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

  • Randy J. Giedt
  • , Douglas R. Pfeiffer
  • , Anastasios Matzavinos
  • , Chiu Yen Kao
  • , B. Rita Alevriadou
  • Ohio State University
  • Iowa State University
  • Claremont McKenna College

Research output: Contribution to journalArticlepeer-review

60 Scopus citations

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.

Original languageEnglish
Pages (from-to)1903-1916
Number of pages14
JournalAnnals of Biomedical Engineering
Volume40
Issue number9
DOIs
StatePublished - Sep 2012

Keywords

  • Digital image processing
  • Endothelial function
  • Fluorescence microscopy
  • Mathematical analysis
  • Mitochondrial fusion/fission
  • Mitochondrial motility
  • Object tracking

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