PIEZO1-mediated mechanotransduction regulates collagen synthesis on nanostructured 2D and 3D models of fibrosis

IF 9.4 1区 医学 Q1 ENGINEERING, BIOMEDICAL Acta Biomaterialia Pub Date : 2025-02-01 DOI:10.1016/j.actbio.2024.12.034
Neda Rashidi , Natalia S. Harasymowicz , Alireza Savadipour , Nancy Steward , Ruhang Tang , Sara Oswald , Farshid Guilak
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Abstract

Progressive fibrosis can lead to tissue malfunction and organ failure due to the pathologic accumulation of a collagen-rich extracellular matrix. In vitro models provide useful tools for deconstructing the roles of specific biomechanical or biological mechanisms, such as substrate micro- and nanoscale architecture, in these processes for identifying potential therapeutic targets. Here, we investigated how the mechanosensitive ion channel PIEZO1 influences fibrotic gene and protein expression in adipose-derived stem cells (hASCs). Specifically, we examined the role of PIEZO1 and the mechanosensitive transcription factors YAP/TAZ in sensing aligned or non-aligned substrate architecture to regulate collagen formation. We utilized both 2D microphotopatterned substrates and 3D electrospun polycaprolactone (PCL) substrates to study the role of culture dimensionality. We found that PIEZO1 regulates collagen synthesis in hASCs in a manner that is sensitive to substrate architecture. Activation of PIEZO1 induced significant morphological changes in hASCs, particularly when cultured on aligned substrates, leading to a 30–40 % reduction in cell spreading area and increased cell elongation, in 3D-aligned cultures. Picrosirius Red staining and immunoblotting revealed that PIEZO1 activation reduced collagen accumulation in 3D culture. While YAP translocated to the cytoplasm following PIEZO1 activation, depleting YAP and TAZ did not change collagen expression significantly downstream of PIEZO1 activation, implying that YAP/TAZ translocation from the nucleus and decreased collagen synthesis may be independent consequences of PIEZO1 activation. Our studies demonstrate a role for PIEZO1 in cellular mechanosensing of substrate architecture and provide targetable pathways for treating fibrosis and for enhancing tissue-engineered and regenerative approaches for fibrous tissue repair.

Statement of significance

This study examines how cells sense and respond to their physical environment via PIEZO1 mechanotransduction. We discovered that cells use PIEZO1 to detect the alignment of surrounding structures, influencing the production of collagen - a key component in fibrosis. Our study used both 2D and 3D models to mimic different tissue environments, providing new insights into how cellular responses change in more complex settings. Importantly, we found that activating PIEZO1 alters cell shape and collagen production, especially on aligned surfaces. Interestingly, while PIEZO1 activation caused YAP translocation to the cytoplasm, this translocation did not directly affect collagen production. This work advances our understanding of fibrosis development and identifies PIEZO1 as a potential target for new therapies.

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PIEZO1 介导的机械传导调节纤维化纳米结构二维和三维模型上胶原蛋白的合成
由于富含胶原蛋白的细胞外基质的病理性积累,渐进性纤维化可导致组织功能障碍和器官衰竭。体外模型为解构特定生物力学或生物学机制(如基质微观和纳米结构)在这些过程中的作用以确定潜在治疗靶点提供了有用的工具。在这里,我们研究了机械敏感性离子通道PIEZO1如何影响脂肪来源干细胞(hASCs)中纤维化基因和蛋白质的表达。具体来说,我们研究了PIEZO1和机械敏感转录因子YAP/TAZ在感知对齐或不对齐基质结构以调节胶原形成中的作用。我们利用二维微光刻基底和三维电纺聚己内酯(PCL)基底来研究培养维度的作用。我们发现,PIEZO1 以一种对基底结构敏感的方式调节 hASCs 中胶原蛋白的合成。激活 PIEZO1 会诱导 hASCs 发生显著的形态学变化,尤其是在对齐基底上培养时,在三维对齐培养中,细胞铺展面积减少了 30-40%,细胞伸长增加。毕赤染色和免疫印迹显示,PIEZO1 的激活减少了三维培养中胶原蛋白的积累。虽然 YAP 在 PIEZO1 激活后转位到细胞质,但耗尽 YAP 和 TAZ 并没有显著改变 PIEZO1 激活下游的胶原表达,这意味着 YAP/TAZ 从细胞核转位和胶原合成减少可能是 PIEZO1 激活的独立后果。我们的研究证明了 PIEZO1 在细胞对基质结构的机械传感中的作用,并为治疗纤维化和增强纤维组织修复的组织工程和再生方法提供了可靶向的途径。意义说明:本研究探讨了细胞如何通过 PIEZO1 机械传导来感知和响应其物理环境。我们发现细胞利用 PIEZO1 检测周围结构的排列,从而影响胶原蛋白的生成--胶原蛋白是纤维化的关键成分。我们的研究使用二维和三维模型模拟不同的组织环境,为了解细胞反应如何在更复杂的环境中发生变化提供了新的视角。重要的是,我们发现激活 PIEZO1 会改变细胞形状和胶原蛋白的生成,尤其是在排列整齐的表面上。有趣的是,虽然 PIEZO1 激活会导致 YAP 转位至细胞质,但这种转位并不直接影响胶原蛋白的产生。这项研究加深了我们对纤维化发展的理解,并将 PIEZO1 确定为新疗法的潜在靶点。
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来源期刊
Acta Biomaterialia
Acta Biomaterialia 工程技术-材料科学:生物材料
CiteScore
16.80
自引率
3.10%
发文量
776
审稿时长
30 days
期刊介绍: Acta Biomaterialia is a monthly peer-reviewed scientific journal published by Elsevier. The journal was established in January 2005. The editor-in-chief is W.R. Wagner (University of Pittsburgh). The journal covers research in biomaterials science, including the interrelationship of biomaterial structure and function from macroscale to nanoscale. Topical coverage includes biomedical and biocompatible materials.
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