4.5 Article

SNX14 mutations affect endoplasmic reticulum-associated neutral lipid metabolism in autosomal recessive spinocerebellar ataxia 20

Journal

HUMAN MOLECULAR GENETICS
Volume 27, Issue 11, Pages 1927-1940

Publisher

OXFORD UNIV PRESS
DOI: 10.1093/hmg/ddy101

Keywords

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Funding

  1. Great Ormond Street Hospital Children's Charity [V4215]
  2. National Institute for Health Biomedical Research Centre at Great Ormond Street Hospital for Children NHS Foundation and University College London
  3. Welch Foundation [I-1873]
  4. National Institute of General Medical Sciences [R35/MIRA R350821601]
  5. Searle Scholars Foundation [SSP-2016-1482]
  6. University of Texas South Western Endowed Scholars Program

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Mutations in SNX14 cause the autosomal recessive cerebellar ataxia 20 (SCAR20). Mutations generally result in loss of protein although several coding region deletions have also been reported. Patient-derived fibroblasts show disrupted autophagy, but the precise function of SNX14 is unknown. The yeast homolog, Mdm1, functions in endoplasmic reticulum (ER)-lysosome/vacuole inter-organelle tethering, but functional conservation in mammals is still required. Here, we show that loss of SNX14 alters but does not block autophagic flux. In addition, we find that SNX14 is an ER-associated protein that functions in neutral lipid homeostasis and inter-organelle crosstalk. SNX14 requires its N-terminal transmembrane helices for ER localization, while the Phox homology (PX) domain is dispensable for subcellular localization. Both SNX14-mutant fibroblasts and SNX14(KO) HEK293 cells accumulate aberrant cytoplasmic vacuoles, suggesting defects in endolysosomal homeostasis. However, ER-late endosome/lysosome contact sites are maintained in SNX14(KO) cells, indicating that it is not a prerequisite for ER-endolysosomal tethering. Further investigation of SNX14-deficiency indicates general defects in neutral lipid metabolism. SNX14(KO) cells display distinct perinuclear accumulation of filipin in LAMP1-positive lysosomal structures indicating cholesterol accumulation. Consistent with this, SNX14(KO) cells display a slight but detectable decrease in cholesterol ester levels, which is exacerbated with U18666A. Finally, SNX14 associates with ER-derived lipid droplets (LD) following oleate treatment, indicating a role in ER-LD crosstalk. We therefore identify an important role for SNX14 in neutral lipid homeostasis between the ER, lysosomes and LDs that may provide an early intervention target to alleviate the clinical symptoms of SCAR20.

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