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Updated: May 3, 2026

Assessment of Mitochondrial Fission/Fusion Dynamics in Kidney Proximal Tubular Cells
Published on: November 14, 2025
A role for myosin II in mammalian mitochondrial fission
Farida Korobova1, Timothy J Gauvin1, Henry N Higgs1
1Department of Biochemistry, Geisel School of Medicine at Dartmouth, Hanover, NH 03755, USA.
Abstract:
Mitochondria are dynamic organelles, undergoing both fission and fusion regularly in interphase cells. Mitochondrial fission is thought to be part of a quality-control mechanism whereby damaged mitochondrial components are segregated from healthy components in an individual mitochondrion, followed by mitochondrial fission and degradation of the damaged daughter mitochondrion. Fission also plays a role in apoptosis. Defects in mitochondrial dynamics can lead to neurodegenerative diseases such as Alzheimer's disease. Mitochondrial fission requires the dynamin GTPase Drp1, which assembles in a ring around the mitochondrion and appears to constrict both outer and inner mitochondrial membranes. However, mechanisms controlling Drp1 assembly on mammalian mitochondria are unclear. Recent results show that actin polymerization, driven by the endoplasmic reticulum-bound formin protein INF2, stimulates Drp1 assembly at fission sites. Here, we show that myosin II also plays a role in fission. Chemical inhibition by blebbistatin or small interfering RNA (siRNA)-mediated suppression of myosin IIA or myosin IIB causes an increase in mitochondrial length in both control cells and cells expressing constitutively active INF2. Active myosin II accumulates in puncta on mitochondria in an actin- and INF2-dependent manner. In addition, myosin II inhibition decreases Drp1 association with mitochondria. Based on these results, we propose a mechanistic model in which INF2-mediated actin polymerization leads to myosin II recruitment and constriction at the fission site, enhancing subsequent Drp1 accumulation and fission.
Insights
Myosin II and actin polymerization, driven by INF2, are crucial for mitochondrial fission. This process enhances the assembly of Drp1, a key protein in regulating mitochondrial dynamics and preventing neurodegenerative diseases.
Area of Science:
- Cell Biology
- Molecular Biology
- Biochemistry
Background:
- Mitochondrial fission is essential for cellular health and quality control.
- Defects in mitochondrial dynamics are linked to neurodegenerative diseases like Alzheimer's.
- The protein Drp1 mediates mitochondrial fission, but its assembly mechanisms are not fully understood.
Purpose of the Study:
- To investigate the role of myosin II in mitochondrial fission.
- To elucidate the interplay between actin, INF2, myosin II, and Drp1 in regulating mitochondrial dynamics.
Main Methods:
- Inhibition of myosin II using blebbistatin or siRNA.
- Expression of constitutively active INF2.
- Confocal microscopy to observe mitochondrial morphology and protein localization.
- Assessment of Drp1 association with mitochondria.
Main Results:
- Myosin II inhibition or suppression leads to longer mitochondria, indicating impaired fission.
- Active myosin II localizes to mitochondria in an actin- and INF2-dependent manner.
- Myosin II inhibition reduces Drp1 recruitment to mitochondria.
Conclusions:
- Myosin II acts as a crucial component in the mitochondrial fission machinery.
- INF2-driven actin polymerization recruits myosin II, which constricts the mitochondrion, facilitating Drp1 assembly and fission.
- This pathway is vital for maintaining mitochondrial dynamics and cellular health.
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