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Updated: May 26, 2026

Assessment of Open Probability of the Mitochondrial Permeability Transition Pore in the Setting of Coenzyme Q Excess
Published on: June 1, 2022
MAP4 mechanism that stabilizes mitochondrial permeability transition in hypoxia: microtubule enhancement and DYNLT1
Ya-dong Fang1, Xue Xu, Yong-ming Dang
1State Key Laboratory for Trauma, Burn and Combined Injury, Institute of Burn Research, Southwest Hospital, Third Military Medical University, Chongqing, China.
Abstract:
Mitochondrial membrane permeability has received considerable attention recently because of its key role in apoptosis and necrosis induced by physiological events such as hypoxia. The manner in which mitochondria interact with other molecules to regulate mitochondrial permeability and cell destiny remains elusive. Previously we verified that hypoxia-induced phosphorylation of microtubule-associated protein 4 (MAP4) could lead to microtubules (MTs) disruption. In this study, we established the hypoxic (1% O(2)) cell models of rat cardiomyocytes, H9c2 and HeLa cells to further test MAP4 function. We demonstrated that increase in the pool of MAP4 could promote the stabilization of MT networks by increasing the synthesis and polymerization of tubulin in hypoxia. Results showed MAP4 overexpression could enhance cell viability and ATP content under hypoxic conditions. Subsequently we employed a yeast two-hybrid system to tag a protein interacting with mitochondria, dynein light chain Tctex-type 1 (DYNLT1), by hVDAC1 bait. We confirmed that DYNLT1 had protein-protein interactions with voltage-dependent anion channel 1 (VDAC1) using co-immunoprecipitation; and immunofluorescence technique showed that DYNLT1 was closely associated with MTs and VDAC1. Furthermore, DYNLT1 interactions with MAP4 were explored using a knockdown technique. We thus propose two possible mechanisms triggered by MAP4: (1) stabilization of MT networks, (2) DYNLT1 modulation, which is connected with VDAC1, and inhibition of hypoxia-induced mitochondrial permeabilization.
Insights
Microtubule-associated protein 4 (MAP4) stabilizes microtubules, enhancing cell survival during hypoxia. MAP4 also modulates dynein light chain Tctex-type 1 (DYNLT1) interactions with VDAC1, inhibiting mitochondrial permeabilization.
Area of Science:
- Cell Biology
- Mitochondrial Biology
- Hypoxia Research
Background:
- Mitochondrial membrane permeability is critical in apoptosis and necrosis during hypoxia.
- The regulation of mitochondrial permeability and cell fate by molecular interactions is not fully understood.
- Hypoxia-induced phosphorylation of microtubule-associated protein 4 (MAP4) can disrupt microtubules (MTs).
Purpose of the Study:
- To investigate the role of MAP4 in cellular response to hypoxia.
- To elucidate the molecular mechanisms underlying MAP4's function in hypoxic conditions.
- To identify proteins interacting with MAP4 and mitochondria.
Main Methods:
- Established hypoxic cell models (H9c2, HeLa cells) with 1% O(2).
- Utilized yeast two-hybrid system, co-immunoprecipitation, and immunofluorescence.
- Employed MAP4 overexpression and knockdown techniques.
Main Results:
- MAP4 overexpression stabilized MT networks by increasing tubulin synthesis and polymerization under hypoxia.
- MAP4 overexpression enhanced cell viability and ATP content in hypoxic conditions.
- Identified dynein light chain Tctex-type 1 (DYNLT1) as a mitochondrial-interacting protein associated with MTs and VDAC1, interacting with MAP4.
Conclusions:
- MAP4 plays a protective role in hypoxia through MT stabilization and enhanced cell viability.
- MAP4 influences mitochondrial permeability via modulation of the DYNLT1-VDAC1 complex.
- Proposed mechanisms involve MAP4-mediated MT stabilization and DYNLT1 modulation to inhibit hypoxia-induced mitochondrial permeabilization.
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