Literature DB >> 20351113

Identification of multiple rate-limiting steps during the human mitochondrial transcription cycle in vitro.

Maria F Lodeiro1, Akira U Uchida, Jamie J Arnold, Shelley L Reynolds, Ibrahim M Moustafa, Craig E Cameron.   

Abstract

We have reconstituted human mitochondrial transcription in vitro on DNA oligonucleotide templates representing the light strand and heavy strand-1 promoters using protein components (RNA polymerase and transcription factors A and B2) isolated from Escherichia coli. We show that 1 eq of each transcription factor and polymerase relative to the promoter is required to assemble a functional initiation complex. The light strand promoter is at least 2-fold more efficient than the heavy strand-1 promoter, but this difference cannot be explained solely by the differences in the interaction of the transcription machinery with the different promoters. In both cases, the rate-limiting step for production of the first phosphodiester bond is open complex formation. Open complex formation requires both transcription factors; however, steps immediately thereafter only require transcription factor B2. The concentration of nucleotide required for production of the first dinucleotide product is substantially higher than that required for subsequent cycles of nucleotide addition. In vitro, promoter-specific differences in post-initiation control of transcription exist, as well as a second rate-limiting step that controls conversion of the transcription initiation complex into a transcription elongation complex. Rate-limiting steps of the biochemical pathways are often those that are targeted for regulation. Like the more complex multisubunit transcription systems, multiple steps may exist for control of transcription in human mitochondria. The tools and mechanistic framework presented here will facilitate not only the discovery of mechanisms regulating human mitochondrial transcription but also interrogation of the structure, function, and mechanism of the complexes that are regulated during human mitochondrial transcription.

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Year:  2010        PMID: 20351113      PMCID: PMC2871506          DOI: 10.1074/jbc.M109.092676

Source DB:  PubMed          Journal:  J Biol Chem        ISSN: 0021-9258            Impact factor:   5.157


  77 in total

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Review 3.  Initiation and beyond: multiple functions of the human mitochondrial transcription machinery.

Authors:  Nicholas D Bonawitz; David A Clayton; Gerald S Shadel
Journal:  Mol Cell       Date:  2006-12-28       Impact factor: 17.970

Review 4.  The regulatory roles and mechanism of transcriptional pausing.

Authors:  R Landick
Journal:  Biochem Soc Trans       Date:  2006-12       Impact factor: 5.407

Review 5.  Divergent transcription: a new feature of active promoters.

Authors:  Amy C Seila; Leighton J Core; John T Lis; Phillip A Sharp
Journal:  Cell Cycle       Date:  2009-08-19       Impact factor: 4.534

6.  Sensitivity of the yeast mitochondrial RNA polymerase to +1 and +2 initiating nucleotides.

Authors:  Elizabeth A Amiott; Judith A Jaehning
Journal:  J Biol Chem       Date:  2006-09-26       Impact factor: 5.157

Review 7.  Mitochondrial transcription and its regulation in mammalian cells.

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Journal:  Trends Biochem Sci       Date:  2007-02-08       Impact factor: 13.807

8.  TFB2 is a transient component of the catalytic site of the human mitochondrial RNA polymerase.

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Review 9.  Defining mechanisms that regulate RNA polymerase II transcription in vivo.

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Journal:  Nature       Date:  2009-09-10       Impact factor: 49.962

10.  Initial transcription by RNA polymerase proceeds through a DNA-scrunching mechanism.

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Journal:  Science       Date:  2006-11-17       Impact factor: 47.728

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  22 in total

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Authors:  Ornella Zollo; Valeria Tiranti; Neal Sondheimer
Journal:  Proc Natl Acad Sci U S A       Date:  2012-03-27       Impact factor: 11.205

2.  Core human mitochondrial transcription apparatus is a regulated two-component system in vitro.

Authors:  Timothy E Shutt; Maria F Lodeiro; Justin Cotney; Craig E Cameron; Gerald S Shadel
Journal:  Proc Natl Acad Sci U S A       Date:  2010-06-18       Impact factor: 11.205

Review 3.  Mitochondrial DNA damage and its consequences for mitochondrial gene expression.

Authors:  Susan D Cline
Journal:  Biochim Biophys Acta       Date:  2012-06-19

4.  Mitochondrial ribosomal protein L12 selectively associates with human mitochondrial RNA polymerase to activate transcription.

Authors:  Yulia V Surovtseva; Timothy E Shutt; Justin Cotney; Huseyin Cimen; Sophia Y Chen; Emine C Koc; Gerald S Shadel
Journal:  Proc Natl Acad Sci U S A       Date:  2011-10-14       Impact factor: 11.205

5.  Inhibition of hepatitis C virus replication by GS-6620, a potent C-nucleoside monophosphate prodrug.

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Journal:  Antimicrob Agents Chemother       Date:  2014-01-13       Impact factor: 5.191

6.  Topological requirements of the mitochondrial heavy-strand promoters.

Authors:  Ornella Zollo; Neal Sondheimer
Journal:  Transcription       Date:  2017-08-25

Review 7.  Roles of the mitochondrial genetics in cancer metastasis: not to be ignored any longer.

Authors:  Thomas C Beadnell; Adam D Scheid; Carolyn J Vivian; Danny R Welch
Journal:  Cancer Metastasis Rev       Date:  2018-12       Impact factor: 9.264

Review 8.  Mechanisms of mammalian mitochondrial transcription.

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Journal:  Protein Sci       Date:  2019-07-31       Impact factor: 6.725

9.  Human mitochondrial RNA polymerase: evaluation of the single-nucleotide-addition cycle on synthetic RNA/DNA scaffolds.

Authors:  Eric D Smidansky; Jamie J Arnold; Shelley L Reynolds; Craig E Cameron
Journal:  Biochemistry       Date:  2011-05-12       Impact factor: 3.162

Review 10.  Accessorizing the human mitochondrial transcription machinery.

Authors:  Megan L Bestwick; Gerald S Shadel
Journal:  Trends Biochem Sci       Date:  2013-04-27       Impact factor: 13.807

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