473
Views
8
CrossRef citations to date
0
Altmetric
Article Addendum

Conservation and differences of the Min system in the chloroplast and bacterial division site placement

, , , &
Pages 400-402 | Received 16 Apr 2009, Accepted 18 Apr 2009, Published online: 30 Sep 2009

References

  • Maple J, Moller SG. Plastid division coordination across a double-membraned structure. FEBS Lett 2007; 581:2162 - 2167
  • Yang Y, Glynn JM, Olson BJ, Schmitz AJ, Osteryoung KW. Plastid division: across time and space. Curr Opin Plant Biol 2008; 11:577 - 584
  • Rothfield L, Taghbalout A, Shih YL. Spatial control of bacterial division-site placement. Nat Rev Microbiol 2005; 3:959 - 968
  • Harry E, Monahan L, Thompson L. Bacterial cell division: the mechanism and its precison. Int Rev Cytol 2006; 253:27 - 94
  • Nakanishi H, Suzuki K, Kabeya Y, Miyagishima SY. Plant-specific protein MCD1 determines the site of chloroplast division in concert with bacteria-derived MinD. Curr Biol 2009; 19:151 - 156
  • Miyagishima SY, Nishida K, Mori T, Matsuzaki M, Higashiyama T, Kuroiwa H, et al. A plant-specific dynamin-related protein forms a ring at the chloroplast division site. Plant Cell 2003; 15:655 - 665
  • Gao H, Kadirjan-Kalbach D, Froehlich JE, Osteryoung KW. ARC5, a cytosolic dynamin-like protein from plants, is part of the chloroplast division machinery. Proc Natl Acad Sci USA 2003; 100:4328 - 4333
  • Miyagishima SY, Froehlich JE, Osteryoung KW. PDV1 and PDV2 mediate recruitment of the dynamin-related protein ARC5 to the plastid division site. Plant Cell 2006; 18:2517 - 2530
  • Glynn JM, Froehlich JE, Osteryoung KW. Arabidopsis ARC6 coordinates the division machineries of the inner and outer chloroplast membranes through interaction with PDV2 in the intermembrane space. Plant Cell 2008; 20:2460 - 2470
  • Marston AL, Thomaides HB, Edwards DH, Sharpe ME, Errington J. Polar localization of the MinD protein of Bacillus subtilis and its role in selection of the mid-cell division site. Genes Dev 1998; 12:3419 - 3430
  • Marston AL, Errington J. Selection of the midcell division site in Bacillus subtilis through MinD-dependent polar localization and activation of MinC. Mol Microbiol 1999; 33:84 - 96
  • Hu Z, Mukherjee A, Pichoff S, Lutkenhaus J. The MinC component of the division site selection system in Escherichia coli interacts with FtsZ to prevent polymerization. Proc Natl Acad Sci USA 1999; 96:14819 - 14824
  • Hu Z, Gogol EP, Lutkenhaus J. Dynamic assembly of MinD on phospholipid vesicles regulated by ATP and MinE. Proc Natl Acad Sci USA 2002; 99:6761 - 6766
  • Hu Z, Lutkenhaus J. Topological regulation of cell division in Escherichia coli involves rapid pole to pole oscillation of the division inhibitor MinC under the control of MinD and MinE. Mol Microbiol 1999; 34:82 - 90
  • Raskin DM, de Boer PA. MinDE-dependent pole-to-pole oscillation of division inhibitor MinC in Escherichia coli. J Bacteriol 1999; 181:6419 - 6424
  • Cha JH, Stewart GC. The divIVA minicell locus of Bacillus subtilis. J Bacteriol 1997; 179:1671 - 1683
  • Edwards DH, Errington J. The Bacillus subtilis DivIVA protein targets to the division septum and controls the site specificity of cell division. Mol Microbiol 1997; 24:905 - 915
  • Gregory JA, Becker EC, Pogliano K. Bacillus subtilis MinC destabilizes FtsZ-rings at new cell poles and contributes to the timing of cell division. Genes Dev 2008; 22:3475 - 3488
  • Mazouni K, Domain F, Cassier-Chauvat C, Chauvat F. Molecular analysis of the key cytokinetic components of cyanobacteria: FtsZ, ZipN and MinCDE. Mol Microbiol 2004; 52:1145 - 1158
  • Miyagishima SY, Wolk CP, Osteryoung KW. Identification of cyanobacterial cell division genes by comparative and mutational analyses. Mol Microbiol 2005; 56:126 - 143
  • Colletti KS, Tattersall EA, Pyke KA, Froelich JE, Stokes KD, Osteryoung KW. A homologue of the bacterial cell division site-determining factor MinD mediates placement of the chloroplast division apparatus. Curr Biol 2000; 10:507 - 516
  • Itoh R, Fujiwara M, Nagata N, Yoshida S. A chloroplast protein homologous to the eubacterial topological specificity factor minE plays a role in chloroplast division. Plant Physiol 2001; 127:1644 - 1655
  • Adams S, Maple J, Moller SG. Functional conservation of the MIN plastid division homologues of Chlamydomonas reinhardtii. Planta 2008; 227:1199 - 1211
  • Shimada H, Koizumi M, Kuroki K, Mochizuki M, Fujimoto H, Ohta H, et al. ARC3, a chloroplast division factor, is a chimera of prokaryotic FtsZ and part of eukaryotic phosphatidylinositol-4-phosphate 5-kinase. Plant Cell Physiol 2004; 45:960 - 967
  • Maple J, Vojta L, Soll J, Moller SG. ARC3 is a stromal Z-ring accessory protein essential for plastid division. EMBO Rep 2007; 8:293 - 299
  • Glynn JM, Miyagishima SY, Yoder DW, Osteryoung KW, Vitha S. Chloroplast division. Traffic 2007; 8:451 - 461
  • Patrick JE, Kearns DB. MinJ (YvjD) is a topological determinant of cell division in Bacillus subtilis. Mol Microbiol 2008; 70:1166 - 1179
  • Bramkamp M, Emmins R, Weston L, Donovan C, Daniel RA, Errington J. A novel component of the division-site selection system of Bacillus subtilis and a new mode of action for the division inhibitor MinCD. Mol Microbiol 2008; 70:1556 - 1569
  • Fujiwara MT, Nakamura A, Itoh R, Shimada Y, Yoshida S, Moller SG. Chloroplast division site placement requires dimerization of the ARC11/AtMinD1 protein in Arabidopsis. J Cell Sci 2004; 117:2399 - 2410
  • Rothfield L, Justice S, García-Lara J. Bacterial cell division. Annu Rev Genet 1999; 33:423 - 448