Kretschmer Maibritt, Mamistvalov Rose, Sprinzak David, Vollmar Angelika M, Zahler Stefan
Department of Pharmacy, Pharmaceutical Biology, Ludwig-Maximilians-Universität München, Butenandtstraße 5-13, 81377 Munich, Germany.
The George S. Wise Faculty of Life Sciences, Tel Aviv University, Tel Aviv 69978, Israel.
J Cell Sci. 2023 Jan 15;136(2). doi: 10.1242/jcs.260442. Epub 2023 Jan 31.
Notch signaling is critical for many developmental and disease-related processes. It is widely accepted that Notch has a mechanotransduction module that regulates receptor cleavage. However, the role of biomechanical properties of the cellular environment in Notch signaling in general is still poorly understood. During angiogenesis, differentiation of endothelial cells into tip and stalk cells is regulated by Notch signaling, and remodeling of the extracellular matrix occurs. We investigated the influence of substrate stiffness on the Notch signaling pathway in endothelial cells. Using stiffness-tuned polydimethylsiloxane (PDMS) substrates, we show that activity of the Notch signaling pathway inversely correlates with a physiologically relevant range of substrate stiffness (i.e. increased Notch signaling activity on softer substrates). Trans-endocytosis of the Notch extracellular domain, but not the overall endocytosis, is regulated by substrate stiffness, and integrin cell-matrix connections are both stiffness dependent and influenced by Notch signaling. We conclude that mechanotransduction of Notch activation is modulated by substrate stiffness, highlighting the role of substrate rigidity as an important cue for signaling. This might have implications in pathological situations associated with stiffening of the extracellular matrix, such as tumor growth.
Notch信号传导对于许多发育过程和疾病相关过程至关重要。人们普遍认为Notch具有一个调节受体切割的机械转导模块。然而,细胞环境的生物力学特性在Notch信号传导中的总体作用仍知之甚少。在血管生成过程中,内皮细胞向尖端细胞和茎细胞的分化受Notch信号传导调节,同时细胞外基质会发生重塑。我们研究了底物硬度对内皮细胞中Notch信号通路的影响。使用硬度可调的聚二甲基硅氧烷(PDMS)底物,我们发现Notch信号通路的活性与底物硬度的生理相关范围呈负相关(即在较软的底物上Notch信号传导活性增加)。Notch细胞外结构域的转胞吞作用,而非整体内吞作用,受底物硬度调节,整合素细胞 - 基质连接既依赖于硬度,又受Notch信号传导影响。我们得出结论,底物硬度调节Notch激活的机械转导,突出了底物刚性作为信号传导重要线索的作用。这可能对与细胞外基质硬化相关的病理情况(如肿瘤生长)具有影响。