4.8 Article

Biallelic VARS variants cause developmental encephalopathy with microcephaly that is recapitulated in vars knockout zebrafish

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NATURE COMMUNICATIONS
卷 10, 期 -, 页码 -

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NATURE PUBLISHING GROUP
DOI: 10.1038/s41467-018-07953-w

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资金

  1. Eurocores program EuroEPINOMICS
  2. Fund for Scientific Research Flanders (FWO)
  3. International Coordination Action (ICA) [G0E8614N]
  4. National Institute of Neurological Disorders and Stroke [R35 NS105078]
  5. National Human Genome Research/National Heart Lung and Blood Institute (NHGRI/NHLBI) [UM1 HG006542]
  6. Fund for Scientific Research Flanders (FWO) [12G3616N, 1125416N]
  7. Agency for Innovation by Science and Technology, IWT
  8. National Research Foundation of Korea [NRF-M3A6A4-2010-0029785]
  9. National Research Council of Science & Technology (NST) grant of the Korea government (MSIP) [CRC-15-04-KIST]
  10. KRIBB Research Initiative Program
  11. German Research Foundation/Deutsche Forschungsgemeinschaft [DI 1731/2-1]
  12. University of Kiel
  13. German Research Foundation within the EuroEPINOMICS framework of the European Science Foundation [HE5415/3-1]
  14. German Research Foundation (DFG) [HE5415/5-1, HE5415/6-1]
  15. National Institute of General Medical Sciences [GM54899, GM118647]
  16. European Union [779257]

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Aminoacyl tRNA synthetases (ARSs) link specific amino acids with their cognate transfer RNAs in a critical early step of protein translation. Mutations in ARSs have emerged as a cause of recessive, often complex neurological disease traits. Here we report an allelic series consisting of seven novel and two previously reported biallelic variants in valyl-tRNA synthetase (VARS) in ten patients with a developmental encephalopathy with microcephaly, often associated with early-onset epilepsy. In silico, in vitro, and yeast complementation assays demonstrate that the underlying pathomechanism of these mutations is most likely a loss of protein function. Zebrafish modeling accurately recapitulated some of the key neurological disease traits. These results provide both genetic and biological insights into neurodevelopmental disease and pave the way for further in-depth research on ARS related recessive disorders and precision therapies.

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