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Updated: May 1, 2026

Understanding the Changes in Mitochondrial Morphology through Dynamic and Three-dimensional Fluorescence Micrographs
Published on: August 15, 2025
Changes in the mitochondrial network during ectromelia virus infection of permissive L929 cells
Karolina P Gregorczyk1, Lidia Szulc-Dąbrowska1, Zbigniew Wyżewski1
1Division of Immunology, Department of Preclinical Sciences, Faculty of Veterinary Medicine, Warsaw University of Life Sciences - SGGW, Warszawa, Poland.
Abstract:
Mitochondria are extremely important organelles in the life of a cell. Recent studies indicate that mitochondria also play a fundamental role in the cellular innate immune mechanisms against viral infections. Moreover, mitochondria are able to alter their shape continuously through fusion and fission. These tightly regulated processes are activated or inhibited under physiological or pathological (e.g. viral infection) conditions to help restore homeostasis. However, many types of viruses, such as orthopoxviruses, have developed various strategies to evade the mitochondrial-mediated antiviral innate immune responses. Moreover, orthopoxviruses exploit the mitochondria for their survival. Such viral activity has been reported during vaccinia virus (VACV) infection. Our study shows that the Moscow strain of ectromelia virus (ECTV-MOS), an orthopoxvirus, alters the mitochondrial network in permissive L929 cells. Upon infection, the branching structure of the mitochondrial network collapses and becomes disorganized followed by destruction of mitochondrial tubules during the late stage of infection. Small, discrete mitochondria co-localize with progeny virions, close to the cell membrane. Furthermore, clustering of mitochondria is observed around viral factories, particularly between the nucleus and viroplasm. Our findings suggest that ECTV-MOS modulates mitochondrial cellular distribution during later stages of the replication cycle, probably enabling viral replication and/or assembly as well as transport of progeny virions inside the cell. However, this requires further investigation.
Insights
Ectromelia virus (ECTV-MOS) infection disrupts the mitochondrial network in cells. The virus reorganizes mitochondria, potentially aiding viral replication and spread.
Area of Science:
- Cell Biology
- Virology
- Immunology
Background:
- Mitochondria are vital organelles involved in cellular energy production and innate immune responses.
- Viral infections can disrupt mitochondrial dynamics (fusion and fission), impacting cellular homeostasis.
- Orthopoxviruses, including vaccinia virus (VACV), have evolved mechanisms to evade or exploit mitochondrial antiviral functions.
Purpose of the Study:
- To investigate the impact of ectromelia virus (ECTV-MOS) infection on mitochondrial morphology and distribution in permissive cells.
- To understand how ECTV-MOS manipulates the host cell's mitochondrial network during infection.
Main Methods:
- Infection of L929 cells with ECTV-MOS.
- Microscopy techniques to visualize and analyze mitochondrial network structure and localization.
- Observation of viral factories and progeny virions in relation to mitochondria.
Main Results:
- ECTV-MOS infection caused the collapse and disorganization of the mitochondrial network.
- Mitochondrial tubules were destroyed in the late stages of infection.
- Small, discrete mitochondria were found near progeny virions and viral factories, particularly between the nucleus and viroplasm.
Conclusions:
- ECTV-MOS significantly alters mitochondrial distribution within infected cells.
- These mitochondrial changes likely facilitate viral replication, assembly, and/or transport of new virions.
- Further research is needed to fully elucidate the mechanisms of ECTV-MOS-mediated mitochondrial modulation.

