Open access · OA
via OpenAlex
Mitofusin 2-Containing Mitochondrial-Reticular Microdomains Direct Rapid Cardiomyocyte Bioenergetic Responses Via Interorganelle Ca <sup>2+</sup> Crosstalk
Yun Chen, György Csordás, Casey C. Jowdy, Timothy Schneider, Norbert Csordás, Wei Wang, Yingqiu Liu, Michael Kohlhaas, Maxie Meiser, Stefanie Bergem, Jeanne M. Nerbonne, Gerald W. Dorn, Christoph Maack
Circulation Research · 2012 · ▲ 337 citations
Abstract
RATIONALE: Mitochondrial Ca(2+) uptake is essential for the bioenergetic feedback response through stimulation of Krebs cycle dehydrogenases. Close association of mitochondria to the sarcoplasmic reticulum (SR) may explain efficient mitochondrial Ca(2+) uptake despite low Ca(2+) affinity of the mitochondrial Ca(2+) uniporter. However, the existence of such mitochondrial Ca(2+) microdomains and their functional role are presently unresolved. Mitofusin (Mfn) 1 and 2 mediate mitochondrial outer membrane fusion, whereas Mfn2 but not Mfn1 tethers endoplasmic reticulum to mitochondria in noncardiac cells. OBJECTIVE: To elucidate roles for Mfn1 and 2 in SR-mitochondrial tethering, Ca(2+) signaling, and bioenergetic regulation in cardiac myocytes. METHODS AND RESULTS: Fruit fly heart tubes deficient of the Drosophila Mfn ortholog MARF had increased contraction-associated and caffeine-sensitive Ca(2+) release, suggesting a role for Mfn in SR Ca(2+) handling. Whereas cardiac-specific Mfn1 ablation had no effects on murine heart function or Ca(2+) cycling, Mfn2 deficiency decreased cardiomyocyte SR-mitochondrial contact length by 30% and reduced the content of SR-associated proteins in mitochondria-associated membranes. This was associated with decreased mitochondrial Ca(2+) uptake (despite unchanged mitochondrial membrane potential) but increased steady-state and caffeine-induced SR Ca(2+) release. Accordingly, Ca(2+)-induced stimulation of Krebs cycle dehydrogenases during β-adrenergic stimulation was hampered in Mfn2-KO but not Mfn1-KO myocytes, evidenced by oxidation of the redox states of NAD(P)H/NAD(P)(+) and FADH(2)/FAD. CONCLUSIONS: Physical tethering of SR and mitochondria via Mfn2 is essential for normal interorganelle Ca(2+) signaling in the myocardium, consistent with a requirement for SR-mitochondrial Ca(2+) signaling through microdomains in the cardiomyocyte bioenergetic feedback response to physiological stress.
◌ CITATION ONLY
Full text is not openly licensed for redistribution here. Read it at the source:
Provenance
- Source
- OpenAlex
- DOI
- 10.1161/circresaha.112.266585
- Canonical
- link ↗
- Fetched
- 2026-06-10 MST
Cite this
APA
Chen, Y., Csordás, G., Jowdy, C.C., Schneider, T., Csordás, N., Wang, W., Liu, Y., Kohlhaas, M., Meiser, M., Bergem, S., Nerbonne, J.M., Dorn, G.W., & Maack, C. (2012). Mitofusin 2-Containing Mitochondrial-Reticular Microdomains Direct Rapid Cardiomyocyte Bioenergetic Responses Via Interorganelle Ca <sup>2+</sup> Crosstalk. <em>Circulation Research</em>. https://doi.org/10.1161/circresaha.112.266585
Vancouver
Chen Y, Csordás G, Jowdy CC, Schneider T, Csordás N, Wang W, et al. Mitofusin 2-Containing Mitochondrial-Reticular Microdomains Direct Rapid Cardiomyocyte Bioenergetic Responses Via Interorganelle Ca <sup>2+</sup> Crosstalk. Circulation Research. 2012. doi:10.1161/circresaha.112.266585.
BibTeX
@article{yun2012Mitofu,
title = {Mitofusin 2-Containing Mitochondrial-Reticular Microdomains Direct Rapid Cardiomyocyte Bioenergetic Responses Via Interorganelle Ca <sup>2+</sup> Crosstalk},
author = {Yun Chen and György Csordás and Casey C. Jowdy and Timothy Schneider and Norbert Csordás and Wei Wang and Yingqiu Liu and Michael Kohlhaas and Maxie Meiser and Stefanie Bergem and Jeanne M. Nerbonne and Gerald W. Dorn and Christoph Maack},
journal = {Circulation Research},
year = {2012},
doi = {10.1161/circresaha.112.266585},
}
Research neighborhood
References, citing works, and semantically nearest findings. Click a node to open it.
Related findings
Cell Communication and Signaling 2025
Open access · CC-BY
Mitochondrial dysfunction in the regulation of aging and aging-related diseases
Proceedings of the National Academy of Sciences 2023
Preprint · CC-BY
Exercise preserves physical fitness during aging through AMPK and mitochondrial dynamics
Cell Death and Disease 2018
Open access · CC-BY
Emerging molecular mechanisms in chemotherapy: Ca2+ signaling at the mitochondria-associated endoplasmic reticulum membranes
Frontiers in Cardiovascular Medicine 2025
Open access · CC-BY
Targeting the hallmarks of aging: mechanisms and therapeutic opportunities
Circulation Research 2019
Open access · OA
Fine-Tuning of PGC1α Expression Regulates Cardiac Function and Longevity
The EMBO Journal 2002
Preprint · OA