IP Library Granted Patent US 9,402,944
Granted Patent B2
US 9,402,944 · App. 12/667,323 · Granted Aug 2, 2016

Multi-functional chamber for housing a biological component

Inventors: Clare Selden (London, GB); Humphrey Hodgson (London, GB); Sam Coward (Suffolk, GB)
Assignee: University College London
A61M1/3472A01N1/02A01N1/0247A61M1/3489A61M1/3689C12M21/08C12M23/06C12M25/16C12M29/04C12M41/24C12N5/0671A61F2/022C12N2511/00C12N2533/74
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Quick Facts
Patent No.
US 9,402,944
App. No.
12/667,323
Granted
Aug 2, 2016
Kind
B2
Abstract

The present invention relates to the field of extracorporeal liver perfusion and, more particularly, to the design of a chamber in which a biological component can be housed to form e.g. a bio-artificial liver (BAL). It also relates to a bio-artificial liver per se, it's components and methodological steps associated with its development and use. The chamber ( 10 ) for the biological component ( 100 ) of a bio-artificial liver ( 200 ) is configured to allow: • Proliferation of the biological component, in situ; • Cryopreservation of the biological component, in situ, and • Perfusion of the biological component, in situ.

Claims (39)

1. A chamber for the biological component of a bio-artificial liver comprising a fluid bed support, at least one heat exchanger element disposed in the chamber, a fluidising inlet and a fluidising outlet and is configured to allow:

Proliferation of the biological component, in situ via the fluidising inlet and the fluidising outlet when the chamber is in a vertical position;

Cryopreservation of the biological component, in situ via the at least one heat exchanger element when the chamber is in a horizontal position; and

Perfusion of the biological component, in situ via the fluidising inlet and the fluidising outlet, in an extracorporeal circuit attached to a patient, when the chamber is in the vertical position;

wherein the at least one heat exchanger element is arranged off-centered in the chamber when in the vertical position, such that when the chamber is in the horizontal position, the biological component is spread such that a larger surface area of the biological component comes into contact with an outer wall of the chamber and the at least one heat exchanger element than when the chamber is in the vertical position.

2. A chamber as claimed in claim 1 which can be sterilised.

3. A chamber as claimed in claim 1 which is a sealable unit of tubular construction comprising a wall closable by upper and lower plates.

4. A chamber as claimed in claim 1 comprising a working volume of from 1 to 10 liters.

5. A chamber as claimed in claim 1 which is substantially cylindrical, and has an aspect ratio, a=h/d, where h=height and d=diameter, of from 10:1 to 1.3:1.

6. A chamber as claimed in claim 5 further comprising a filter mesh.

7. A chamber as claimed in claim 1 further comprising an inlet and outlet and a fluid transporter system disposed there between.

8. A chamber as claimed in claim 7 wherein the fluid transporter system comprises a tube semi-permeable to gasses.

9. A chamber as claimed in claim 7 wherein the fluid transporter system is arranged helically around inner wall.

10. A chamber as claimed in claim 1 wherein the wherein the at least one heat exchanger element extends through an upper plate into the chamber above the fluid bed plate.

11. A chamber as claimed in claim 10 wherein the at least one heat exchanger element is arranged substantially perpendicular to the upper and lower plates.

12. A chamber as claimed in claim 1 wherein the at least one heat exchanger element is disposed along one length of the chamber.

13. A chamber as claimed in claim 1 wherein the at least one heat exchanger element is a hollow rod made or coated with titanium or alloys thereof.

14. A chamber for a biological component of a bio-artificial liver comprising:

a fluid bed support;

a fluidising inlet;

a fluidising outlet; and

at least one heat exchanger element disposed in the chamber;

wherein the biological component is disposed in the chamber;

wherein the fluidising inlet and the fluidising outlet proliferate the biological component in situ within the chamber when the chamber is in a vertical position;

wherein the at least one heat exchanger element cryopreserves the biological component in situ within the chamber when the chamber is in a horizontal position;

wherein the fluidising inlet and the fluidising outlet perfuse the biological component in situ within the chamber when part of an extracorporeal circuit attached to a patient when the chamber is in the vertical position; and

wherein the at least one heat exchanger element is arranged off-centered in the chamber when in the vertical position, such that when the chamber is in the horizontal position, the biological component is spread such that a larger surface area of the biological component comes into contact with an outer wall of the chamber and the at least one heat exchanger element than when the chamber is in the vertical position.

15. A chamber as claimed in claim 14 further comprising a fluid transporter system disposed in the chamber.

16. A chamber for a biological component of a bio-artificial liver comprising:

a fluid bed support;

a fluidising inlet;

a fluidising outlet;

at least one heat exchanger element disposed in the chamber; and

wherein the biological component is disposed in the chamber and comprises a matrix forming agent comprising a plurality of cells and one or more density modifiers, wherein the cells are a proliferating human cell line exhibiting a hepatocyte phenotype;

wherein the chamber further comprises at least one of an isotonic solution and a cryopreservant;

wherein the fluidising inlet and the fluidising outlet proliferate the biological component in situ within the chamber when the chamber is in a vertical position;

wherein the at least one heat exchanger element cryopreserves the biological component in situ within the chamber when the chamber is in a horizontal position;

wherein the fluidising inlet and the fluidising outlet perfuse the biological component in situ within the chamber when the chamber is in the vertical position; and

wherein the at least one heat exchanger element is arranged off-centered in the chamber when in the vertical position, such that when the chamber is in a horizontal position, the biological component is spread such that a larger surface area of the biological component comes into contact with an outer wall of the chamber and the at least one heat exchanger element than when the chamber is in the vertical position.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 1, 2011
From: SELDEN, CLARE; HODGSON, HUMPHREY; COWARD, SAM
To: UNIVERSITY COLLEGE LONDON
Reel/Frame 025726/0195 →
Priority Claims (1)
GB 0713595.7 · Jul 6, 2007 · national
Continuity (1)
Related Publication 20110125286A1 · May 26, 2011