Home LiteratureArticle Details
PMID: 26586219 Published · ppublish English Journal Article Research Support, N.I.H., Extramural Research Support, Non-U.S. Gov't

Non-centrosomal epidermal microtubules act in parallel to LET-502/ROCK to promote C. elegans elongation.

Development (Cambridge, England) ·Vol. 143 ·No. 1 ·2016-01-01 ·Pages 160-73

Quintin S, Wang S, Pontabry J, Bender A, Robin F, Hyenne V, Landmann F, Gally C, Oegema K, Labouesse M

Abstract

C. elegans embryonic elongation is a morphogenetic event driven by actomyosin contractility and muscle-induced tension transmitted through hemidesmosomes. A role for the microtubule cytoskeleton has also been proposed, but its contribution remains poorly characterized. Here, we investigate the organization of the non-centrosomal microtubule arrays present in the epidermis and assess their function in elongation. We show that the microtubule regulators γ-tubulin and NOCA-1 are recruited to hemidesmosomes and adherens junctions early in elongation. Several parallel approaches suggest that microtubule nucleation occurs from these sites. Disrupting the epidermal microtubule array by overexpressing the microtubule-severing protein Spastin or by inhibiting the C. elegans ninein homolog NOCA-1 in the epidermis mildly affected elongation. However, microtubules were essential for elongation when hemidesmosomes or the activity of the Rho kinase LET-502/ROCK were partially compromised. Imaging of junctional components and genetic analyses suggest that epidermal microtubules function together with Rho kinase to promote the transport of E-cadherin to adherens junctions and myotactin to hemidesmosomes. Our results indicate that the role of LET-502 in junctional remodeling is likely to be independent of its established function as a myosin II activator, but requires a microtubule-dependent pathway involving the syntaxin SYX-5. Hence, we propose that non-centrosomal microtubules organized by epidermal junctions contribute to elongation by transporting junction remodeling factors, rather than having a mechanical role.

