在神经元迁移过程中,机械信号通过膜张力诱导染色体易位。

IF 9.4 1区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY
Takunori Minegishi, Honami Hasebe, Tomoya Aoyama, Keiji Naruse, Yasufumi Takahashi, Naoyuki Inagaki
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引用次数: 0

摘要

神经元通过重复两个不同的步骤以跳跃式的方式迁移:先导过程的延伸和细胞体的易位。前一步对于确定响应细胞外引导线索的迁移路线至关重要。在后一个步骤中,神经元必须产生强大的力量,使庞大的躯体在周围三维环境的机械障碍下移位。然而,前导过程延长和随后的染色体易位之间的联系仍然未知。通过膜张力传感器Flipper-TR和扫描离子电导显微镜,我们发现前导过程延长增加了质膜张力。张力升高激活了机械敏感离子通道Tmem63b并触发Ca2+内流,导致细胞后部的肌动球蛋白激活。该信号通路的阻断干扰了染色体易位,从而抑制了神经元在三维环境中的迁移。这些数据表明,通过质膜张力和机械通道的机械信号将主要过程延伸与染色体易位联系起来,从而允许快速和跳跃的神经元迁移。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Mechanical signaling through membrane tension induces somal translocation during neuronal migration.

Neurons migrate in a saltatory manner by repeating two distinct steps: extension of the leading process and translocation of the cell body. The former step is critical for determining the migratory route in response to extracellular guidance cues. In the latter step, neurons must generate robust forces that translocate the bulky soma against mechanical barriers of the surrounding three-dimensional environment. However, the link between the leading process extension and subsequent somal translocation remains unknown. By using the membrane tension sensor Flipper-TR and scanning ion conductance microscopy, we show that leading process extension increases plasma membrane tension. The tension elevation activated the mechanosensitive ion channel Tmem63b and triggered Ca2+ influx, leading to actomyosin activation at the rear of the cell. Blockade of this signaling pathway disturbed somal translocation, thereby inhibiting neuronal migration in three-dimensional environments. These data suggest that mechanical signaling through plasma membrane tension and mechano-channels links the leading process extension to somal translocation, allowing rapid and saltatory neuronal migration.

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来源期刊
EMBO Journal
EMBO Journal 生物-生化与分子生物学
CiteScore
18.90
自引率
0.90%
发文量
246
审稿时长
1.5 months
期刊介绍: The EMBO Journal has stood as EMBO's flagship publication since its inception in 1982. Renowned for its international reputation in quality and originality, the journal spans all facets of molecular biology. It serves as a platform for papers elucidating original research of broad general interest in molecular and cell biology, with a distinct focus on molecular mechanisms and physiological relevance. With a commitment to promoting articles reporting novel findings of broad biological significance, The EMBO Journal stands as a key contributor to advancing the field of molecular biology.
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