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Published on: August 20, 2019
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.
Background:
Defects in TMEM165 gene cause a type-II Congenital Disorder of Glycosylation affecting Golgi glycosylation processes. TMEM165 patients exhibit psychomotor retardation, important osteoporosis, scoliosis, irregular epiphyses and thin bone cortex. TMEM165 protein is highly conserved in evolution and belongs to the family of UPF0016 membrane proteins which could be an unique group of Ca2+/H+ antiporters regulating Ca2+ and pH homeostasis and mainly localized in the Golgi apparatus.
Methods:
RT-PCR from human brain tissues revealed TMEM165 splice-transcript variants. mRNA expression was analyzed by RT-Q-PCR. Expression plasmids allowed us to visualize isoform proteins and their subcellular localization. Their functions on glycosylation were achieved by looking at the gel mobility of highly glycosylated proteins in cells overexpressing isoforms.
Results:
In this study, we highlight, as previously shown for other ion channels, the existence of TMEM165 splice-transcripts isoforms, in particular the Short-Form (SF) and the Long-Form (LF) transcripts, leading to a 129 aa and 259 aa protein isoform, respectively. These proteins both localize in the endoplasmic reticulum and have different effects on glycosylation compared to the wild-type protein (324 aa). We also point out that the SF is expressed at low levels in all human cells and tissues checked, excepted in brain, and forms homodimer. The LF was only expressed in the temporal lobe of human brain.
General Significance:
The finding of numerous splice variants could lead to a family of TMEM165 isoforms. This family of TMEM165 splice transcripts could participate in the fine regulation of TMEM165 isoforms' functions and localizations.
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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