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Piezo1 Response to Shear Stress Is Controlled by the Components of the Extracellular Matrix

journal contribution
posted on 2024-11-02, 21:26 authored by tin Lai, Peter ThurgoodPeter Thurgood, Charles Cox, Chanly Chheang, Karlheinz Peter, Anthony JaworowskiAnthony Jaworowski, Khashayar Khoshmanesh, Sara BaratchiSara Baratchi
Piezo1 is a recently discovered Ca2+permeable ion channel that has emerged as an integral sensor of hemodynamic forces within the cardiovascular system, contributing to vascular development and blood pressure regulation. However, how the composition of the extracellular matrix (ECM) affects the mechanosensitivity of Piezo1 in response to hemodynamic forces remains poorly understood. Using a combination of microfluidics and calcium imaging techniques, we probe the shear stress sensitivity of single HEK293T cells engineered to stably express Piezo1 in the presence of different ECM proteins. Our experiments show that Piezo1 sensitivity to shear stress is not dependent on the presence of ECM proteins. However, different ECM proteins regulate the sensitivity of Piezo1 depending on the shear stress level. Under high shear stress, fibronectin sensitizes Piezo1 response to shear, while under low shear stress, Piezo1 mechanosensitivity is improved in the presence of collagen types I and IV and laminin. Moreover, we report that α5β1 and αvβ3 integrins are involved in Piezo1 sensitivity at high shear, while αvβ3 and αvβ5 integrins are involved in regulating the Piezo1 response at low shear stress. These results demonstrate that the ECM/integrin interactions influence Piezo1 mechanosensitivity and could represent a mechanism whereby extracellular forces are transmitted to Piezo1 channels, providing new insights into the mechanism by which Piezo1 senses shear stress.

Funding

A microfluidic approach to study the mechanobiology of ageing blood vessels

Australian Research Council

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Microfluidic platforms for studying foam cell formation in vessels

Australian Research Council

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History

Related Materials

  1. 1.
    DOI - Is published in 10.1021/acsami.2c09169
  2. 2.
    ISSN - Is published in 19448244

Journal

ACS Applied Materials and Interfaces

Volume

14

Issue

36

Start page

40559

End page

40568

Total pages

10

Publisher

American Chemical Society

Place published

United States

Language

English

Copyright

© 2022 American Chemical Society

Former Identifier

2006118648

Esploro creation date

2023-01-11

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