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ATF4-dependent increase in mitochondrial-endoplasmic reticulum tethering following OPA1 deletion in skeletal muscle.

Publication ,  Journal Article
Hinton, A; Katti, P; Mungai, M; Hall, DD; Koval, O; Shao, J; Vue, Z; Lopez, EG; Rostami, R; Neikirk, K; Ponce, J; Streeter, J; Schickling, B ...
Published in: J Cell Physiol
April 2024

Mitochondria and endoplasmic reticulum (ER) contact sites (MERCs) are protein- and lipid-enriched hubs that mediate interorganellar communication by contributing to the dynamic transfer of Ca2+, lipid, and other metabolites between these organelles. Defective MERCs are associated with cellular oxidative stress, neurodegenerative disease, and cardiac and skeletal muscle pathology via mechanisms that are poorly understood. We previously demonstrated that skeletal muscle-specific knockdown (KD) of the mitochondrial fusion mediator optic atrophy 1 (OPA1) induced ER stress and correlated with an induction of Mitofusin-2, a known MERC protein. In the present study, we tested the hypothesis that Opa1 downregulation in skeletal muscle cells alters MERC formation by evaluating multiple myocyte systems, including from mice and Drosophila, and in primary myotubes. Our results revealed that OPA1 deficiency induced tighter and more frequent MERCs in concert with a greater abundance of MERC proteins involved in calcium exchange. Additionally, loss of OPA1 increased the expression of activating transcription factor 4 (ATF4), an integrated stress response (ISR) pathway effector. Reducing Atf4 expression prevented the OPA1-loss-induced tightening of MERC structures. OPA1 reduction was associated with decreased mitochondrial and sarcoplasmic reticulum, a specialized form of ER, calcium, which was reversed following ATF4 repression. These data suggest that mitochondrial stress, induced by OPA1 deficiency, regulates skeletal muscle MERC formation in an ATF4-dependent manner.

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Published In

J Cell Physiol

DOI

EISSN

1097-4652

Publication Date

April 2024

Volume

239

Issue

4

Start / End Page

e31204

Location

United States

Related Subject Headings

  • Neurodegenerative Diseases
  • Muscle, Skeletal
  • Mitochondria
  • Mice, Inbred C57BL
  • Mice
  • Male
  • Lipids
  • GTP Phosphohydrolases
  • Endoplasmic Reticulum Stress
  • Endoplasmic Reticulum
 

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Hinton, A., Katti, P., Mungai, M., Hall, D. D., Koval, O., Shao, J., … Abel, E. D. (2024). ATF4-dependent increase in mitochondrial-endoplasmic reticulum tethering following OPA1 deletion in skeletal muscle. J Cell Physiol, 239(4), e31204. https://doi.org/10.1002/jcp.31204
Hinton, Antentor, Prasanna Katti, Margaret Mungai, Duane D. Hall, Olha Koval, Jianqiang Shao, Zer Vue, et al. “ATF4-dependent increase in mitochondrial-endoplasmic reticulum tethering following OPA1 deletion in skeletal muscle.J Cell Physiol 239, no. 4 (April 2024): e31204. https://doi.org/10.1002/jcp.31204.
Hinton A, Katti P, Mungai M, Hall DD, Koval O, Shao J, et al. ATF4-dependent increase in mitochondrial-endoplasmic reticulum tethering following OPA1 deletion in skeletal muscle. J Cell Physiol. 2024 Apr;239(4):e31204.
Hinton, Antentor, et al. “ATF4-dependent increase in mitochondrial-endoplasmic reticulum tethering following OPA1 deletion in skeletal muscle.J Cell Physiol, vol. 239, no. 4, Apr. 2024, p. e31204. Pubmed, doi:10.1002/jcp.31204.
Hinton A, Katti P, Mungai M, Hall DD, Koval O, Shao J, Vue Z, Lopez EG, Rostami R, Neikirk K, Ponce J, Streeter J, Schickling B, Bacevac S, Grueter C, Marshall A, Beasley HK, Do Koo Y, Bodine SC, Nava NGR, Quintana AM, Song L-S, Grumbach IM, Pereira RO, Glancy B, Abel ED. ATF4-dependent increase in mitochondrial-endoplasmic reticulum tethering following OPA1 deletion in skeletal muscle. J Cell Physiol. 2024 Apr;239(4):e31204.
Journal cover image

Published In

J Cell Physiol

DOI

EISSN

1097-4652

Publication Date

April 2024

Volume

239

Issue

4

Start / End Page

e31204

Location

United States

Related Subject Headings

  • Neurodegenerative Diseases
  • Muscle, Skeletal
  • Mitochondria
  • Mice, Inbred C57BL
  • Mice
  • Male
  • Lipids
  • GTP Phosphohydrolases
  • Endoplasmic Reticulum Stress
  • Endoplasmic Reticulum