Manganese-induced turnover of TMEM165

Sven Potelle1, Eudoxie Dulary1, Leslie Climer2

  • 1CNRS, UMR 8576 - UGSF - Unité de Glycobiologie Structurale et Fonctionnelle, Université de Lille, Lille F-59000, France and the LIA GLYCOLAB4CDG France/ Belgium (International Associated Laboratory "Laboratory for the Research on Congenital Disorders of Glycosylation - from cellular mechanisms to cure").

Insights

TMEM165 protein levels decrease with high manganese, impacting Golgi glycosylation in congenital disorders of glycosylation (CDG). A specific mutation (E108G) prevents this degradation, suggesting a key role for this residue in manganese sensitivity.

Area of Science:

  • Cell Biology
  • Molecular Biology
  • Biochemistry

Background:

  • Congenital disorders of glycosylation (CDG) are inherited diseases affecting protein glycosylation.
  • TMEM165 deficiency causes a CDG subtype linked to disrupted Golgi manganese homeostasis.
  • Manganese (Mn2+) supplementation can rescue glycosylation defects in TMEM165-deficient cells.

Purpose of the Study:

  • To investigate TMEM165's role as a manganese-sensitive Golgi protein.
  • To analyze the impact of manganese exposure on TMEM165 stability and function.
  • To characterize the functional consequences of TMEM165 mutations found in CDG patients.

Main Methods:

  • Cellular exposure to varying manganese concentrations.
  • Analysis of TMEM165 protein levels and localization via degradation assays.
  • Functional assessment of glycosylation in cells expressing wild-type and mutant TMEM165.
  • Mutation analysis of TMEM165 variants (R126H and E108G).

Main Results:

  • TMEM165 is identified as a novel Golgi protein sensitive to manganese.
  • High manganese concentrations induce lysosomal degradation of TMEM165.
  • The TMEM165-CDG variant E108G is insensitive to manganese-induced degradation.
  • The E108G mutation does not impair TMEM165's function in Golgi glycosylation.

Conclusions:

  • TMEM165 is a manganese-sensitive Golgi protein crucial for cellular manganese homeostasis.
  • The glutamic acid at position 108 (E108) within the cytosolic ELGDK motif is critical for manganese-induced TMEM165 degradation.
  • The E108G mutation confers resistance to manganese-induced degradation without abolishing TMEM165's glycosylation function, offering insights into TMEM165-CDG pathogenesis.

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