The role of Mfn2 in the structure and function of endoplasmic reticulum-mitochondrial tethering in vivo
Song Han1,2, Fanpeng Zhao1, Jeffrey Hsia1
1Department of Pathology, Case Western Reserve University, Cleveland, OH 44106, USA.
Abstract:
Mitochondria-endoplasmic reticulum contacts (MERCs) play an essential role in multiple cell physiological processes. Although Mfn2 was the first protein implicated in the formation of MERCs, there is debate as to whether it acts as a tether or antagonizer, largely based on in vitro studies. To understand the role of Mfn2 in MERCs in vivo, we characterized ultrastructural and biochemical changes of MERCs in pyramidal neurons of hippocampus in Mfn2 conditional knockout mice and in Mfn2 overexpressing mice, and found that Mfn2 ablation caused reduced close contacts, whereas Mfn2 overexpression caused increased close contacts between the endoplasmic reticulum (ER) and mitochondria in vivo. Functional studies on SH-SY5Y cells with Mfn2 knockout or overexpression demonstrating similar biochemical changes found that mitochondrial calcium uptake along with IP3R3-Grp75 interaction was decreased in Mfn2 knockout cells but increased in Mfn2 overexpressing cells. Lastly, we found Mfn2 knockout decreased and Mfn2 overexpression increased the interaction between the ER-mitochondria tethering pair of VAPB-PTPIP51. In conclusion, our study supports the notion that Mfn2 plays a critical role in ER-mitochondrial tethering and the formation of close contacts in neuronal cells in vivo.
Insights
Mitochondria-endoplasmic reticulum contacts (MERCs) are vital for cell function. This study shows Mitofusin 2 (Mfn2) is crucial for tethering ER and mitochondria in vivo, impacting cellular processes.
Area of Science:
- Cell Biology
- Neuroscience
- Mitochondrial Dynamics
Background:
- Mitochondria-endoplasmic reticulum contacts (MERCs) are critical for cellular homeostasis.
- The protein Mitofusin 2 (Mfn2) has been implicated in MERCs, but its in vivo role remains debated.
Purpose of the Study:
- To elucidate the in vivo function of Mfn2 in regulating MERCs in neuronal cells.
- To investigate the impact of Mfn2 modulation on ER-mitochondria tethering and function.
Main Methods:
- Characterization of MERCs in Mfn2 conditional knockout and overexpressing mice hippocampi.
- Biochemical and ultrastructural analysis of MERCs.
- Functional studies in SH-SY5Y cells with altered Mfn2 expression.
Main Results:
- Mfn2 ablation reduced, while Mfn2 overexpression increased, close ER-mitochondria contacts in vivo.
- Mitochondrial calcium uptake and IP3R3-Grp75 interaction were altered by Mfn2 levels.
- Mfn2 modulated the interaction of the VAPB-PTPIP51 tethering complex.
Conclusions:
- Mfn2 is essential for ER-mitochondrial tethering and the formation of MERCs in vivo.
- Mfn2 acts as a positive regulator of MERCs in neuronal cells.
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