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Updated: Jun 15, 2025

Study of Endoplasmic Reticulum and Mitochondria Interactions by In Situ Proximity Ligation Assay in Fixed Cells
Published on: December 10, 2016
Infection-induced peripheral mitochondria fission drives ER encapsulations and inter-mitochondria contacts that
William A Hofstadter1, Katelyn C Cook1, Elene Tsopurashvili1
1Department of Molecular Biology, Princeton University, Princeton, NJ, USA.
Abstract:
The dynamic regulation of mitochondria shape via fission and fusion is critical for cellular responses to stimuli. In homeostatic cells, two modes of mitochondrial fission, midzone and peripheral, provide a decision fork between either proliferation or clearance of mitochondria. However, the relationship between specific mitochondria shapes and functions remains unclear in many biological contexts. While commonly associated with decreased bioenergetics, fragmented mitochondria paradoxically exhibit elevated respiration in several disease states, including infection with the prevalent pathogen human cytomegalovirus (HCMV) and metastatic melanoma. Here, incorporating super-resolution microscopy with mass spectrometry and metabolic assays, we use HCMV infection to establish a molecular mechanism for maintaining respiration within a fragmented mitochondria population. We establish that HCMV induces fragmentation through peripheral mitochondrial fission coupled with suppression of mitochondria fusion. Unlike uninfected cells, the progeny of peripheral fission enter mitochondria-ER encapsulations (MENCs) where they are protected from degradation and bioenergetically stabilized during infection. MENCs also stabilize pro-viral inter-mitochondria contacts (IMCs), which electrochemically link mitochondria and promote respiration. Demonstrating a broader relevance, we show that the fragmented mitochondria within metastatic melanoma cells also form MENCs. Our findings establish a mechanism where mitochondria fragmentation can promote increased respiration, a feature relevant in the context of human diseases.
Insights
Mitochondria fragmentation, often linked to poor energy production, can actually boost respiration in diseases like HCMV infection and melanoma. This study reveals how fragmented mitochondria are protected and stabilized, maintaining high respiration rates.
Area of Science:
- Cell Biology
- Mitochondrial Dynamics
- Pathogen-Host Interactions
Background:
- Mitochondrial fission and fusion dynamically regulate mitochondrial shape and cellular responses.
- Mitochondrial fragmentation is typically associated with decreased cellular energy production.
- However, fragmented mitochondria show increased respiration in certain diseases, such as human cytomegalovirus (HCMV) infection and metastatic melanoma.
Purpose of the Study:
- To elucidate the molecular mechanisms maintaining respiration in fragmented mitochondria during HCMV infection.
- To investigate the role of mitochondria-ER encapsulations (MENCs) in stabilizing fragmented mitochondria.
- To explore the broader relevance of these findings in other diseases, like metastatic melanoma.
Main Methods:
- Super-resolution microscopy
- Mass spectrometry
- Metabolic assays
- HCMV infection model
Main Results:
- HCMV infection induces mitochondrial fragmentation via peripheral fission and suppressed fusion.
- Fragmented mitochondria are encapsulated in MENCs, preventing degradation and stabilizing bioenergetics.
- MENCs protect and stabilize inter-mitochondria contacts (IMCs), promoting respiration.
- Metastatic melanoma cells also exhibit fragmented mitochondria within MENCs.
Conclusions:
- Mitochondrial fragmentation can promote increased respiration through MENC-mediated stabilization.
- This mechanism is crucial for maintaining cellular respiration during HCMV infection.
- The findings highlight a conserved mechanism relevant to human diseases involving mitochondrial dysfunction.
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