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哺乳动物大脑皮层发育中的纺锤体取向。

Spindle orientation in mammalian cerebral cortical development.

机构信息

Institute of Molecular Biotechnology of the Austrian Academy of Sciences, Dr Bohr Gasse 3-5, 1030 Vienna, Austria.

出版信息

Curr Opin Neurobiol. 2012 Oct;22(5):737-46. doi: 10.1016/j.conb.2012.04.003. Epub 2012 May 2.

Abstract

In any mitotic cell, the orientation of the mitotic spindle determines the orientation of the cleavage plane and therefore the position of the two daughter cells. When combined with polarization of cellular components, spindle orientation is also a well-conserved means of generating daughter cells with asymmetric cell fates, such as progenitors and differentiated cell types. In the mammalian neocortex, the precise planar spindle orientation observed early during development is vital for symmetric proliferative divisions. During later stages, spindles can be oblique or even vertical but the role of this reorientation is somewhat less clear as asymmetric cell fates can arise independently of spindle orientation during this stage. Although decades of work have identified many key conserved regulators of spindle positioning, its precise role in cell fate determination in the mammalian neocortex has been enigmatic. Recent work focused on mInsc and LGN has now revealed an important role for spindle orientation in determination of specific asymmetric cell fates, namely intermediate progenitors and a new progenitor population, termed outer radial glia. In this way, spindle orientation helps determine the neurogenic outcome of asymmetric progenitor divisions, thereby influencing neuron output and cerebral cortical expansion.

摘要

在任何有丝分裂的细胞中,有丝分裂纺锤体的取向决定了分裂平面的取向,因此也决定了两个子细胞的位置。当与细胞成分的极化结合时,纺锤体的取向也是产生具有不对称细胞命运的子细胞的一种保守手段,例如祖细胞和分化细胞类型。在哺乳动物新皮层中,早期发育过程中观察到的精确平面纺锤体取向对于对称增殖分裂至关重要。在后期,纺锤体可以是倾斜的,甚至是垂直的,但这种重定向的作用就不那么明显了,因为在这个阶段,不对称的细胞命运可以独立于纺锤体取向产生。尽管几十年来的工作已经确定了许多纺锤体定位的关键保守调节因子,但它在哺乳动物新皮层细胞命运决定中的精确作用仍然是个谜。最近集中在 mInsc 和 LGN 的工作揭示了纺锤体取向在确定特定不对称细胞命运中的重要作用,即中间祖细胞和一种新的祖细胞群体,称为外放射状胶质。通过这种方式,纺锤体取向有助于决定不对称祖细胞分裂的神经发生结果,从而影响神经元输出和大脑皮层扩张。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e536/3500682/96eb6597a9cd/gr1.jpg

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