| Literature DB >> 34917976 |
Felix Manstein1,2, Kevin Ullmann1,2, Wiebke Triebert1,2, Robert Zweigerdt1,2.
Abstract
The routine therapeutic and industrial applications of human pluripotent stem cells (hPSCs) require their constant mass supply by robust, efficient, and economically viable bioprocesses. Our protocol describes the fully controlled expansion of hPSCs in stirred tank bioreactors (STBRs) enabling cell densities of 35 × 106 cells/mL while reducing culture medium consumption by 75%. This is achieved by in silico process modeling and computable upscaling. We provide a detailed blueprint for systematic process development of hPSCs and their progenies. For complete details on the use and execution of this protocol, please refer to Manstein et al. (2021).Entities:
Keywords: Biotechnology and bioengineering; Cell culture; Stem Cells
Mesh:
Substances:
Year: 2021 PMID: 34917976 PMCID: PMC8666714 DOI: 10.1016/j.xpro.2021.100988
Source DB: PubMed Journal: STAR Protoc ISSN: 2666-1667
Exemplary kinetic model parameters
| Model parameter | Value |
|---|---|
| KGlc [mM] | 1.5 |
| KLac [mM] | 50 |
| KGln [mM] | 0.01 |
| KAgg [μm] | 350/2 |
| KOsm [mOsm/kg] | 500 |
| μ [d−1] | 1.35 |
| qGlc [× 10−8 mmol × cell−1 × d−1] | 1.474 |
| qLac [× 10−8 mmol × cell−1 × d−1] | 2.37 |
| qGln [× 10−9 mmol × cell−1 × d−1] | 1.856 |
| aggf [–] | 0.95 |
| aggg [–] | 0.25 |
Figure 1Schematic outline of the Monod-Model process development strategy
In general, the process starts with already existing wet-lab data, which is an existing process that is supposed to be optimized. From this data, key variables which are regarded to majorly influence the process need to be identified. These variables are quite often metabolites like glucose, but also can be more complex like osmolality or even aggregate size (for aggregate dependent cultures). For these values so called “Monod-constants” need to be defined which are limiting values/ concentrations at which cell growth is impacted. Based on this the first stage model can be built. Afterwards this model needs to be challenged, first in silico and afterwards in the wet-lab. This means that key variables need to be altered in order to affect cell growth. Afterwards the impact of the alteration between the in silico model and the wet-lab need to be compared. With a high probability, the model does not align with the wet-lab data. In that case, the system needs to be reevaluated in order to identify new variables that need to be added, or to adjust the already existing monod-constants. Afterwards the second stage model is generated. From now on the steps of model alteration in silico and in the wet-lab followed by reevaluation need to be repeated until wet-lab and in silico data overlap.
Figure 2Exemplary microscopical pictures of Monolayer cell growth
(A–E) Exemplary bright field images of a monolayer culture on Geltrex and in E8, directly after seeding (A), on day 1 (B), day 2 (C), day 3 (D) and of the flask after cell detachment in order to highlight good cell detachment (E) (scale bars = 200 µm).
Figure 3Display of the pump calibration process
(A) Exemplary image of a pump calibration process.
(B) Exemplary of the software during pump calibration.
Figure 4Schematic overview of the headplate arrangement for both DASbox and DASGIP Bioblock bioreactor systems
Figure 5Schematic overview of the assembly of bottles to the DASbox bioreactor
(A) Exemplary images of the connection of bottles to the bioreactor. Starting with the waste bottle, followed by feed, base and inoculation.
(B) Side and top view of the assembled bioreactor in order to highlight connections.
Figure 6Display of the software set up for bioreactor start
Figure 7Exemplary images of how an inoculation bottle is used to transfer media and cell suspension into the bioreactor
Bioreactor settings (exemplarily for a 150 mL DASbox bioreactor)
| Stirring | Temperature | Gassing | pH | DO | Perfusion |
|---|---|---|---|---|---|
| 80 rpm (exact calculation based on | 37°C | 0.9 sL/h (reactor volume × 6), 21% O2, 5% CO2 | 7.1 | 40% | see |
Figure 8Representative expected results for bioprocesses conducted after this protocol
(A) Viable cell density (dots) and viability (squares) for representative processes.
