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Selection of O-negative induced pluripotent stem cell clones for high-density red blood cell production in a scalable perfusion bioreactor system.

Publication ,  Journal Article
Yu, S; Vassilev, S; Lim, ZR; Sivalingam, J; Lam, ATL; Ho, V; Renia, L; Malleret, B; Reuveny, S; Oh, SKW
Published in: Cell proliferation
August 2022

Large-scale generation of universal red blood cells (RBCs) from O-negative (O-ve) human induced pluripotent stem cells (hiPSCs) holds the potential to alleviate worldwide shortages of blood and provide a safe and secure year-round supply. Mature RBCs and reticulocytes, the immature counterparts of RBCs generated during erythropoiesis, could also find important applications in research, for example in malaria parasite infection studies. However, one major challenge is the lack of a high-density culture platform for large-scale generation of RBCs in vitro.We generated 10 O-ve hiPSC clones and evaluated their potential for mesoderm formation and erythroid differentiation. We then used a perfusion bioreactor system to perform studies with high-density cultures of erythroblasts in vitro.Based on their tri-lineage (and specifically mesoderm) differentiation potential, we isolated six hiPSC clones capable of producing functional erythroblasts. Using the best performing clone, we demonstrated the small-scale generation of high-density cultures of erythroblasts in a perfusion bioreactor system. After process optimization, we were able to achieve a peak cell density of 34.7 million cells/ml with 92.2% viability in the stirred bioreactor. The cells expressed high levels of erythroblast markers, showed oxygen carrying capacity, and were able to undergo enucleation.This study demonstrated a scalable platform for the production of functional RBCs from hiPSCs. The perfusion culture platform we describe here could pave the way for large volume-controlled bioreactor culture for the industrial generation of high cell density erythroblasts and RBCs.

Duke Scholars

Published In

Cell proliferation

DOI

EISSN

1365-2184

ISSN

0960-7722

Publication Date

August 2022

Volume

55

Issue

8

Start / End Page

e13218

Related Subject Headings

  • Perfusion
  • Oncology & Carcinogenesis
  • Induced Pluripotent Stem Cells
  • Humans
  • Erythropoiesis
  • Erythrocytes
  • Clone Cells
  • Cell Differentiation
  • Bioreactors
  • 3101 Biochemistry and cell biology
 

Citation

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Yu, S., Vassilev, S., Lim, Z. R., Sivalingam, J., Lam, A. T. L., Ho, V., … Oh, S. K. W. (2022). Selection of O-negative induced pluripotent stem cell clones for high-density red blood cell production in a scalable perfusion bioreactor system. Cell Proliferation, 55(8), e13218. https://doi.org/10.1111/cpr.13218
Yu, SuE, Svetlan Vassilev, Zhong Ri Lim, Jaichandran Sivalingam, Alan Tin Lun Lam, Valerie Ho, Laurent Renia, Benoit Malleret, Shaul Reuveny, and Steve Kah Weng Oh. “Selection of O-negative induced pluripotent stem cell clones for high-density red blood cell production in a scalable perfusion bioreactor system.Cell Proliferation 55, no. 8 (August 2022): e13218. https://doi.org/10.1111/cpr.13218.
Yu S, Vassilev S, Lim ZR, Sivalingam J, Lam ATL, Ho V, et al. Selection of O-negative induced pluripotent stem cell clones for high-density red blood cell production in a scalable perfusion bioreactor system. Cell proliferation. 2022 Aug;55(8):e13218.
Yu, SuE, et al. “Selection of O-negative induced pluripotent stem cell clones for high-density red blood cell production in a scalable perfusion bioreactor system.Cell Proliferation, vol. 55, no. 8, Aug. 2022, p. e13218. Epmc, doi:10.1111/cpr.13218.
Yu S, Vassilev S, Lim ZR, Sivalingam J, Lam ATL, Ho V, Renia L, Malleret B, Reuveny S, Oh SKW. Selection of O-negative induced pluripotent stem cell clones for high-density red blood cell production in a scalable perfusion bioreactor system. Cell proliferation. 2022 Aug;55(8):e13218.
Journal cover image

Published In

Cell proliferation

DOI

EISSN

1365-2184

ISSN

0960-7722

Publication Date

August 2022

Volume

55

Issue

8

Start / End Page

e13218

Related Subject Headings

  • Perfusion
  • Oncology & Carcinogenesis
  • Induced Pluripotent Stem Cells
  • Humans
  • Erythropoiesis
  • Erythrocytes
  • Clone Cells
  • Cell Differentiation
  • Bioreactors
  • 3101 Biochemistry and cell biology