Literature DB >> 22527011

Mitochondrial dynamics and motility inside living vascular endothelial cells: role of bioenergetics.

Randy J Giedt1, Douglas R Pfeiffer, Anastasios Matzavinos, Chiu-Yen Kao, B Rita Alevriadou.   

Abstract

The mitochondrial network is dynamic with conformations that vary between a tubular continuum and a fragmented state. The equilibrium between mitochondrial fusion/fission, as well as the organelle motility, determine network morphology and ultimately mitochondrial/cell function. Network morphology has been linked with the energy state in different cell types. In this study, we examined how bioenergetic factors affect mitochondrial dynamics/motility in cultured vascular endothelial cells (ECs). ECs were transduced with mitochondria-targeted green fluorescent protein (mito-GFP) and exposed to inhibitors of oxidative phosphorylation (OXPHOS) or ATP synthesis. Time-lapse fluorescence videos were acquired and a mathematical program that calculates size and speed of each mitochondrial object at each time frame was developed. Our data showed that inner mitochondrial membrane potential (ΔΨ(m)), ATP produced by glycolysis, and, to a lesser degree, ATP produced by mitochondria are critical for maintaining the mitochondrial network, and different metabolic stresses induce distinct morphological patterns (e.g., mitochondrial depolarization is necessary for "donut" formation). Mitochondrial movement, characterized by Brownian diffusion with occasional bursts in displacement magnitude, was inhibited under the same conditions that resulted in increased fission. Hence, imaging/mathematical analysis shed light on the relationship between bioenergetics and mitochondrial network morphology; the latter may determine EC survival under metabolic stress.

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Year:  2012        PMID: 22527011      PMCID: PMC3416955          DOI: 10.1007/s10439-012-0568-6

Source DB:  PubMed          Journal:  Ann Biomed Eng        ISSN: 0090-6964            Impact factor:   3.934


  44 in total

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Authors:  Ann Cassidy-Stone; Jerry E Chipuk; Elena Ingerman; Cheng Song; Choong Yoo; Tomomi Kuwana; Mark J Kurth; Jared T Shaw; Jenny E Hinshaw; Douglas R Green; Jodi Nunnari
Journal:  Dev Cell       Date:  2008-02       Impact factor: 12.270

Review 2.  Positioning mitochondrial plasticity within cellular signaling cascades.

Authors:  Vincent Soubannier; Heidi M McBride
Journal:  Biochim Biophys Acta       Date:  2008-07-23

3.  Stochastically determined directed movement explains the dominant small-scale mitochondrial movements within non-neuronal tissue culture cells.

Authors:  Christopher D Saunter; Ming Der Perng; Gordon D Love; Roy A Quinlan
Journal:  FEBS Lett       Date:  2009-03-03       Impact factor: 4.124

Review 4.  The cell-type specificity of mitochondrial dynamics.

Authors:  Andrey V Kuznetsov; Martin Hermann; Valdur Saks; Paul Hengster; Raimund Margreiter
Journal:  Int J Biochem Cell Biol       Date:  2009-03-27       Impact factor: 5.085

5.  Modulation of mitochondrial morphology by bioenergetics defects in primary human fibroblasts.

Authors:  O Guillery; F Malka; P Frachon; D Milea; M Rojo; A Lombès
Journal:  Neuromuscul Disord       Date:  2008-04       Impact factor: 4.296

6.  Assessing mitochondrial morphology and dynamics using fluorescence wide-field microscopy and 3D image processing.

Authors:  Wenjun Song; Blaise Bossy; Ola J Martin; Andrew Hicks; Sarah Lubitz; Andrew B Knott; Ella Bossy-Wetzel
Journal:  Methods       Date:  2008-10-24       Impact factor: 3.608

7.  A hyperfused mitochondrial state achieved at G1-S regulates cyclin E buildup and entry into S phase.

Authors:  Kasturi Mitra; Christian Wunder; Badrinath Roysam; Gang Lin; Jennifer Lippincott-Schwartz
Journal:  Proc Natl Acad Sci U S A       Date:  2009-07-15       Impact factor: 11.205

8.  Bidirectional Ca2+-dependent control of mitochondrial dynamics by the Miro GTPase.

Authors:  Masao Saotome; Dzhamilja Safiulina; György Szabadkai; Sudipto Das; Asa Fransson; Pontus Aspenstrom; Rosario Rizzuto; György Hajnóczky
Journal:  Proc Natl Acad Sci U S A       Date:  2008-12-19       Impact factor: 11.205

