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A tension-based theory of morphogenesis and compact wiring in the central nervous system
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  • Hypothesis
  • Published: 23 January 1997

A tension-based theory of morphogenesis and compact wiring in the central nervous system

  • David C. Van Essen1 

Nature volume 385, pages 313–318 (1997) Cite this article

  • 6589 Accesses

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Many structural features of the mammalian central nervous system can be explained by a morphogenetic mechanism that involves mechanical tension along axons, dendrites and glial processes. In the cerebral cortex, for example, tension along axons in the white matter can explain how and why the cortex folds in a characteristic species-specific pattern. In the cerebellum, tension along parallel fibres can explain why the cortex is highly elongated but folded like an accordion. By keeping the aggregate length of axonal and dendritic wiring low, tension should contribute to the compactness of neural circuitry throughout the adult brain.

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Authors and Affiliations

  1. Department of Anatomy and Neurobiology, Washington University School of Medicine, 660 South Euclid Avenue, St Louis, Missouri, 63110, USA

    David C. Van Essen

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  1. David C. Van Essen
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Essen, D. A tension-based theory of morphogenesis and compact wiring in the central nervous system. Nature 385, 313–318 (1997). https://doi.org/10.1038/385313a0

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  • Issue date: 23 January 1997

  • DOI: https://doi.org/10.1038/385313a0

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