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N-钙黏蛋白在复杂环境中动态调节小儿胶质瘤细胞迁移。

N-cadherin dynamically regulates pediatric glioma cell migration in complex environments.

作者信息

Kim Dayoung, Olson James M, Cooper Jonathan A

机构信息

Basic Sciences Division, Fred Hutchinson Cancer Center, Seattle, WA, 98109, USA.

Clinical Division, Fred Hutchinson Cancer Center, Seattle, WA, 98109, USA.

出版信息

bioRxiv. 2024 Jan 11:2023.04.04.535599. doi: 10.1101/2023.04.04.535599.

Abstract

Pediatric high-grade gliomas are highly invasive and essentially incurable. Glioma cells migrate between neurons and glia, along axon tracts, and through extracellular matrix surrounding blood vessels and underlying the pia. Mechanisms that allow adaptation to such complex environments are poorly understood. N-cadherin is highly expressed in pediatric gliomas and associated with shorter survival. We found that inter-cellular homotypic N-cadherin interactions differentially regulate glioma migration according to the microenvironment, stimulating migration on cultured neurons or astrocytes but inhibiting invasion into reconstituted or astrocyte-deposited extracellular matrix. N-cadherin localizes to filamentous connections between migrating leader cells but to epithelial-like junctions between followers. Leader cells have more surface and recycling N-cadherin, increased YAP1/TAZ signaling, and increased proliferation relative to followers. YAP1/TAZ signaling is dynamically regulated as leaders and followers change position, leading to altered N-cadherin levels and organization. Together, the results suggest that pediatric glioma cells adapt to different microenvironments by regulating N-cadherin dynamics and cell-cell contacts.

摘要

小儿高级别胶质瘤具有高度侵袭性,基本无法治愈。胶质瘤细胞在神经元和神经胶质细胞之间迁移,沿着轴突束,并穿过血管周围和软脑膜下方的细胞外基质。人们对其适应这种复杂环境的机制知之甚少。N-钙黏蛋白在小儿胶质瘤中高表达,并与较短的生存期相关。我们发现,细胞间同型N-钙黏蛋白相互作用根据微环境差异调节胶质瘤迁移,刺激其在培养的神经元或星形胶质细胞上迁移,但抑制其侵入重组的或星形胶质细胞沉积的细胞外基质。N-钙黏蛋白定位于迁移的引导细胞之间的丝状连接,但定位于跟随细胞之间的上皮样连接。相对于跟随细胞,引导细胞具有更多的表面和循环N-钙黏蛋白、增加的YAP1/TAZ信号传导以及增加的增殖。随着引导细胞和跟随细胞改变位置,YAP1/TAZ信号传导受到动态调节,导致N-钙黏蛋白水平和组织改变。总之,这些结果表明小儿胶质瘤细胞通过调节N-钙黏蛋白动力学和细胞间接触来适应不同的微环境。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2eec/10802396/077a031a788d/nihpp-2023.04.04.535599v2-f0001.jpg

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