Defined chromosome structure in the genome-reduced bacterium Mycoplasma pneumoniae

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作者
Marie Trussart
Eva Yus
Sira Martinez
Davide Baù
Yuhei O. Tahara
Thomas Pengo
Michael Widjaja
Simon Kretschmer
Jim Swoger
Steven Djordjevic
Lynne Turnbull
Cynthia Whitchurch
Makoto Miyata
Marc A. Marti-Renom
Maria Lluch-Senar
Luís Serrano
机构
[1] EMBL/CRG Systems Biology Research Unit,Department of Biology
[2] Centre for Genomic Regulation (CRG),Department of Cellular and Molecular Biophysics
[3] The Barcelona Institute of Science and Technology,undefined
[4] Universitat Pompeu Fabra (UPF),undefined
[5] Gene Regulation,undefined
[6] Stem Cells and Cancer Program. Centre for Genomic Regulation (CRG),undefined
[7] The Barcelona Institute of Science and Technology,undefined
[8] CNAG-CRG,undefined
[9] Centre for Genomic Regulation (CRG),undefined
[10] The Barcelona Institute of Science and Technology,undefined
[11] Graduate School of Science,undefined
[12] Osaka City University,undefined
[13] OCU Advanced Research Institute for Natural Science and Technology (OCARNA),undefined
[14] Osaka City University,undefined
[15] Advanced Light Microscopy Unit,undefined
[16] Centre for Genomic Regulation (CRG),undefined
[17] The ithree Institute,undefined
[18] The University of Technology Sydney,undefined
[19] Sydney,undefined
[20] New South Wales 2007,undefined
[21] Australia,undefined
[22] Max Planck Institute of Biochemistry,undefined
[23] Institució Catalana de Recerca i Estudis Avançats (ICREA),undefined
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摘要
DNA-binding proteins are central regulators of chromosome organization; however, in genome-reduced bacteria their diversity is largely diminished. Whether the chromosomes of such bacteria adopt defined three-dimensional structures remains unexplored. Here we combine Hi-C and super-resolution microscopy to determine the structure of the Mycoplasma pneumoniae chromosome at a 10 kb resolution. We find a defined structure, with a global symmetry between two arms that connect opposite poles, one bearing the chromosomal Ori and the other the midpoint. Analysis of local structures at a 3 kb resolution indicates that the chromosome is organized into domains ranging from 15 to 33 kb. We provide evidence that genes within the same domain tend to be co-regulated, suggesting that chromosome organization influences transcriptional regulation, and that supercoiling regulates local organization. This study extends the current understanding of bacterial genome organization and demonstrates that a defined chromosomal structure is a universal feature of living systems.
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