(B) Representative online process parameter measurement of dissolved oxygen (DO) value over process time.
(C) Representative online process parameter measurement of pH value over process time.
Figure 9Representative expected results for bioprocesses conducted after this protocol
(A) Representative light microscopy pictures of process-derived aggregate samples on days 1, 3, 5 and 7 for 3 different cell lines highlight cell homogeneity within the cultures and the cell line dependent differences in size of formed aggregates(scale bars = 200 μm).
(B) Distribution of aggregate diameters over the cultivation time.
(C) Representative flow cytometry plots of cells harvested at process endpoint (day 7) showing the pluripotency-associated surface markers TRA-1-60, SSEA-4 and SSEA-3 and transcription factors OCT-3/4 and NANOG as well as the proliferation marker KI-67 (isotype controls shown in gray).
(D) Representative karyotype of cells cultured for 7 days under the conditions described here. Figure adapted from (Manstein et al., 2021).
| REAGENT or RESOURCE | SOURCE | IDENTIFIER |
|---|---|---|
| SSEA3 Monoclonal Antibody (MC-631), DyLight 650, Dilution 1:50 | Thermo Fisher Scientific | Cat#MA1-020-D650 |
| SSEA-4 Antibody, anti-human, VioBlue, REAfinity, Dilution 1:25 | Miltenyi Biotec | Cat#130-098-366 |
| TRA-1-60 Antibody, anti-human, PE, REAfinity, Dilution 1:25 | Miltenyi Biotec | Cat#130-122-921 |
| Oct3/4 Isoform A Antibody, anti-human/mouse, PE, REAfinity, Dilution 1:25 | Miltenyi Biotec | Cat#130-123-771 |
| Nanog Antibody, anti-human, APC, REAfinity, Dilution 1:25 | Miltenyi Biotec | Cat#130-120-774 |
| Ki-67 Antibody, anti-human/mouse, PE-Vio 770, REAfinity, Dilution 1:25 | Miltenyi Biotec | Cat#130-120-419 |
| PBS (10 ×), pH 7.4 | Thermo Fisher Scientific | Cat#70011036 |
| StemPro Accutase Cell Dissociation Reagent | Thermo Fisher Scientific | Cat#A1110501 |
| Versene Solution | Thermo Fisher Scientific | Cat#15040033 |
| DMEM/F-12, HEPES | Thermo Fisher Scientific | Cat#11330057 |
| Pluronic F-68 Non-ionic Surfactant (100×) | Thermo Fisher Scientific | Cat#S6014 |
| Geltrex LDEV-Free, hESC-Qualified, Reduced Growth Factor Basement Membrane Matrix | Thermo Fisher Scientific | Cat#A1413302 |
| CTS Vitronectin (VTN-N) Recombinant Human Protein | Thermo Fisher Scientific | Cat#A27940 |
| L-Glutamine 200 mM (100 ×) | Thermo Fisher Scientific | Cat#25030-024 |
| D-(+)-Glucose Hybri-Max | Sigma-Aldrich | Cat#G5146 |
| NaHCO3 | Sigma-Aldrich | Cat#24040032 |
| Na2SeO3 | Sigma-Aldrich | Cat#S5261 |
| Insulin solution human | Sigma-Aldrich | Cat#I9278 |
| Bovine Serum Albumin | Sigma-Aldrich | Cat#A9418 |
| Transferrin human recombinant | Sigma-Aldrich | Cat#T3705 |
