4.8 Article

An organelle-specific protein landscape identifies novel diseases and molecular mechanisms

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NATURE COMMUNICATIONS
卷 7, 期 -, 页码 -

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NATURE PORTFOLIO
DOI: 10.1038/ncomms11491

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资金

  1. European Community [241955, 278568]
  2. Dutch Kidney Foundation 'Kouncil' [CP11.18]
  3. Netherlands Organisation for Scientific Research [Veni-016.136.091, Veni-91613008, Vici-865.12.005]
  4. Foundation Fighting Blindness [C-CMM-0811-0546-RAD02, C-CMM-0811-0547-RAD03]
  5. NIH [DK075972, HD042601, DK072301, EY021872]
  6. 'Stichting Nederlands Oogheelkundig Onderzoek'
  7. 'Stichting Blindenhulp'
  8. 'Stichting Researchfonds Nijmegen'
  9. 'Landelijke Stichting voor Blinden en Slechtzienden'
  10. Netherlands Organisation for Health Research and Development (ZonMW E-rare grant) [40-42900-98-1006]
  11. Excellence Initiative Cell Networks, Germany Science Ministry
  12. Telethon Foundation [TGM11CB3]
  13. Tistou & Charlotte Kerstan Stiftung
  14. National Institute for Health Research [NF-SI-0513-10109, NF-SI-0507-10380] Funding Source: researchfish

向作者/读者索取更多资源

Cellular organelles provide opportunities to relate biological mechanisms to disease. Here we use affinity proteomics, genetics and cell biology to interrogate cilia: poorly understood organelles, where defects cause genetic diseases. Two hundred and seventeen tagged human ciliary proteins create a final landscape of 1,319 proteins, 4,905 interactions and 52 complexes. Reverse tagging, repetition of purifications and statistical analyses, produce a high-resolution network that reveals organelle-specific interactions and complexes not apparent in larger studies, and links vesicle transport, the cytoskeleton, signalling and ubiquitination to ciliary signalling and proteostasis. We observe sub-complexes in exocyst and intraflagellar transport complexes, which we validate biochemically, and by probing structurally predicted, disruptive, genetic variants from ciliary disease patients. The landscape suggests other genetic diseases could be ciliary including 3M syndrome. We show that 3M genes are involved in ciliogenesis, and that patient fibroblasts lack cilia. Overall, this organelle-specific targeting strategy shows considerable promise for Systems Medicine.

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