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Insights into molecular and cellular functions of the Golgi calcium/manganese-proton antiporter TMEM165
Stanislovas S Jankauskas1, Fahimeh Varzideh1, Urna Kansakar1
1Department of Medicine, Wilf Family Cardiovascular Research Institute, Einstein-Mount Sinai Diabetes Research Center (ES-DRC), Albert Einstein College of Medicine, New York City, New York, USA.
Abstract:
The Golgi compartment performs a number of crucial roles in the cell. However, the exact molecular mechanisms underlying these actions are not fully defined. Pathogenic mutations in genes encoding Golgi proteins may serve as an important source for expanding our knowledge. For instance, mutations in the gene encoding Transmembrane protein 165 (TMEM165) were discovered as a cause of a new type of congenital disorder of glycosylation (CDG). Comprehensive studies of TMEM165 in different model systems, including mammals, yeast, and fish uncovered the new realm of Mn2+ homeostasis regulation. TMEM165 was shown to act as a Ca2+/Mn2+:H+ antiporter in the medial- and trans-Golgi network, pumping the metal ions into the Golgi lumen and protons outside. Disruption of TMEM165 antiporter activity results in defects in N- and O-glycosylation of proteins and glycosylation of lipids. Impaired glycosylation of TMEM165-CDG arises from a lack of Mn2+ within the Golgi. Nevertheless, Mn2+ insufficiency in the Golgi is compensated by the activity of the ATPase SERCA2. TMEM165 turnover has also been found to be regulated by Mn2+ cytosolic concentration. Besides causing CDG, recent investigations have demonstrated the functional involvement of TMEM165 in several other pathologies including cancer and mental health disorders. This systematic review summarizes the available information on TMEM165 molecular structure, cellular function, and its roles in health and disease.
Insights
Transmembrane protein 165 (TMEM165) regulates manganese (Mn2+) homeostasis in the Golgi, crucial for protein glycosylation. Mutations cause TMEM165-CDG, impacting health and disease.
Area of Science:
- Cell Biology
- Molecular Biology
- Biochemistry
Background:
- The Golgi apparatus is vital for cellular functions, but its molecular mechanisms are not fully understood.
- Mutations in Golgi protein genes offer insights into cellular processes.
- Transmembrane protein 165 (TMEM165) mutations cause a congenital disorder of glycosylation (CDG).
Purpose of the Study:
- To review the molecular structure, cellular function, and disease relevance of TMEM165.
- To elucidate TMEM165's role in Mn2+ homeostasis and glycosylation.
- To summarize TMEM165's involvement in CDG, cancer, and mental health disorders.
Main Methods:
- Systematic review of existing literature on TMEM165.
- Analysis of studies in model systems (mammals, yeast, fish).
- Investigation of TMEM165's function as a Ca2+/Mn2+:H+ antiporter.
Main Results:
- TMEM165 functions as a Ca2+/Mn2+:H+ antiporter in the Golgi, regulating Mn2+ homeostasis.
- Disruption of TMEM165 leads to impaired protein and lipid glycosylation.
- Mn2+ deficiency in the Golgi is partially compensated by SERCA2 activity.
- TMEM165 turnover is influenced by cytosolic Mn2+ levels.
Conclusions:
- TMEM165 is essential for proper glycosylation and Mn2+ homeostasis within the Golgi.
- Dysfunctional TMEM165 is linked to TMEM165-CDG and potentially cancer and mental health disorders.
- Further research on TMEM165 is crucial for understanding its multifaceted roles in health and disease.
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