| Ascorbic acid 2-phosphate | Sigma-Aldrich | Cat#A8960 |
| Sigmacote | Sigma-Aldrich | Cat#SL2 |
| Recombinant Human TGF-β1 | PeproTech | Cat#100-21C |
| Animal-Free Recombinant Human FGF-basic | PeproTech | Cat#AF-100-18B |
| y-27632 dihydrochloride | Tocris Bioscience | Cat#1254 |
| FIX & PERM Kit | Dianova | Cat#GAS-002-1 |
| HSC1285_T-iPS2 ( | Hannover Medical School (MHH) | MHHi006-A |
| hHSC_Iso4_ADCF_SeViPS2 (Phönix) ( | Hannover Medical School (MHH) | MHHi001-A |
| CD34+hPBHSC_GMPDU_SeV-iPS8 ( | Hannover Medical School (MHH) | MHHi008-A |
| FlowJo v10 software | BD Biosciences | N/A |
| Fiji ImageJ | N/A | N/A |
| DASware control | Eppendorf | Cat#78600167 |
| Berkeley Madonna | University of California at Berkeley | N/A |
| 10, 25 and 50 mL serological pipettes | Sarstedt | Cat#86.1254.001, Cat#86.1685.001, Cat#86.1689.001 |
| 15 and 50 mL conical tube | Greiner Bio-One | Cat#188261, Cat#227261 |
| centrifuge tubes 500 mL | Corning Life Sciences | Cat#CLS431123-36EA |
| 10 and 200 μL sterile filter pipette tips | Starlab | Cat#S1120-3810, Cat#S1120-8810 |
| 1000 μL sterile filter pipette tips | Sarstedt | Cat#70.762.211 |
| T75 and T175 flasks | Greiner Bio-One | Cat#658175, Cat#660175 |
| 1.5 and 2.0 mL Eppendorf Safe-Lock Tubes | Eppendorf | Cat#0030120086, Cat#0030120094 |
| 500 mL bottle top filter | TPP | Cat#99505 |
| Syringe filter | Carl Roth | Cat#P666.1 |
| 20 mL Syringe | B. Braun | Cat#4606205V |
| Cell culture cabinet/laminar flow (HERAsafe HS18) | Heraeus Instruments | N/A |
| Benchtop centrifuge (Heraeus Fresco 17) | Thermo Scientific | N/A |
| Benchtop centrifuge (Heraeus Multifuge 3 S-R) | Thermo Scientific | N/A |
| MACSQuant Analyzer 10 Flow Cytometer | Miltenyi Biotec | N/A |
| Vi-CELL XR | Beckman Coulter | N/A |
| Humidified incubator (MCO-20AIC) | Sanyo | N/A |
| Water bath | GFL | Cat#1003 |
| Terg-a-zyme enzyme detergent pack | Sigma-Aldrich | Cat#Z273287-1EA |
| Disposable syringes, Omnifix 5 ml with Luer-lock | B. Braun | Cat#8728810F |
| Technical Buffer pH 4.01 | WTW | Cat#108 800 |
| Technical Buffer pH 7.00 | WTW | Cat#108 802 |
| Hamilton Storage Solution | Hamilton | Cat#238931 |
| EasyFerm Bio PHI K8 120 | Hamilton | Cat#243632-1513 |
| OxyFerm FDA 225 | Hamilton | Cat#237452 |
| DASbox Mini bioreactor system for cell culture applications | Eppendorf | Cat#76DX04CC |
| DASbox Mini bioreactor vessel for cell culture applications | Eppendorf | Cat#76DS0250ODSS |
| DASbox exhaust system | Eppendorf | Cat#76DXOFF |
| DASbox exhaust condenser, Peltier | Eppendorf | Cat#76DXCOND |
| DASbox overhead drive | Eppendorf | Cat#76DXOHD |
| Pitched-Blade Impeller, 8-blade, 60° pitch, stainless steel, O.D. 34 mm, I.D. 5 mm | Eppendorf | Cat#78100604 |
