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Published on: January 7, 2022
Role of Magmas in protein transport and human mitochondria biogenesis
Devanjan Sinha1, Neha Joshi, Balasubramanyam Chittoor
1Department of Biochemistry, Indian Institute of Science, Bangalore, Karnataka, India.
Abstract:
Magmas, a conserved mammalian protein essential for eukaryotic development, is overexpressed in prostate carcinomas and cells exposed to granulocyte-macrophage colony-stimulating factor (GM-CSF). Reduced Magmas expression resulted in decreased proliferative rates in cultured cells. However, the cellular function of Magmas is still elusive. In this report, we have showed that human Magmas is an ortholog of Saccharomyces cerevisiae Pam16 having similar functions and is critical for protein translocation across mitochondrial inner membrane. Human Magmas shows a complete growth complementation of Deltapam16 yeast cells at all temperatures. On the basis of our analysis, we report that Magmas localizes into mitochondria and is peripherally associated with inner mitochondrial membrane in yeast and humans. Magmas forms a stable subcomplex with J-protein Pam18 or DnaJC19 through its C-terminal region and is tethered to TIM23 complex of yeast and humans. Importantly, amino acid alterations in Magmas leads to reduced stability of the subcomplex with Pam18 that results in temperature sensitivity and in vivo protein translocation defects in yeast cells. These observations highlight the central role of Magmas in protein import and mitochondria biogenesis. In humans, absence of a functional DnaJC19 leads to dilated cardiac myophathic syndrome (DCM), a genetic disorder with characteristic features of cardiac myophathy and neurodegeneration. We propose that the mutations resulting in decreased stability of functional Magmas:DnaJC19 subcomplex at human TIM23 channel leads to impaired protein import and cellular respiration in DCM patients. Together, we propose a model showing how Magmas:DnaJC19 subcomplex is associated with TIM23 complex and thus regulates mitochondrial import process.
Insights
Magmas protein is crucial for mitochondrial protein import and biogenesis. Its dysfunction, particularly the Magmas:DnaJC19 subcomplex, is linked to dilated cardiomyopathy and neurodegeneration in humans.
Area of Science:
- Mitochondrial biology
- Molecular genetics
- Cellular biogenesis
Background:
- Magmas is an essential mammalian protein implicated in development and overexpressed in prostate cancer.
- Its precise cellular function remained largely unknown despite its known roles.
- Reduced Magmas expression correlates with decreased cellular proliferation.
Purpose of the Study:
- To elucidate the cellular function of human Magmas.
- To investigate Magmas' role in protein translocation across the mitochondrial inner membrane.
- To explore the link between Magmas dysfunction and human genetic disorders.
Main Methods:
- Functional complementation of yeast Deltapam16 cells with human Magmas.
- Localization studies of Magmas in mitochondria using yeast and human cells.
- Analysis of Magmas subcomplex formation with Pam18 and DnaJC19.
- Investigating the impact of Magmas mutations on subcomplex stability and protein import.
Main Results:
- Human Magmas is an ortholog of yeast Pam16 and is critical for mitochondrial protein import.
- Magmas localizes to the inner mitochondrial membrane and forms a stable complex with Pam18/DnaJC19, tethered to the TIM23 complex.
- Magmas mutations destabilize the Magmas:Pam18 subcomplex, causing temperature sensitivity and protein translocation defects.
- Dysfunction of the Magmas:DnaJC19 subcomplex is proposed to underlie protein import defects in dilated cardiomyopathy.
Conclusions:
- Magmas plays a central role in mitochondrial protein import and biogenesis.
- The Magmas:DnaJC19 subcomplex is essential for the integrity and function of the TIM23 translocon.
- Impaired Magmas:DnaJC19 function may contribute to the pathogenesis of dilated cardiomyopathy and neurodegeneration.
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