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Research Article

Kissing and nanotunneling mediate intermitochondrial communication in the heart

Xiaohu Huang, Lei Sun, Shuangxi Ji, Ting Zhao, Wanrui Zhang, Jiejia Xu, Jue Zhang, Yanru Wang, Xianhua Wang, Clara Franzini-Armstrong, Ming Zheng, and Heping Cheng
  1. aState Key Laboratory of Biomembrane and Membrane Biotechnology, Institute of Molecular Medicine, Peking-Tsinghua Center for Life Sciences, and
  2. cCollege of Engineering, Peking University, Beijing 100871, China;
  3. bCenter for Biological Imaging, Institute of Biophysics, Chinese Academy of Sciences, Beijing 100101, China;
  4. dDepartment of Cell and Developmental Biology, University of Pennsylvania Medical School, Philadelphia, PA 19104-6058; and
  5. eDepartment of Physiology, Health Science Center, Peking University, Beijing 100083, China

See allHide authors and affiliations

PNAS first published February 5, 2013; https://doi.org/10.1073/pnas.1300741110
Xiaohu Huang
aState Key Laboratory of Biomembrane and Membrane Biotechnology, Institute of Molecular Medicine, Peking-Tsinghua Center for Life Sciences, and
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Lei Sun
bCenter for Biological Imaging, Institute of Biophysics, Chinese Academy of Sciences, Beijing 100101, China;
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Shuangxi Ji
cCollege of Engineering, Peking University, Beijing 100871, China;
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Ting Zhao
aState Key Laboratory of Biomembrane and Membrane Biotechnology, Institute of Molecular Medicine, Peking-Tsinghua Center for Life Sciences, and
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Wanrui Zhang
aState Key Laboratory of Biomembrane and Membrane Biotechnology, Institute of Molecular Medicine, Peking-Tsinghua Center for Life Sciences, and
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Jiejia Xu
aState Key Laboratory of Biomembrane and Membrane Biotechnology, Institute of Molecular Medicine, Peking-Tsinghua Center for Life Sciences, and
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Jue Zhang
cCollege of Engineering, Peking University, Beijing 100871, China;
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Yanru Wang
aState Key Laboratory of Biomembrane and Membrane Biotechnology, Institute of Molecular Medicine, Peking-Tsinghua Center for Life Sciences, and
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Xianhua Wang
aState Key Laboratory of Biomembrane and Membrane Biotechnology, Institute of Molecular Medicine, Peking-Tsinghua Center for Life Sciences, and
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Clara Franzini-Armstrong
dDepartment of Cell and Developmental Biology, University of Pennsylvania Medical School, Philadelphia, PA 19104-6058; and
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  • For correspondence: zhengm@pku.edu.cn armstroc@mail.med.upenn.edu
Ming Zheng
aState Key Laboratory of Biomembrane and Membrane Biotechnology, Institute of Molecular Medicine, Peking-Tsinghua Center for Life Sciences, and
eDepartment of Physiology, Health Science Center, Peking University, Beijing 100083, China
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  • For correspondence: zhengm@pku.edu.cn armstroc@mail.med.upenn.edu
Heping Cheng
aState Key Laboratory of Biomembrane and Membrane Biotechnology, Institute of Molecular Medicine, Peking-Tsinghua Center for Life Sciences, and
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  1. Contributed by Clara Franzini-Armstrong, January 15, 2013 (sent for review November 12, 2012)

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Abstract

Mitochondria in many types of cells are dynamically interconnected through constant fusion and fission, allowing for exchange of mitochondrial contents and repair of damaged mitochondria. However, constrained by the myofibril lattice, the ∼6,000 mitochondria in the adult mammalian cardiomyocyte display little motility, and it is unclear how, if at all, they communicate with each other. By means of target-expressing photoactivatable green fluorescent protein (PAGFP) in the mitochondrial matrix or on the outer mitochondrial membrane, we demonstrated that the local PAGFP signal propagated over the entire population of mitochondria in cardiomyocytes on a time scale of ∼10 h. Two elemental steps of intermitochondrial communications were manifested as either a sudden PAGFP transfer between a pair of adjacent mitochondria (i.e., “kissing”) or a dynamic nanotubular tunnel (i.e., “nanotunneling”) between nonadjacent mitochondria. The average content transfer index (fractional exchange) was around 0.5; the rate of kissing was 1‰ s−1 per mitochondrial pair, and that of nanotunneling was about 14 times smaller. Electron microscopy revealed extensive intimate contacts between adjacent mitochondria and elongated nanotubular protrusions, providing a structural basis for the kissing and nanotunneling, respectively. We propose that, through kissing and nanotunneling, the otherwise static mitochondria in a cardiomyocyte form one dynamically continuous network to share content and transfer signals.

  • mitochondrial dynamics
  • nanotubule

Footnotes

  • ↵1To whom correspondence may be addressed. E-mail: zhengm{at}pku.edu.cn or armstroc{at}mail.med.upenn.edu.
  • Author contributions: X.H., M.Z., and H.C. designed research; X.H., L.S., S.J., T.Z., W.Z., J.X., Y.W., X.W., and C.F.-A. performed research; X.H., S.J., J.X., J.Z., C.F.-A., M.Z., and H.C. analyzed data; and X.H., M.Z., and H.C. wrote the paper.

  • The authors declare no conflict of interest.

  • This article contains supporting information online at www.pnas.org/lookup/suppl/doi:10.1073/pnas.1300741110/-/DCSupplemental.

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Mitochondrial dynamics in adult cardiomyocytes
Xiaohu Huang, Lei Sun, Shuangxi Ji, Ting Zhao, Wanrui Zhang, Jiejia Xu, Jue Zhang, Yanru Wang, Xianhua Wang, Clara Franzini-Armstrong, Ming Zheng, Heping Cheng
Proceedings of the National Academy of Sciences Feb 2013, 201300741; DOI: 10.1073/pnas.1300741110

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Mitochondrial dynamics in adult cardiomyocytes
Xiaohu Huang, Lei Sun, Shuangxi Ji, Ting Zhao, Wanrui Zhang, Jiejia Xu, Jue Zhang, Yanru Wang, Xianhua Wang, Clara Franzini-Armstrong, Ming Zheng, Heping Cheng
Proceedings of the National Academy of Sciences Feb 2013, 201300741; DOI: 10.1073/pnas.1300741110
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