9.  Short- and long-term alterations of mitochondrial morphology, dynamics and mtDNA after transient oxidative stress.

Authors:  Marina Jendrach; Sören Mai; Sandra Pohl; Monika Vöth; Jürgen Bereiter-Hahn
Journal:  Mitochondrion       Date:  2008-06-14       Impact factor: 4.160

10.  SLP-2 is required for stress-induced mitochondrial hyperfusion.

Authors:  Daniel Tondera; Stéphanie Grandemange; Alexis Jourdain; Mariusz Karbowski; Yves Mattenberger; Sébastien Herzig; Sandrine Da Cruz; Pascaline Clerc; Ines Raschke; Carsten Merkwirth; Sarah Ehses; Frank Krause; David C Chan; Christiane Alexander; Christoph Bauer; Richard Youle; Thomas Langer; Jean-Claude Martinou
Journal:  EMBO J       Date:  2009-04-09       Impact factor: 11.598

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  38 in total

1.  Topical Application of the Antimicrobial Agent Triclosan Induces NLRP3 Inflammasome Activation and Mitochondrial Dysfunction.

Authors:  Lisa M Weatherly; Hillary L Shane; Sherri A Friend; Ewa Lukomska; Rachel Baur; Stacey E Anderson
Journal:  Toxicol Sci       Date:  2020-07-01       Impact factor: 4.849

2.  Force Spectrum Microscopy Using Mitochondrial Fluctuations of Control and ATP-Depleted Cells.

Authors:  Wenlong Xu; Elaheh Alizadeh; Ashok Prasad
Journal:  Biophys J       Date:  2018-06-19       Impact factor: 4.033

3.  Acute decompression following simulated dive conditions alters mitochondrial respiration and motility.

Authors:  David H Jang; Shawn Owiredu; Abhay Ranganathan; David M Eckmann
Journal:  Am J Physiol Cell Physiol       Date:  2018-08-15       Impact factor: 4.249

4.  Mitochondrial respiration is sensitive to cytoarchitectural breakdown.

Authors:  Judith Kandel; Alessia A Angelin; Douglas C Wallace; David M Eckmann
Journal:  Integr Biol (Camb)       Date:  2016-11-07       Impact factor: 2.192

5.  Regulation of the Ca(2+)-independent phospholipase A2 in liver mitochondria by changes in the energetic state.

Authors:  Adam J Rauckhorst; Kimberly M Broekemeier; Douglas R Pfeiffer
Journal:  J Lipid Res       Date:  2014-03-01       Impact factor: 5.922

6.  Mitochondrial networking in human blood cells with application in acute care illnesses.

Authors:  David H Jang; John C Greenwood; Shawn Owiredu; Abhay Ranganathan; David M Eckmann
Journal:  Mitochondrion       Date:  2017-12-21       Impact factor: 4.160

Review 7.  Mitochondrial morphology-emerging role in bioenergetics.

Authors:  Chad A Galloway; Hakjoo Lee; Yisang Yoon
Journal:  Free Radic Biol Med       Date:  2012-09-29       Impact factor: 7.376

8.  Triclosan disrupts immune cell function by depressing Ca2+ influx following acidification of the cytoplasm.

Authors:  Suraj Sangroula; Alan Y Baez Vasquez; Prakash Raut; Bright Obeng; Juyoung K Shim; Grace D Bagley; Bailey E West; John E Burnell; Marissa S Kinney; Christian M Potts; Sasha R Weller; Joshua B Kelley; Samuel T Hess; Julie A Gosse
Journal:  Toxicol Appl Pharmacol       Date:  2020-08-21       Impact factor: 4.219

9.  Measurement of Mitochondrial Respiration and Motility in Acute Care: Sepsis, Trauma, and Poisoning.

Authors:  David H Jang; John C Greenwood; Meghan B Spyres; David M Eckmann
Journal:  J Intensive Care Med       Date:  2016-07-21       Impact factor: 3.510

10.  Endothelial mitochondria regulate the intracellular Ca2+ response to fluid shear stress.

Authors:  Christopher G Scheitlin; Justin A Julian; Santhanam Shanmughapriya; Muniswamy Madesh; Nikolaos M Tsoukias; B Rita Alevriadou
Journal:  Am J Physiol Cell Physiol       Date:  2016-01-06       Impact factor: 4.249

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