| Holding Sleeve, for 8-blade impeller, stainless steel with set screw, I.D. 8 mm, for shaft with O.D. 5 mm | Eppendorf | Cat#78100595 |
| Compression Fitting, complete, with Pg 13.5 male thread, I.D. 12 mm | Eppendorf | Cat#78532284 |
| Triple Port, Pg 13.5 thread, 3 tubes with O.D. 4 mm × L 85 mm, all parts included | Eppendorf | Cat#78706414 |
| Pipe, stainless steel, with barb, O.D. 4 mm/I.D. 2 mm, L 225 mm | Eppendorf | Cat#78107023 |
| Compression Fitting, complete, with Pg 13.5 male thread, I.D. 6 mm | Eppendorf | Cat#78532283 |
| L-Sparger, stainless steel, complete, O.D. 6 mm, L 300 mm, W 63 mm | Eppendorf | Cat#77102022 |
| Pump Head Tubing, for DASGIP MP8 pump, Bioprene, I.D. 0.5/W 1.05 mm, female/female | Eppendorf | Cat#78510118 |
| Pump Head Tubing, for DASGIP MP8 pump, Bioprene, I.D. 1.0/W 1.05 mm, male/female | Eppendorf | Cat#78510109 |
| Feed Line, with 2× Luer lock fittings, male/male, C-Flex, I.D. 0.8 mm, L 1 m | Eppendorf | Cat#78510309 |
| Feed Line, with 2× Luer lock fittings, male/male, C-Flex, I.D. 0.8 mm, L 2 m | Eppendorf | Cat#78510310 |
| Sampling Accessory, with swabable valve | Eppendorf | Cat#78510145 |
| Polytetrafluoroethylene (PTFE) membrane inline vent filter; pore size 0.2 μm | mdi Membrane Technologies | Cat#ITFX0801BBXX109 |
| Silicone tubing, inner diameter (i.d.) 1.0 mm, outer diameter (o.d.) 3.0 mm | Carl Roth | Cat#HC61.1 |
| Silicone tubing, inner diameter (i.d.) 4.0 mm, outer diameter (o.d.) 6.0 mm | Carl Roth | Cat#HC65.2 |
| hose reduction piece | Carl Roth | Cat#CT46.1 |
| Female Luer-lock connector | Carl Roth | Cat#CT62.1 |
| Male Luer-lock plug | Carl Roth | Cat#CT70.1 |
| Connector, straight, female luer lock/tubing nipple, 4.8 mm | VWR | Cat#INFIPP-LFS48 |
| Screw cap GL 45 with 2 hose connectors and EPDM gasket | Landgraf Laborsysteme (HLL) | Cat#102112807 |
| Media bottle,250ml, two 9mm hose nozzles | Landgraf Laborsysteme (HLL) | Cat#L14040250 |
| DASGIP Parallel Bioreactor System, for cell culture | Eppendorf | Cat#76DG04CCBB |
| DASGIP Vessel, DS1000ODSS, 350 mL – 1.0 L, 2× GL45 side arms | Eppendorf | Cat#76DS1000ODSS |
| Pitched-Blade Impeller, 8-blade, 60° pitch, stainless steel, O.D. 53 mm, I.D. 8 mm | Eppendorf | Cat#78100605 |
| Holding Sleeve, for 8-blade impeller, stainless steel with set screw, I.D. 10 mm, for shaft with O.D. 8 mm | Eppendorf | Cat#78100597 |
| Pump Head Tubing, for DASGIP® MP8 pump, Peripren, I.D. 2.0/W 0.8 mm, female/female | Eppendorf | Cat#78510237 |
| EasyFerm Bio PHI K8 225 | Hamilton | Cat#243632-1543 |
| Media bottle,1000ml, two 9mm hose nozzles | Landgraf Laborsysteme (HLL) | Cat#L14040101 |
