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.

Plos One
|December 14, 2011
PubMed

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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