Evidence for splice transcript variants of TMEM165, a gene involved in CDG

Marie-Ange Krzewinski-Recchi1, Sven Potelle1, Anne-Marie Mir1

  • 1Univ. Lille, CNRS, UMR 8576 - UGSF - Unité de Glycobiologie Structurale et Fonctionnelle, F 59000 Lille, France.

Abstract

Insights

Defects in the TMEM165 gene cause a rare disorder impacting glycosylation. This study identifies TMEM165 splice variants, Short-Form (SF) and Long-Form (LF) proteins, with distinct cellular localizations and glycosylation effects.

Area of Science:

  • Molecular Biology
  • Genetics
  • Biochemistry

Background:

  • Defects in the TMEM165 gene are linked to Type-II Congenital Disorder of Glycosylation, impacting Golgi processes.
  • TMEM165 protein, a conserved Ca2+/H+ antiporter, is crucial for Ca2+ and pH homeostasis, primarily in the Golgi apparatus.
  • Patient symptoms include psychomotor retardation, osteoporosis, scoliosis, and bone abnormalities.

Purpose of the Study:

  • To investigate the existence and functional implications of TMEM165 splice variants.
  • To characterize the localization and effects of different TMEM165 protein isoforms on glycosylation.

Main Methods:

  • Reverse Transcription Polymerase Chain Reaction (RT-PCR) and quantitative RT-PCR (RT-Q-PCR) were used to analyze TMEM165 splice-transcript variants and mRNA expression in human brain tissues.
  • Expression plasmids were utilized to visualize subcellular localization of TMEM165 isoforms.
  • Glycosylation function was assessed by analyzing the gel mobility of highly glycosylated proteins in cells overexpressing TMEM165 isoforms.

Main Results:

  • The study identified TMEM165 splice-transcript isoforms, specifically Short-Form (SF) and Long-Form (LF) proteins (129 aa and 259 aa, respectively).
  • Both SF and LF isoforms localize to the endoplasmic reticulum and exhibit differential effects on glycosylation compared to the wild-type TMEM165 protein (324 aa).
  • SF is expressed at low levels in most tissues but is abundant in the brain, forming homodimers, while LF is exclusively found in the temporal lobe.

Conclusions:

  • The discovery of multiple TMEM165 splice variants suggests a family of isoforms.
  • These TMEM165 isoforms may play a role in the fine-tuning of TMEM165 protein functions and cellular localization.
  • Understanding these isoforms is critical for deciphering the molecular mechanisms underlying TMEM165-related disorders.

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