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Emergence of the Mitochondrial Reticulum from Fission and Fusion Dynamics

Overview of attention for article published in PLoS Computational Biology, October 2012
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Title
Emergence of the Mitochondrial Reticulum from Fission and Fusion Dynamics
Published in
PLoS Computational Biology, October 2012
DOI 10.1371/journal.pcbi.1002745
Pubmed ID
Authors

Valerii M. Sukhorukov, Daniel Dikov, Andreas S. Reichert, Michael Meyer-Hermann

Abstract

Mitochondria form a dynamic tubular reticulum within eukaryotic cells. Currently, quantitative understanding of its morphological characteristics is largely absent, despite major progress in deciphering the molecular fission and fusion machineries shaping its structure. Here we address the principles of formation and the large-scale organization of the cell-wide network of mitochondria. On the basis of experimentally determined structural features we establish the tip-to-tip and tip-to-side fission and fusion events as dominant reactions in the motility of this organelle. Subsequently, we introduce a graph-based model of the chondriome able to encompass its inherent variability in a single framework. Using both mean-field deterministic and explicit stochastic mathematical methods we establish a relationship between the chondriome structural network characteristics and underlying kinetic rate parameters. The computational analysis indicates that mitochondrial networks exhibit a percolation threshold. Intrinsic morphological instability of the mitochondrial reticulum resulting from its vicinity to the percolation transition is proposed as a novel mechanism that can be utilized by cells for optimizing their functional competence via dynamic remodeling of the chondriome. The detailed size distribution of the network components predicted by the dynamic graph representation introduces a relationship between chondriome characteristics and cell function. It forms a basis for understanding the architecture of mitochondria as a cell-wide but inhomogeneous organelle. Analysis of the reticulum adaptive configuration offers a direct clarification for its impact on numerous physiological processes strongly dependent on mitochondrial dynamics and organization, such as efficiency of cellular metabolism, tissue differentiation and aging.

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The data shown below were compiled from readership statistics for 123 Mendeley readers of this research output. Click here to see the associated Mendeley record.

Geographical breakdown

Country Count As %
Germany 3 2%
Switzerland 1 <1%
Chile 1 <1%
France 1 <1%
Italy 1 <1%
United Kingdom 1 <1%
Japan 1 <1%
Unknown 114 93%

Demographic breakdown

Readers by professional status Count As %
Student > Ph. D. Student 35 28%
Researcher 26 21%
Professor 12 10%
Student > Bachelor 7 6%
Student > Postgraduate 6 5%
Other 23 19%
Unknown 14 11%
Readers by discipline Count As %
Agricultural and Biological Sciences 39 32%
Biochemistry, Genetics and Molecular Biology 21 17%
Physics and Astronomy 10 8%
Neuroscience 7 6%
Engineering 7 6%
Other 22 18%
Unknown 17 14%