Mechanosensitive Differentiation of Human iPS Cell-Derived Podocytes.

dc.contributor.author

Zhang, Yize

dc.contributor.author

Musah, Samira

dc.date.accessioned

2024-12-29T06:34:02Z

dc.date.available

2024-12-29T06:34:02Z

dc.date.issued

2024-10

dc.description.abstract

Stem cell fate decisions, including proliferation, differentiation, morphological changes, and viability, are impacted by microenvironmental cues such as physical and biochemical signals. However, the specific impact of matrix elasticity on kidney cell development and function remains less understood due to the lack of models that can closely recapitulate human kidney biology. An established protocol to differentiate podocytes from human-induced pluripotent stem (iPS) cells provides a promising avenue to elucidate the role of matrix elasticity in kidney tissue development and lineage determination. In this study, we synthesized polyacrylamide hydrogels with different stiffnesses and investigated their ability to promote podocyte differentiation and biomolecular characteristics. We found that 3 kPa and 10 kPa hydrogels significantly support the adhesion, differentiation, and viability of podocytes. Differentiating podocytes on a more compliant (0.7 kPa) hydrogel resulted in significant cell loss and detachment. Further investigation of the mechanosensitive proteins yes-associated protein (YAP) and synaptopodin revealed nuanced molecular distinctions in cellular responses to matrix elasticity that may otherwise be overlooked if morphology and cell spreading alone were used as the primary metric for selecting matrices for podocyte differentiation. Specifically, hydrogels with kidney-like rigidities outperformed traditional tissue culture plates at modulating the molecular-level expression of active mechanosensitive proteins critical for podocyte health and function. These findings could guide the development of physiologically relevant platforms for kidney tissue engineering, disease modeling, and mechanistic studies of organ physiology and pathophysiology. Such advances are critical for realizing the full potential of in vitro platforms in accurately predicting human biological responses.

dc.identifier

bioengineering11101038

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2306-5354

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2306-5354

dc.identifier.uri

https://hdl.handle.net/10161/31819

dc.language

eng

dc.publisher

MDPI AG

dc.relation.ispartof

Bioengineering (Basel, Switzerland)

dc.relation.isversionof

10.3390/bioengineering11101038

dc.rights.uri

https://creativecommons.org/licenses/by-nc/4.0

dc.subject

biomaterials

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cytoskeleton

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human-induced pluripotent stem cells

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hydrogel

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matrix elasticity

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mechanobiology

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podocytes

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stem cell differentiation

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synaptopodin

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yes-associated protein

dc.title

Mechanosensitive Differentiation of Human iPS Cell-Derived Podocytes.

dc.type

Journal article

pubs.begin-page

1038

pubs.issue

10

pubs.organisational-group

Duke

pubs.organisational-group

Pratt School of Engineering

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School of Medicine

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Basic Science Departments

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Clinical Science Departments

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Institutes and Centers

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Cell Biology

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Biomedical Engineering

pubs.organisational-group

Medicine

pubs.organisational-group

Medicine, Nephrology

pubs.organisational-group

Duke Cancer Institute

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Duke Regeneration Center

pubs.publication-status

Published

pubs.volume

11

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