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SMAD4 maintains the fluid shear stress set point to protect against arterial-venous malformations

Vascular networks form, remodel, and mature under the influence of both fluid shear stress (FSS) and soluble factors. Physiological FSS promotes and maintains vascular stability via synergy with bone morphogenic proteins 9 and 10 (BMP9 and BMP10). Conversely, mutation of the BMP receptors activin-li...

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Autores principales: Banerjee, Kuheli, Lin, Yanzhu, Gahn, Johannes, Cordero, Julio, Gupta, Purnima, Mohamed, Islam, Graupera, Mariona, Dobreva, Gergana, Schwartz, Martin A., Ola, Roxana
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Clinical Investigation 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10503796/
https://www.ncbi.nlm.nih.gov/pubmed/37490341
http://dx.doi.org/10.1172/JCI168352
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author Banerjee, Kuheli
Lin, Yanzhu
Gahn, Johannes
Cordero, Julio
Gupta, Purnima
Mohamed, Islam
Graupera, Mariona
Dobreva, Gergana
Schwartz, Martin A.
Ola, Roxana
author_facet Banerjee, Kuheli
Lin, Yanzhu
Gahn, Johannes
Cordero, Julio
Gupta, Purnima
Mohamed, Islam
Graupera, Mariona
Dobreva, Gergana
Schwartz, Martin A.
Ola, Roxana
author_sort Banerjee, Kuheli
collection PubMed
description Vascular networks form, remodel, and mature under the influence of both fluid shear stress (FSS) and soluble factors. Physiological FSS promotes and maintains vascular stability via synergy with bone morphogenic proteins 9 and 10 (BMP9 and BMP10). Conversely, mutation of the BMP receptors activin-like kinase 1 (ALK1), endoglin (ENG), or the downstream effector, SMAD family member 4 (SMAD4) leads to hereditary hemorrhagic telangiectasia (HHT), characterized by fragile and leaky arterial-venous malformations (AVMs). How endothelial cells (ECs) integrate FSS and BMP signals in vascular development and homeostasis and how mutations give rise to vascular malformations is not well understood. Here, we aimed to elucidate the mechanism of synergy between FSS and SMAD signaling in vascular stability and how disruption of this synergy leads to AVMs. We found that loss of Smad4 increased the sensitivity of ECs to flow by lowering the FSS set point, with resulting AVMs exhibiting features of excessive flow-mediated morphological responses. Mechanistically, loss of SMAD4 disinhibits flow-mediated KLF4-TIE2-PI3K/Akt signaling, leading to cell cycle progression–mediated loss of arterial identity due to KLF4-mediated repression of cyclin dependent Kinase (CDK) inhibitors CDKN2A and CDKN2B. Thus, AVMs caused by Smad4 deletion are characterized by chronic high flow remodeling with excessive EC proliferation and loss of arterial identity as triggering events.
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spelling pubmed-105037962023-09-16 SMAD4 maintains the fluid shear stress set point to protect against arterial-venous malformations Banerjee, Kuheli Lin, Yanzhu Gahn, Johannes Cordero, Julio Gupta, Purnima Mohamed, Islam Graupera, Mariona Dobreva, Gergana Schwartz, Martin A. Ola, Roxana J Clin Invest Research Article Vascular networks form, remodel, and mature under the influence of both fluid shear stress (FSS) and soluble factors. Physiological FSS promotes and maintains vascular stability via synergy with bone morphogenic proteins 9 and 10 (BMP9 and BMP10). Conversely, mutation of the BMP receptors activin-like kinase 1 (ALK1), endoglin (ENG), or the downstream effector, SMAD family member 4 (SMAD4) leads to hereditary hemorrhagic telangiectasia (HHT), characterized by fragile and leaky arterial-venous malformations (AVMs). How endothelial cells (ECs) integrate FSS and BMP signals in vascular development and homeostasis and how mutations give rise to vascular malformations is not well understood. Here, we aimed to elucidate the mechanism of synergy between FSS and SMAD signaling in vascular stability and how disruption of this synergy leads to AVMs. We found that loss of Smad4 increased the sensitivity of ECs to flow by lowering the FSS set point, with resulting AVMs exhibiting features of excessive flow-mediated morphological responses. Mechanistically, loss of SMAD4 disinhibits flow-mediated KLF4-TIE2-PI3K/Akt signaling, leading to cell cycle progression–mediated loss of arterial identity due to KLF4-mediated repression of cyclin dependent Kinase (CDK) inhibitors CDKN2A and CDKN2B. Thus, AVMs caused by Smad4 deletion are characterized by chronic high flow remodeling with excessive EC proliferation and loss of arterial identity as triggering events. American Society for Clinical Investigation 2023-09-15 /pmc/articles/PMC10503796/ /pubmed/37490341 http://dx.doi.org/10.1172/JCI168352 Text en © 2023 Banerjee et al. https://creativecommons.org/licenses/by/4.0/This work is licensed under the Creative Commons Attribution 4.0 International License. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Research Article
Banerjee, Kuheli
Lin, Yanzhu
Gahn, Johannes
Cordero, Julio
Gupta, Purnima
Mohamed, Islam
Graupera, Mariona
Dobreva, Gergana
Schwartz, Martin A.
Ola, Roxana
SMAD4 maintains the fluid shear stress set point to protect against arterial-venous malformations
title SMAD4 maintains the fluid shear stress set point to protect against arterial-venous malformations
title_full SMAD4 maintains the fluid shear stress set point to protect against arterial-venous malformations
title_fullStr SMAD4 maintains the fluid shear stress set point to protect against arterial-venous malformations
title_full_unstemmed SMAD4 maintains the fluid shear stress set point to protect against arterial-venous malformations
title_short SMAD4 maintains the fluid shear stress set point to protect against arterial-venous malformations
title_sort smad4 maintains the fluid shear stress set point to protect against arterial-venous malformations
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10503796/
https://www.ncbi.nlm.nih.gov/pubmed/37490341
http://dx.doi.org/10.1172/JCI168352
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