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Phosphorylation of DYNLT1 at serine 82 regulates microtubule stability and mitochondrial permeabilization in hypoxia
Xue Xu1, Qiong Zhang, Jiong-yu Hu
1School of Nursing, The Third Military Medical University, Chongqing, China.
Abstract:
Hypoxia-induced microtubule disruption and mitochondrial permeability transition (mPT) are crucial events leading to fatal cell damage and recent studies showed that microtubules (MTs) are involved in the modulation of mitochondrial function. Dynein light chain Tctex-type 1 (DYNLT1) is thought to be associated with MTs and mitochondria. Previously we demonstrated that DYNLT1 knockdown aggravates hypoxia-induced mitochondrial permeabilization, which indicates a role of DYNLT1 in hypoxic cytoprotection. But the underlying regulatory mechanism of DYNLT1 remains illusive. Here we aimed to investigate the phosphorylation alteration of DYNLT1 at serine 82 (S82) in hypoxia (1% O2). We therefore constructed recombinant adenoviruses to generate S82E and S82A mutants, used to transfect H9c2 and HeLa cell lines. Development of hypoxia-induced mPT (MMP examining, Cyt c release and mPT pore opening assay), hypoxic energy metabolism (cellular viability and ATP quantification), and stability of MTs were examined. Our results showed that phosph-S82 (S82-P) expression was increased in early hypoxia; S82E mutation (phosphomimic) aggravated mitochondrial damage, elevated the free tubulin in cytoplasm and decreased the cellular viability; S82A mutation (dephosphomimic) seemed to diminish the hypoxia-induced injury. These data suggest that DYNLT1 phosphorylation at S82 is involved in MTs and mitochondria regulation, and their interaction and cooperation contribute to the cellular hypoxic tolerance. Thus, we provide new insights into a DYNLT1 mechanism in stabilizing MTs and mitochondria, and propose a potential therapeutic target for hypoxia cytoprotective studies.
Insights
Dynein light chain Tctex-type 1 (DYNLT1) phosphorylation at serine 82 protects cells during hypoxia. This mechanism stabilizes microtubules and mitochondria, offering a potential therapeutic target for hypoxia-induced cell damage.
Area of Science:
- Cell Biology
- Molecular Biology
- Biochemistry
Background:
- Hypoxia causes cell damage through microtubule disruption and mitochondrial permeability transition (mPT).
- Microtubules (MTs) modulate mitochondrial function, and Dynein light chain Tctex-type 1 (DYNLT1) interacts with both.
- Previous studies suggest DYNLT1 plays a cytoprotective role during hypoxia, but its regulatory mechanism is unclear.
Purpose of the Study:
- To investigate the role of DYNLT1 phosphorylation at serine 82 (S82) in cellular response to hypoxia.
- To elucidate the mechanism by which DYNLT1 regulates microtubule and mitochondrial stability under hypoxic conditions.
Main Methods:
- Constructed recombinant adenoviruses for S82E (phosphomimic) and S82A (dephosphomimic) DYNLT1 mutants.
- Transfected H9c2 and HeLa cell lines with DYNLT1 mutants.
- Assessed hypoxia-induced mPT, mitochondrial membrane potential (MMP), cytochrome c release, mPT pore opening, cellular viability, ATP levels, and MT stability.
Main Results:
- Phosphorylation of DYNLT1 at S82 (S82-P) increased during early hypoxia.
- S82E mutation aggravated mitochondrial damage, increased cytoplasmic free tubulin, and reduced cellular viability.
- S82A mutation appeared to mitigate hypoxia-induced cellular injury.
Conclusions:
- DYNLT1 phosphorylation at S82 is a critical regulator of microtubule and mitochondrial function during hypoxia.
- This phosphorylation event contributes to cellular tolerance against hypoxic stress by stabilizing MTs and mitochondria.
- Targeting DYNLT1 phosphorylation presents a potential therapeutic strategy for mitigating hypoxia-induced cell damage.
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