Loss of Smad4 drives vascular malformations via c-KIT–dependent high–fluid shear stress mimicry

Vascular endothelial cells (ECs) encode a homeostatic fluid shear stress (FSS) set point that is essential for vascular stability. Deviations above or below this threshold trigger adaptive remodeling to restore physiological shear levels. Disruption of this control mechanism leads to enlarged arteriovenous malformations (AVMs) in hereditary hemorrhagic telangiectasia, a vascular disorder caused by heterozygous loss-of-function (LOF) mutation in ALK1 , ENG , or SMAD4 . Mechanistically, Smad4 -deficient ECs are reset to a lower FSS set point value, resulting in AVMs that show characteristics of high-FSS remodeling with elevated KLF4 and high activation of the downstream Akt. Here, we investigated the KLF4/Akt upstream mechanisms by which SMAD4 sets the physiological FSS set point. We identified the receptor tyrosine kinase c-KIT as a component and regulator of the junctional mechanosensory receptor complex, which is highly upregulated in murine and human AVMs. SMAD4 restrains flow signaling by limiting c-KIT–dependent ERK5 activation and KLF4 induction. Thus, SMAD4 LOF leads to sustained c-KIT engagement in the sensory junctional apparatus, driving enhanced and prolonged activation of the ERK5/KLF4/Akt signaling axis. These results show that Smad4 -LOF mutations induce malformations by disabling a key homeostatic mechanism and identify c-KIT as a potentially previously unrecognized therapeutic target.

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Journal
Journal of Clinical Investigation
Published
2026-09-30
DOI
https://doi.org/10.1172/jci197609
Primary Topic
Vascular Anomalies and Treatments
Type
article
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article

Loss of Smad4 drives vascular malformations via c-KIT–dependent high–fluid shear stress mimicry

Roxana Ola, Gergana D. Dobreva, Julio Cordero, Kuheli Banerjee et al.
Journal of Clinical Investigation
Vascular Anomalies and Treatments
article

Loss of Smad4 drives vascular malformations via c-KIT–dependent high–fluid shear stress mimicry

Roxana Ola, Gergana D. Dobreva, Julio Cordero, Kuheli Banerjee, Martin Alexander Schwartz, Johannes Gahn, Caroline Theresa Seebauer, Yuxi Di, Zohrah Hashemi, Tanmaya Behera, Kornelia Andorfer, Yonggang Ren, Fatemeh Mirzapour-Shafiyi, Claudia Gherman, Qing Zhang, Fan Wu
article en

Abstract

Vascular endothelial cells (ECs) encode a homeostatic fluid shear stress (FSS) set point that is essential for vascular stability. Deviations above or below this threshold trigger adaptive remodeling to restore physiological shear levels. Disruption of this control mechanism leads to enlarged arteriovenous malformations (AVMs) in hereditary hemorrhagic telangiectasia, a vascular disorder caused by heterozygous loss-of-function (LOF) mutation in ALK1 , ENG , or SMAD4 . Mechanistically, Smad4 -deficient ECs are reset to a lower FSS set point value, resulting in AVMs that show characteristics of high-FSS remodeling with elevated KLF4 and high activation of the downstream Akt. Here, we investigated the KLF4/Akt upstream mechanisms by which SMAD4 sets the physiological FSS set point. We identified the receptor tyrosine kinase c-KIT as a component and regulator of the junctional mechanosensory receptor complex, which is highly upregulated in murine and human AVMs. SMAD4 restrains flow signaling by limiting c-KIT–dependent ERK5 activation and KLF4 induction. Thus, SMAD4 LOF leads to sustained c-KIT engagement in the sensory junctional apparatus, driving enhanced and prolonged activation of the ERK5/KLF4/Akt signaling axis. These results show that Smad4 -LOF mutations induce malformations by disabling a key homeostatic mechanism and identify c-KIT as a potentially previously unrecognized therapeutic target.

Journal of Clinical InvestigationVol. 136(19)
Heidelberg University (DE), University Hospital Regensburg (DE), Technische Universität Darmstadt (DE), Yale University (US), Institute of Oncology Prof. Dr. Ion Chiricuta (RO), Luzerner Kantonsspital (CH), German Centre for Cardiovascular Research (DE), Medizinische Fakultät Mannheim, University of Regensburg (DE)
Openalex Percentile: Top 12%
Vascular Anomalies and Treatments
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