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Front Cell Dev Biol. 2019 Nov 28;7:309. doi: 10.3389/fcell.2019.00309. eCollection 2019.

The .

Frontiers in cell and developmental biology

Liu Xiaoxia, Jianguo Zhang, Sui Jinkai, Luo Ying, Rao Guodong

Affiliations

  1. State Key Laboratory of Tree Genetics and Breeding, Research Institute of Forestry, Chinese Academy of Forestry, Beijing, China.
  2. Collaborative Innovation Center of Sustainable Forestry in Southern China, Nanjing Forestry University, Nanjing, China.
  3. Key Laboratory of Tree Breeding and Cultivation of the National Forestry and Grassland Administration, Research Institute of Forestry, Chinese Academy of Forestry, Beijing, China.

PMID: 31850345 PMCID: PMC6892981 DOI: 10.3389/fcell.2019.00309

Abstract

Light signaling and cortical microtubule (MT) arrays are essential to the anisotropic growth of plant cells. Microtubule-associated proteins (MAPs) function as regulators that mediate plant cell expansion or elongation by altering the arrangements of the MT arrays. However, current understanding of the molecular mechanism of MAPs in relation to light to regulate cell expansion or elongation is limited. Here, we show that the MPS SPR1 is involved in light-regulated directional cell expansion by modulating microtubule arrangement. Overexpression of

Copyright © 2019 Xiaoxia, Zhang, Jinkai, Ying and Guodong.

Keywords: Salix matsudana; cell expansion; elongation; light regulation; microtubule; microtubule-associated proteins; protein interaction

References

  1. Plant Cell. 2004 Jun;16(6):1506-20 - PubMed
  2. Plant J. 2013 Jul;75(2):339-49 - PubMed
  3. Mol Plant. 2016 Oct 10;9(10):1353-1365 - PubMed
  4. Plant Cell. 2013 Jan;25(1):134-48 - PubMed
  5. Science. 2013 Dec 6;342(6163):1245533 - PubMed
  6. Curr Genet. 2016 Feb;62(1):129-36 - PubMed
  7. Plant Cell. 2013 May;25(5):1740-55 - PubMed
  8. Plant Cell. 2011 Jul;23(7):2592-605 - PubMed
  9. Plant Physiol. 2004 Dec;136(4):3933-44 - PubMed
  10. Plant Cell. 2004 May;16(5):1178-90 - PubMed
  11. Protoplasma. 2012 Feb;249 Suppl 1:S59-67 - PubMed
  12. Science. 2001 May 18;292(5520):1382-5 - PubMed
  13. Arabidopsis Book. 2015 Apr 27;13:e0179 - PubMed
  14. Cell. 1994 Jul 15;78(1):117-24 - PubMed
  15. Nat Protoc. 2006;1(2):641-6 - PubMed
  16. Sci Rep. 2016 Jan 29;6:20115 - PubMed
  17. J Mol Biol. 2007 Apr 27;368(2):550-63 - PubMed
  18. Plant J. 2006 Feb;45(4):616-29 - PubMed
  19. Plant Physiol. 1997 May;114(1):295-305 - PubMed
  20. Trends Plant Sci. 2008 Jun;13(6):303-10 - PubMed
  21. Plant J. 2003 Nov;36(4):565-75 - PubMed
  22. Mol Biol Evol. 2013 Dec;30(12):2725-9 - PubMed
  23. Science. 2002 Oct 18;298(5593):608-11 - PubMed
  24. Plant Cell Environ. 2014 May;37(5):1202-22 - PubMed
  25. Trends Plant Sci. 2003 May;8(5):202-4 - PubMed
  26. Development. 2000 Oct;127(20):4443-53 - PubMed
  27. Proc Natl Acad Sci U S A. 2017 Nov 14;114(46):12321-12326 - PubMed
  28. Plant Physiol. 2010 Dec;154(4):1710-20 - PubMed
  29. Curr Opin Neurobiol. 2015 Oct;34:46-53 - PubMed
  30. Trends Plant Sci. 2007 Nov;12(11):514-21 - PubMed
  31. Genes Dev. 1997 Nov 15;11(22):2983-95 - PubMed
  32. Plant Cell Physiol. 2006 Apr;47(4):513-22 - PubMed
  33. Plant Cell. 2014 Nov;26(11):4409-25 - PubMed
  34. Plant Physiol. 2015 Sep;169(1):325-37 - PubMed
  35. Plant Cell. 2012 Jan;24(1):192-201 - PubMed
  36. Plant Cell. 2011 May;23(5):1889-903 - PubMed
  37. Nat Protoc. 2006;1(4):2019-25 - PubMed
  38. Plant Cell. 2011 Sep;23(9):3412-27 - PubMed
  39. Annu Rev Plant Physiol Plant Mol Biol. 1996 Jun;47:215-243 - PubMed

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