4.8 Article

Structural Basis for Plexin Activation and Regulation

Journal

NEURON
Volume 91, Issue 3, Pages 548-560

Publisher

CELL PRESS
DOI: 10.1016/j.neuron.2016.06.018

Keywords

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Funding

  1. Cancer Research UK
  2. UK Medical Research Council [A10976, G9900061]
  3. Wellcome Trust [090532/Z/09/Z]
  4. VICI grant from the Netherlands Organization for Scientific Research (NWO)
  5. Epilepsiefonds [12-08]
  6. Clarendon Fund
  7. Nuffield Department of Clinical Medicine
  8. Long-Term Fellowship from the Human Frontier Science Program
  9. VIDI grant from NWO
  10. UK Medical Research Council
  11. Nuffield Department of Medicine Leadership Fellowship
  12. Wellcome Trust
  13. Cancer Research UK [10976, 17721] Funding Source: researchfish
  14. Medical Research Council [MR/M000141/1] Funding Source: researchfish
  15. MRC [MR/M000141/1] Funding Source: UKRI

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Class A plexins (PlxnAs) act as semaphorin receptors and control diverse aspects of nervous system development and plasticity, ranging from axon guidance and neuron migration to synaptic organization. PlxnA signaling requires cytoplasmic domain dimerization, but extracellular regulation and activation mechanisms remain unclear. Here we present crystal structures of PlxnA (PlxnA1, PlxnA2, and PlxnA4) full ectodomains. Domains 1-9 form a ring-like conformation from which the C-terminal domain 10 points away. All our PlxnA ectodomain structures show autoinhibitory, intermolecular head-to-stalk (domain 1 to domain 4-5) interactions, which are confirmed by biophysical assays, live cell fluorescence microscopy, and cell-based and neuronal growth cone collapse assays. This work reveals a 2-fold role of the PlxnA ectodomains: imposing a pre-signaling autoinhibitory separation for the cytoplasmic domains via intermolecular head-to-stalk interactions and supporting dimerization-based PlxnA activation upon ligand binding. More generally, our data identify a novel molecular mechanism for preventing premature activation of axon guidance receptors.

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