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视网膜结构的起源:机械相互作用的新作用?

The genesis of retinal architecture: an emerging role for mechanical interactions?

作者信息

Galli-Resta Lucia, Leone Paola, Bottari David, Ensini Monica, Rigosi Elisa, Novelli Elena

机构信息

Istituto di Neuroscienze CNR, Via G. Moruzzi 1, 56100 Pisa, Italy.

出版信息

Prog Retin Eye Res. 2008 May;27(3):260-83. doi: 10.1016/j.preteyeres.2008.02.001. Epub 2008 Feb 17.

Abstract

Patterns in nature have always fascinated human beings. They convey the idea of order, organization and optimization, and, to the enquiring mind, the alluring promise that understanding their building rules may uncover the forces that shaped them. In the retina, two patterns are outstanding: the stacking of cells in layers and, within the layers, the prevalent arrangement of neurons of the same type in orderly arrays, often referred to as mosaics for the crystalline-like order that some can display. Layers and mosaics have been essential keys to our present understanding of retinal circuital organization and function. Now, they may also be a precious guide in our exploration of how the retina is built. Here, we will review studies addressing the mechanisms controlling the formation of retinal mosaics and layers, illustrating common themes and unsolved problems. Among the intricacies of the building process, a world of physical forces is making its appearance. Cells are extremely complex to model as "physical entities", and many aspects of cell mechanotransduction are still obscure. Yet, recent experiments, focusing on the mechanical aspects of growth and differentiation, suggest that adopting this viewpoint will open new ways of understanding retinal formation and novel possibilities to approach retinal pathologies and repair.

摘要

自然界中的模式一直吸引着人类。它们传达了秩序、组织和优化的概念,对于善于探究的头脑而言,还蕴含着诱人的前景,即理解其构建规则或许能揭示塑造它们的力量。在视网膜中,有两种模式尤为突出:细胞分层堆叠,并且在各层内部,同类型神经元以有序阵列的形式普遍排列,由于某些阵列能呈现出类似晶体的秩序,故而常被称为镶嵌模式。层状结构和镶嵌模式一直是我们目前理解视网膜电路组织和功能的关键所在。如今,它们或许也是我们探索视网膜构建方式的宝贵指引。在此,我们将回顾有关控制视网膜镶嵌模式和层状结构形成机制的研究,阐述其中的共同主题以及尚未解决的问题。在构建过程的错综复杂之中,一个物理力的世界正在显现。将细胞作为“物理实体”进行建模极其复杂,细胞机械转导的许多方面仍不明确。然而,最近聚焦于生长和分化机械方面的实验表明,采用这一观点将为理解视网膜形成开辟新途径,并为研究视网膜病变及修复带来新的可能性。

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