Skip to main navigation Skip to search Skip to main content

Loss of PYCR2 Causes Neurodegeneration by Increasing Cerebral Glycine Levels via SHMT2

  • Nathalie Escande-Beillard*
  • , Abigail Loh
  • , Sahar N. Saleem
  • , Kohei Kanata
  • , Yui Hashimoto
  • , Umut Altunoglu
  • , Artina Metoska
  • , Joanes Grandjean
  • , Fui Mee Ng
  • , Oz Pomp
  • , Nithya Baburajendran
  • , Joyner Wong
  • , Jeffrey Hill
  • , Emmanuel Beillard
  • , Patrick Cozzone
  • , Maha Zaki
  • , H. lya Kayserili
  • , Hiroshi Hamada
  • , Hidetaka Shiratori*
  • , Bruno Reversade*
  • *Corresponding author for this work
  • Agency for Science, Technology and Research, Singapore
  • Koc University
  • Cairo University
  • The University of Osaka
  • Kyoto Sangyo University
  • Institut Pasteur de la Guyane
  • National Research Center
  • National University of Singapore

Research output: Contribution to journalArticleAcademicpeer-review

Abstract

Patients lacking PYCR2, a mitochondrial enzyme that synthesizes proline, display postnatal degenerative microcephaly with hypomyelination. Here we report the crystal structure of the PYCR2 apo-enzyme and show that a novel germline p.Gly249Val mutation lies at the dimer interface and lowers its enzymatic activity. We find that knocking out Pycr2 in mice phenocopies the human disorder and depletes PYCR1 levels in neural lineages. In situ quantification of neurotransmitters in the brains of PYCR2 mutant mice and patients revealed a signature of encephalopathy driven by excessive cerebral glycine. Mechanistically, we demonstrate that loss of PYCR2 upregulates SHMT2, which is responsible for glycine synthesis. This hyperglycemia could be partially reversed by SHMT2 knockdown, which rescued the axonal beading and neurite lengths of cultured Pycr2 knockout neurons. Our findings identify the glycine metabolic pathway as a possible intervention point to alleviate the neurological symptoms of PYCR2-mutant patients. Escande-Beillard et al. establish a mouse model of PYCR2 inactivation that phenocopies human neurodegenerative disease (HLD10). Metabolomic and functional analyses in mutant mice and patients reveal that cerebral hyperglycinemia is a driver of the disease, which can be corrected by inhibiting SHMT2.
Original languageEnglish
Pages (from-to)82-94.e6
JournalNeuron
Volume107
Issue number1
DOIs
Publication statusPublished - 8 Jul 2020

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 3 - Good Health and Well-being
    SDG 3 Good Health and Well-being

Keywords

  • HLD10
  • MRS
  • PYCR1
  • PYCR2
  • SHMT2
  • cerebral glycine
  • hypomyelination
  • microcephaly
  • mouse models
  • neurodegeneration

Fingerprint

Dive into the research topics of 'Loss of PYCR2 Causes Neurodegeneration by Increasing Cerebral Glycine Levels via SHMT2'. Together they form a unique fingerprint.

Cite this