IP Library Granted Patent US 12,360,498
Granted Patent B2
US 12,360,498 · App. 18/327,662 · Granted Jul 15, 2025

Method for optimization of a bioprocessing system

Inventors: Mikael Johansson (Uppsala, SE); Pasi Juntikka (Uppsala, SE); Peter Toreheim (Uppsala, SE); Shivakumar Selvaraj (Bengaluru Karnataka, IN)
Assignee: Cytiva Sweden AB
G05B13/0205
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Quick Facts
Patent No.
US 12,360,498
App. No.
18/327,662
Granted
Jul 15, 2025
Kind
B2
Abstract

The present invention relates to a computer implemented method ( 600 ) for optimization of a bioprocessing system ( 100 ) formed by interconnected or interconnectable bioprocessing units and configured to provide a desired system functionality, the method comprising obtaining ( 610 ) requirement data of a bioprocess, the requirement data being at least indicative of the desired system functionality, and indicative of a desired substance resulting from the operation of the bioprocess system, obtaining ( 620 ) unit data indicative of characteristics of a plurality of bioprocessing units, generating ( 630 ) at least one optimized or suitable bioprocessing system configuration capable to provide the desired system functionality, the bioprocessing system configuration comprising a selection of bioprocessing units from the plurality of bioprocessing units selected using the requirement data, the unit data and an objective function dependent on the requirement data and the unit data. The invention extends to a configuration system ( 500 ).

Claims (26)

1. A computer-implemented method for optimization of a bioprocessing system formed by interconnected or interconnectable bioprocessing units and configured to provide a desired system functionality, the method comprising:

obtaining requirement data of a bioprocess, the requirement data being at least indicative of the desired system functionality, and indicative of a desired substance resulting from the operation of the bioprocessing system,

obtaining unit data indicative of characteristics of a plurality of bioprocessing units,

generating at least one optimized or suitable bioprocessing system configuration capable to provide the desired system functionality, the bioprocessing system configuration is generated by performing a selection of bioprocessing units from the plurality of bioprocessing units, wherein the bioprocessing units are selected using the requirement data, the unit data and an objective function dependent on the requirement data and the unit data, and

providing the at least one optimized or suitable bioprocessing system configuration to a user gateway,

wherein the step of generating bioprocessing system configurations comprises:

identifying one or more candidate system configurations using the requirement data and the unit data, wherein the bioprocessing system configuration is identified if the unit data match the requirement data,

selecting the at least one optimized or suitable bioprocessing system configuration by optimizing a value of the objective function dependent on the requirement data and the unit data, and

wherein a plurality of optimized or suitable bioprocessing system configuration are selected by optimizing a plurality of values of the objective function dependent on the requirement data, and

after the selecting of the at least one optimized or suitable bioprocessing system configuration, ranking the selected bioprocessing system configurations using the plurality of values of the objective function.

2. The method according to claim 1 , wherein obtaining unit data comprises compiling or reading records in a database, accessible by the computer, the unit data including specification data relating to each of the plurality of bioprocessing units.

3. The method according to claim 1 , wherein obtaining requirement data comprises receiving input of requirement data from a user.

4. The method according to claim 1 , wherein the requirement data is indicative of a selection of any of a desired production scale, a desired amount of the desired substance, a desired output of the system, a physical area available for housing the system, a desired system running hours, a desired system service life or template system configurations indicative of type of bioprocessing units comprised in the system and information on how the bioprocessing units are interconnected or interconnectable to each other.

5. The method according to claim 1 , wherein the unit data is indicative of a selection of any of output or input capacity of unit; physical size; information if the unit is configured for single-use or reusable, a desired production scale, a desired amount of the desired substance, footprint of the unit, running hours of the unit, service life of the unit or template system configurations indicative of type of bioprocessing units comprised in the system and information on how the bioprocessing units are interconnected or interconnectable to each other.

6. The method according to claim 1 , wherein the optimized or suitable bioprocessing system configuration comprises at least information indicative of the identity of the selection of bioprocessing units from the plurality of bioprocessing units.

7. The method according to claim 6 , wherein the optimized or suitable bioprocessing system configuration further comprises information indicative of how the selection of bioprocessing units from the plurality of bioprocessing units are interconnected or interconnectable to each other.

8. The method according to claim 1 , wherein the objective function is configured to generate a maximal or minimal value at an optimized bioprocessing system configuration.

9. The computer, wherein the computer is configured to perform the method according to claim 1 .

10. A configuration system, the system including;

the computer of claim 9 ;

a database including data relating at least to bioprocessing unit parameters such as: output or input capacity rated inputs; cycle times; batch time; physical size, energy consumption; configuration for single-use or reusability, service life,

the database, or a further database including data relating to one or more of unit availability, compatibility with other units, consumables required, consumable supply information, service and maintenance information, regulatory information and training information;

the computer and any of the database(s) being in communication via a communication network, and wherein the requirement data is provided via the user gateway and the user gateway returns the optimized or suitable bioprocessing system configuration.

11. The configuration system as claimed in claim 10 , wherein the computer provides, via the user gateway, data to a user including any one or more of: a three dimensional spatial representation of the bioprocessing system configured according to the bioprocessing system configuration; unit availability, compatibility with other units, consumables required, consumable supply information, service and maintenance information, regulatory information and training information.

12. A computer program comprising computer-executable instructions for causing the computer, when the computer-executable instructions are executed on a processing unit comprised in the computer, to perform the method according to claim 1 .

13. A non-transitory computer-readable storage medium, the computer-readable storage medium having the computer program according to claim 12 embodied therein.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 1, 2023
From: JOHANSSON, MIKAEL; JUNTIKKA, PASI; TOREHEIM, PETER; SELVARAJ, SHIVAKUMAR
To: GE HEALTHCARE BIO-SCIENCES AB
Reel/Frame 063832/0607 →
CHANGE OF NAME Recorded Jun 1, 2023
From: GE HEALTHCARE BIO-SCIENCES AB
To: CYTIVA SWEDEN AB
Reel/Frame 063834/0106 →
Priority Claims (1)
GB 1814233 · Aug 31, 2018 · national
Continuity (2)
Continuation 17268490
Related Publication 20230384741A1 · Nov 30, 2023
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