| Sintered glass sparger, AD 6 × 15mm, Por.3, pore size 16–40 μm, glass tube AD 4 × 0.8 mm, L 35mm | Eppendorf | Cat#78903230 |
| Stainless Steel Flange | Eppendorf | Cat#78107292 |
E8 adherent medium (for adherent (pre-) culture)
| Reagent | Final concentration | Amount |
|---|---|---|
| E8 basis medium | N/A | 500 mL |
| FGF2 (100 μg/mL) | 100 μg/L | 0.5 mL |
| TGF-β1 (2 μg/mL) | 2 μg/L | 0.5 mL |
| Insulin (10 mg/mL) | 20 mg/L | 1 mL |
| Ascorbic acid-2-phosphate (64 mg/mL) | 64 mg/L | 0.5 mL |
| Transferrin (10.7 mg/mL) | 10.7 mg/L | 0.5 mL |
| Sodium Selenite (140 μg/mL) | 14 μg/L | 0.05 mL |
| RI (Y-27632) (10 mM; only after passaging) | 10 μM | 0.5 mL |
E8 suspension medium (for bioreactor inoculation)
| Reagent | Final concentration | Amount |
|---|---|---|
| E8 basis medium | N/A | 500 mL |
| FGF2 (100 μg/mL) | 100 μg/L | 0.5 mL |
| TGF-β1 (2 μg/mL) | 2 μg/L | 0.5 mL |
| Insulin (10 mg/mL) | 20 mg/L | 1 mL |
| Ascorbic acid-2-phosphate (64 mg/mL) | 64 mg/L | 0.5 mL |
| Transferrin (10.7 mg/mL) | 10.7 mg/L | 0.5 mL |
| Sodium Selenite (140 μg/mL) | 14 μg/L | 0.05 mL |
| RI (Y-27632) (10 mM) | 10 μM | 0.5 mL |
| Pluronic™ F-68 Non-ionic Surfactant (10%) | 0.1% | 5 mL |
E8 full feed medium I (for perfusion feeding from day 1 – day 4)
| Reagent | Final concentration | Amount |
|---|---|---|
| E8 basis feed medium I | N/A | 500 mL |
| FGF2 (100 μg/mL) | 100 μg/L | 0.5 mL |
| TGF-β1 (2 μg/mL) | 2 μg/L | 0.5 mL |
| Insulin (10 mg/mL) | 20 mg/L | 1 mL |
| Ascorbic acid-2-phosphate (64 mg/mL) | 64 mg/L | 0.5 mL |
| Transferrin (10.7 mg/mL) | 10.7 mg/L | 0.5 mL |
| Sodium Selenite (140 μg/mL) | 14 μg/L | 0.05 mL |
| Pluronic™ F-68 Non-ionic Surfactant (10%) | 0.1% | 5 mL |
| L-Glutamine (200 mM) | + 2 mM (4.5 mM in total) | 5 mL |
E8 full feed medium II (for perfusion feeding from day 4 – day 7)
| Reagent | Final concentration | Amount |
|---|---|---|
| E8 basis feed medium II | N/A | 500 mL |
| FGF2 (100 μg/mL) | 100 μg/L | 0.5 mL |
| TGF-β1 (2 μg/mL) | 2 μg/L | 0.5 mL |
| Insulin (10 mg/mL) | 20 mg/L | 1 mL |
| Ascorbic acid-2-phosphate (64 mg/mL) | 64 mg/L | 0.5 mL |
| Transferrin (10.7 mg/mL) | 10.7 mg/L | 0.5 mL |
| Sodium Selenite (140 μg/mL) | 14 μg/L | 0.05 mL |
| Pluronic™ F-68 Non-ionic Surfactant (10%) | 0.1% | 5 mL |
| L-Glutamin (200 mM) | + 2.5 mM (5.0 mM in total) | 7.5 mL |
Applied feed rates and feed media for respective culture periods
| Culture day | Feed rate in working volumes per day [1/d] | Feed medium |
|---|---|---|
| 0–1 | 0 | N/A |
| 1–2 | 1 | E8 full feed medium I |
| 2–3 | 1.5 | E8 full feed medium I |
| 3–4 | 3 | E8 full feed medium I |
| 4–5 | 4 | E8 full feed medium II |
| 5–6 | 6 | E8 full feed medium II |
| 6–7 | 7 | E8 full feed medium II |