Literature DB >> 25833036

Distribution of mitochondrial DNA nucleoids inside the linear tubules vs. bulk parts of mitochondrial network as visualized by 4Pi microscopy.

Andrea Dlasková1, Hana Engstová, Lydie Plecitá-Hlavatá, Mark Lessard, Lukáš Alán, David Pajuelo Reguera, Martin Jabůrek, Petr Ježek.   

Abstract

Mitochondrial nucleoids are confined sites of mitochondrial DNA existing in complex clusters with the DNA-compacting mitochondrial (mt) transcription factor A (TFAM) and other accessory proteins and gene expression machinery proteins, such as a mt single-stranded-DNA-binding protein (mtSSB). To visualize nucleoid distribution within the mt reticular network, we have employed three-dimensional (3D) double-color 4Pi microscopy. The mt network was visualized in hepatocellular carcinoma HepG2 cells via mt-matrix-addressed GFP, while 3D immunocytochemistry of mtSSB was performed. Optimization of iso-surface computation threshold for nucleoid 4Pi images to 30 led to an average nucleoid diameter of 219 ± 110 and 224 ± 100 nm in glucose- and galactose-cultivated HepG2 cells (the latter with obligatory oxidative phosphorylation). We have positioned mtDNA nucleoids within the mt reticulum network and refined our model for nucleoid redistribution within the fragmented network--clustering of up to ten nucleoids in 2 μm diameter mitochondrial spheroids of a fragmented mt network, arising from an original 10 μm mt tubule of a 400 nm diameter. However, the theoretically fragmented bulk parts were observed most frequently as being reintegrated into the continuous mt network in 4Pi images. Since the predicted nucleoid counts within the bulk parts corresponded to the model, we conclude that fragmentation/reintegration cycles are not accompanied by mtDNA degradation or that mtDNA degradation is equally balanced by mtDNA replication.

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Year:  2015        PMID: 25833036     DOI: 10.1007/s10863-015-9610-3

Source DB:  PubMed          Journal:  J Bioenerg Biomembr        ISSN: 0145-479X            Impact factor:   2.945


  23 in total

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Authors:  Benjamin G Kopek; Gleb Shtengel; C Shan Xu; David A Clayton; Harald F Hess
Journal:  Proc Natl Acad Sci U S A       Date:  2012-04-02       Impact factor: 11.205

2.  Biophysical properties of mitochondrial fusion events in pancreatic beta-cells and cardiac cells unravel potential control mechanisms of its selectivity.

Authors:  Gilad Twig; Xingguo Liu; Marc Liesa; Jakob D Wikstrom; Anthony J A Molina; Guy Las; Gal Yaniv; György Hajnóczky; Orian S Shirihai
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3.  Sample drift correction in 3D fluorescence photoactivation localization microscopy.

Authors:  Michael J Mlodzianoski; John M Schreiner; Steven P Callahan; Katarina Smolková; Andrea Dlasková; Jitka Santorová; Petr Ježek; Joerg Bewersdorf
Journal:  Opt Express       Date:  2011-08-01       Impact factor: 3.894

4.  Fast 100-nm resolution three-dimensional microscope reveals structural plasticity of mitochondria in live yeast.

Authors:  Alexander Egner; Stefan Jakobs; Stefan W Hell
Journal:  Proc Natl Acad Sci U S A       Date:  2002-03-19       Impact factor: 11.205

5.  Distribution of mitochondrial nucleoids upon mitochondrial network fragmentation and network reintegration in HEPG2 cells.

Authors:  Jan Tauber; Andrea Dlasková; Jitka Šantorová; Katarína Smolková; Lukáš Alán; Tomáš Špaček; Lydie Plecitá-Hlavatá; Martin Jabůrek; Petr Ježek
Journal:  Int J Biochem Cell Biol       Date:  2012-12-07       Impact factor: 5.085

6.  Mitochondrial oxidative phosphorylation and energetic status are reflected by morphology of mitochondrial network in INS-1E and HEP-G2 cells viewed by 4Pi microscopy.

Authors:  Lydie Plecitá-Hlavatá; Mark Lessard; Jitka Santorová; Joerg Bewersdorf; Petr Jezek
Journal:  Biochim Biophys Acta       Date:  2008-04-10

Review 7.  Mitochondrial reticulum network dynamics in relation to oxidative stress, redox regulation, and hypoxia.

Authors:  Petr Jezek; Lydie Plecitá-Hlavatá
Journal:  Int J Biochem Cell Biol       Date:  2009-03-03       Impact factor: 5.085

8.  During autophagy mitochondria elongate, are spared from degradation and sustain cell viability.

Authors:  Ligia C Gomes; Giulietta Di Benedetto; Luca Scorrano
Journal:  Nat Cell Biol       Date:  2011-04-10       Impact factor: 28.824

9.  Strong purifying selection in transmission of mammalian mitochondrial DNA.

Authors:  James Bruce Stewart; Christoph Freyer; Joanna L Elson; Anna Wredenberg; Zekiye Cansu; Aleksandra Trifunovic; Nils-Göran Larsson
Journal:  PLoS Biol       Date:  2008-01       Impact factor: 8.029

10.  Mitochondrial nucleoids maintain genetic autonomy but allow for functional complementation.

Authors:  Robert W Gilkerson; Eric A Schon; Evelyn Hernandez; Mercy M Davidson
Journal:  J Cell Biol       Date:  2008-06-23       Impact factor: 10.539

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  4 in total

1.  Delaunay algorithm and principal component analysis for 3D visualization of mitochondrial DNA nucleoids by Biplane FPALM/dSTORM.

Authors:  Lukáš Alán; Tomáš Špaček; Petr Ježek
Journal:  Eur Biophys J       Date:  2016-02-05       Impact factor: 1.733

2.  Nkx6.1 decline accompanies mitochondrial DNA reduction but subtle nucleoid size decrease in pancreatic islet β-cells of diabetic Goto Kakizaki rats.

Authors:  Tomáš Špaček; Vojtěch Pavluch; Lukáš Alán; Nikola Capková; Hana Engstová; Andrea Dlasková; Zuzana Berková; František Saudek; Petr Ježek
Journal:  Sci Rep       Date:  2017-11-15       Impact factor: 4.379

Review 3.  Mitochondrial Nucleoid: Shield and Switch of the Mitochondrial Genome.

Authors:  Sung Ryul Lee; Jin Han
Journal:  Oxid Med Cell Longev       Date:  2017-06-07       Impact factor: 6.543

4.  SYBR Gold dye enables preferential labelling of mitochondrial nucleoids and their time-lapse imaging by structured illumination microscopy.

Authors:  Visnja Jevtic; Petra Kindle; Sergiy V Avilov
Journal:  PLoS One       Date:  2018-09-18       Impact factor: 3.240

  4 in total

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