magnetic culture plate of claim 1 , said standard ANSI-SLAS microtiter plate having 1536 wells and said cap having 1536 magnets of 0.05-1 lbs pull force, 10000-15000 Gauss Brmax and 30-60 MGOe Bhmax.

9. A method of 3D cell culturing, comprising:

a) incubating one or more cell types in a solution of magnetic nanoparticles until said cell types contain about 30-150 pg/cell of magnetic nanoparticles;

b) suspending said cell types containing said magnetic nanoparticles in a culture medium;

c) aliquoting samples of said suspended cell types to one or more wells of the standard ANSI-SLAS microtiter plate of the magnetic culture plate of claim 1 ;

d) placing the cap above said standard ANSI-SLAS microtiter plate;

e) incubating said standard ANSI-SLAS microtiter plate until a 3D culture of cells or desired 3D culture printed shape is formed; and

incubating said standard ANSI-SLAS microtiter plate under the influence of a magnetic field for the duration of the 3D culture.

10. The method of claim 9 , wherein the magnetic nanoparticles are iron oxide nanoparticles.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 8, 2023
From: SOUZA, GLAUCO
To: GREINER BIO-ONE NORTH AMERICA
Reel/Frame 065820/0227 →
Continuity (9)
Division 14965702 · Dec 10, 2015
Continuation In Part 14331377 · Jul 15, 2014
Continuation In Part 13762103 · Feb 7, 2013
Continuation PCTUS2011046183 · Aug 2, 2011
Continuation In Part 13070873 · Mar 24, 2011
Continuation PCTUS2009058473 · Sep 29, 2009
Provisional Application 61372164 · Aug 10, 2010
Provisional Application 61099966 · Sep 25, 2008
Related Publication 20210163881A1 · Jun 3, 2021