Dysfunctional mechanotransduction regulates the progression of PIK3CA-driven vascular malformations.

IF 4.1 3区 医学 Q1 ENGINEERING, BIOMEDICAL APL Bioengineering Pub Date : 2025-02-05 eCollection Date: 2025-03-01 DOI:10.1063/5.0234507
Wen Yih Aw, Aanya Sawhney, Mitesh Rathod, Chloe P Whitworth, Elizabeth L Doherty, Ethan Madden, Jingming Lu, Kaden Westphal, Ryan Stack, William J Polacheck
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Abstract

Somatic activating mutations in PIK3CA are common drivers of vascular and lymphatic malformations. Despite common biophysical signatures of tissues susceptible to lesion formation, including compliant extracellular matrix and low rates of perfusion, lesions vary in clinical presentation from localized cystic dilatation to diffuse and infiltrative vascular dysplasia. The mechanisms driving the differences in disease severity and variability in clinical presentation and the role of the biophysical microenvironment in potentiating progression are poorly understood. Here, we investigate the role of hemodynamic forces and the biophysical microenvironment in the pathophysiology of vascular malformations (VMs), and we identify hemodynamic shear stress and defective endothelial cell mechanotransduction as key regulators of lesion progression. We found that constitutive PI3K activation impaired flow-mediated endothelial cell alignment and barrier function. We show that defective shear stress sensing in PIK3CAE542K endothelial cells is associated with reduced myosin light chain phosphorylation, junctional instability, and defective recruitment of vinculin to cell-cell junctions. Using three dimensional (3D) microfluidic models of the vasculature, we demonstrate that PIK3CAE542K microvessels apply reduced traction forces and are unaffected by flow interruption. We further found that draining transmural flow resulted in increased sprouting and invasion responses in PIK3CAE542K microvessels. Mechanistically, constitutive PI3K activation decreased cellular and nuclear elasticity resulting in defective cellular tensional homeostasis in endothelial cells which may underlie vascular dilation, tissue hyperplasia, and hypersprouting in PIK3CA-driven venous and lymphatic malformations. Together, these results suggest that defective nuclear mechanics, impaired cellular mechanotransduction, and maladaptive hemodynamic responses contribute to the development and progression of PIK3CA-driven vascular malformations.

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功能失调的机械转导调节pik3ca驱动的血管畸形的进展。
PIK3CA的体细胞激活突变是血管和淋巴畸形的常见驱动因素。尽管易形成病变的组织具有共同的生物物理特征,包括细胞外基质的柔顺性和低灌注率,但病变的临床表现各不相同,从局限性囊性扩张到弥漫性和浸润性血管发育不良。驱动疾病严重程度差异和临床表现变异性的机制以及生物物理微环境在促进进展中的作用尚不清楚。在这里,我们研究了血流动力学力和生物物理微环境在血管畸形(vm)病理生理中的作用,我们确定了血流动力学剪切应力和内皮细胞机械转导缺陷是病变进展的关键调节因子。我们发现组成型PI3K激活损害了血流介导的内皮细胞排列和屏障功能。我们发现,在PIK3CAE542K内皮细胞中,剪切应力感知缺陷与肌球蛋白轻链磷酸化减少、连接不稳定以及细胞-细胞连接的血管蛋白募集缺陷有关。利用血管系统的三维(3D)微流体模型,我们证明了PIK3CAE542K微血管施加的牵引力较小,并且不受血流中断的影响。我们进一步发现,引流跨壁血流导致PIK3CAE542K微血管的发芽和入侵反应增加。在机制上,组成型PI3K激活降低了细胞和核弹性,导致内皮细胞的细胞张力稳态缺陷,这可能是pik3ca驱动的静脉和淋巴畸形中血管扩张、组织增生和过度增生的基础。总之,这些结果表明,核力学缺陷、细胞力学转导受损和不适应的血流动力学反应有助于pik3ca驱动的血管畸形的发生和进展。
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来源期刊
APL Bioengineering
APL Bioengineering ENGINEERING, BIOMEDICAL-
CiteScore
9.30
自引率
6.70%
发文量
39
审稿时长
19 weeks
期刊介绍: APL Bioengineering is devoted to research at the intersection of biology, physics, and engineering. The journal publishes high-impact manuscripts specific to the understanding and advancement of physics and engineering of biological systems. APL Bioengineering is the new home for the bioengineering and biomedical research communities. APL Bioengineering publishes original research articles, reviews, and perspectives. Topical coverage includes: -Biofabrication and Bioprinting -Biomedical Materials, Sensors, and Imaging -Engineered Living Systems -Cell and Tissue Engineering -Regenerative Medicine -Molecular, Cell, and Tissue Biomechanics -Systems Biology and Computational Biology
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