Keywords
Caenorhabditis elegans Morphogenesis Non-centrosomal microtubules
MeSH Terms
Actomyosin/metabolism Adherens Junctions/metabolism Animals Cadherins/metabolism Caenorhabditis elegans/embryology,growth & development Caenorhabditis elegans Proteins/metabolism Cytoskeletal Proteins Cytoskeleton/metabolism Epidermal Cells Epidermis/metabolism Hemidesmosomes/metabolism Microtubules/metabolism Morphogenesis/physiology Muscle Proteins/metabolism Myosin Type II/metabolism Nuclear Proteins Protein Transport/genetics Qa-SNARE Proteins/metabolism RNA Interference RNA, Small Interfering/genetics Tubulin/metabolism rho-Associated Kinases/metabolism
Chemicals
Cadherins Caenorhabditis elegans Proteins Cytoskeletal Proteins Muscle Proteins NOCA-1 protein, C elegans Nuclear Proteins Qa-SNARE Proteins RNA, Small Interfering Tubulin let-805 protein, C elegans Actomyosin LET-502 protein, C elegans rho-Associated Kinases Myosin Type II
Authors & Affiliations
10 authors, click to expand affiliations / ORCID
Quintin Sophie
IGBMC - CNRS UMR 7104 - INSERM U964 - Université de Strasbourg, 1 rue Laurent Fries, BP 10142, Illkirch 67404, Cedex, France quintin@igbmc.fr michel.labouesse@upmc.fr.
Wang Shahoe
Ludwig Institute for Cancer Research, Department of Cellular and Molecular Medicine, University of California, San Diego, La Jolla, CA 92037, USA.
Pontabry Julien
IGBMC - CNRS UMR 7104 - INSERM U964 - Université de Strasbourg, 1 rue Laurent Fries, BP 10142, Illkirch 67404, Cedex, France.
Bender Ambre
IGBMC - CNRS UMR 7104 - INSERM U964 - Université de Strasbourg, 1 rue Laurent Fries, BP 10142, Illkirch 67404, Cedex, France.
Robin François
Institut de Biologie Paris Seine, IBPS FR3631, Université Pierre et Marie Curie, 7-9 Quai Saint Bernard, Paris 75005, France.
Hyenne Vincent
IGBMC - CNRS UMR 7104 - INSERM U964 - Université de Strasbourg, 1 rue Laurent Fries, BP 10142, Illkirch 67404, Cedex, France.
Landmann Frédéric
IGBMC - CNRS UMR 7104 - INSERM U964 - Université de Strasbourg, 1 rue Laurent Fries, BP 10142, Illkirch 67404, Cedex, France.
Gally Christelle
IGBMC - CNRS UMR 7104 - INSERM U964 - Université de Strasbourg, 1 rue Laurent Fries, BP 10142, Illkirch 67404, Cedex, France.
Oegema Karen
Ludwig Institute for Cancer Research, Department of Cellular and Molecular Medicine, University of California, San Diego, La Jolla, CA 92037, USA.
Labouesse Michel
IGBMC - CNRS UMR 7104 - INSERM U964 - Université de Strasbourg, 1 rue Laurent Fries, BP 10142, Illkirch 67404, Cedex, France Institut de Biologie Paris Seine, IBPS FR3631, Université Pierre et Marie Curie, 7-9 Quai Saint Bernard, Paris 75005, France quintin@igbmc.fr michel.labouesse@upmc.fr.
References (82)
82 references, click to expand
  1. ELT-3: A Caenorhabditis elegans GATA factor expressed in the embryonic epidermis during morphogenesis.
    Dev Biol. 1999 Apr 15;208(2):265-80 PMID: 10191044
  2. The Caenorhabditis elegans mel-11 myosin phosphatase regulatory subunit affects tissue contraction in the somatic gonad and the embryonic epidermis and genetically interacts with the Rac signaling pathway.
    Dev Biol. 1999 May 1;209(1):111-27 PMID: 10208747
  3. The nonmuscle myosin regulatory light chain gene mlc-4 is required for cytokinesis, anterior-posterior polarity, and body morphology during Caenorhabditis elegans embryogenesis.
    J Cell Biol. 1999 Jul 26;146(2):439-51 PMID: 10427096
  4. Myotactin, a novel hypodermal protein involved in muscle-cell adhesion in Caenorhabditis elegans.
    J Cell Biol. 1999 Aug 9;146(3):659-72 PMID: 10444073
  5. Feedback interactions between cell-cell adherens junctions and cytoskeletal dynamics in newt lung epithelial cells.
    Mol Biol Cell. 2000 Jul;11(7):2471-83 PMID: 10888682
  6. Microtubule minus-end anchorage at centrosomal and non-centrosomal sites: the role of ninein.
    J Cell Sci. 2000 Sep;113 ( Pt 17):3013-23 PMID: 10934040
  7. KIFC3, a microtubule minus end-directed motor for the apical transport of annexin XIIIb-associated Triton-insoluble membranes.
    J Cell Biol. 2001 Oct 1;155(1):77-88 PMID: 11581287
  8. PCR fusion-based approach to create reporter gene constructs for expression analysis in transgenic C. elegans.
    Biotechniques. 2002 Apr;32(4):728-30 PMID: 11962590
  9. The kinetically dominant assembly pathway for centrosomal asters in Caenorhabditis elegans is gamma-tubulin dependent.
    J Cell Biol. 2002 May 13;157(4):591-602 PMID: 12011109
  10. C. elegans PAT-4/ILK functions as an adaptor protein within integrin adhesion complexes.
    Curr Biol. 2002 May 14;12(10):787-97 PMID: 12015115
  11. The C. elegans evl-20 gene is a homolog of the small GTPase ARL2 and regulates cytoskeleton dynamics during cytokinesis and morphogenesis.
    Dev Cell. 2002 May;2(5):579-91 PMID: 12015966
  12. Assembly of centrosomal proteins and microtubule organization depends on PCM-1.
    J Cell Biol. 2002 Oct 28;159(2):255-66 PMID: 12403812
  13. Systematic functional analysis of the Caenorhabditis elegans genome using RNAi.
    Nature. 2003 Jan 16;421(6920):231-7 PMID: 12529635
  14. The Caenorhabditis elegans vab-10 spectraplakin isoforms protect the epidermis against internal and external forces.
    J Cell Biol. 2003 May 26;161(4):757-68 PMID: 12756232
  15. The Caenorhabditis elegans nonmuscle myosin genes nmy-1 and nmy-2 function as redundant components of the let-502/Rho-binding kinase and mel-11/myosin phosphatase pathway during embryonic morphogenesis.
    Development. 2003 Dec;130(23):5695-704 PMID: 14522875
  16. Multiple regulatory elements with spatially and temporally distinct activities control the expression of the epithelial differentiation gene lin-26 in C. elegans.
    Dev Biol. 2004 Jan 15;265(2):478-90 PMID: 14732406
  17. Measurement of dynamic protein binding to chromatin in vivo, using photobleaching microscopy.
    Methods Enzymol. 2004;375:393-414 PMID: 14870680
  18. Drosophila RhoGEF2 associates with microtubule plus ends in an EB1-dependent manner.
    Curr Biol. 2004 Oct 26;14(20):1827-33 PMID: 15498490
  19. ceh-16/engrailed patterns the embryonic epidermis of Caenorhabditis elegans.
    Development. 2005 Feb;132(4):739-49 PMID: 15659483
  20. Microtubule nucleation and anchoring at the centrosome are independent processes linked by ninein function.
    J Cell Sci. 2005 Apr 15;118(Pt 8):1565-75 PMID: 15784680
  21. Identification and characterization of factors required for microtubule growth and nucleation in the early C. elegans embryo.
    Dev Cell. 2005 Aug;9(2):223-36 PMID: 16054029
  22. Rho mediates endocytosis of epidermal growth factor receptor through phosphorylation of endophilin A1 by Rho-kinase.
    Genes Cells. 2005 Oct;10(10):973-87 PMID: 16164598
  23. Dynamic microtubules regulate the local concentration of E-cadherin at cell-cell contacts.
    J Cell Sci. 2006 May 1;119(Pt 9):1801-11 PMID: 16608875
  24. Transiently reorganized microtubules are essential for zippering during dorsal closure in Drosophila melanogaster.
    Dev Cell. 2006 Sep;11(3):375-85 PMID: 16908221
  25. Generation of noncentrosomal microtubule arrays.
    J Cell Sci. 2006 Oct 15;119(Pt 20):4155-63 PMID: 17038542
  26. Regulation of myosin II dynamics by phosphorylation and dephosphorylation of its light chain in epithelial cells.
    Mol Biol Cell. 2007 Feb;18(2):605-16 PMID: 17151359
  27. The C. elegans RSA complex localizes protein phosphatase 2A to centrosomes and regulates mitotic spindle assembly.
    Cell. 2007 Jan 12;128(1):115-27 PMID: 17218259
  28. Desmoplakin: an unexpected regulator of microtubule organization in the epidermis.
    J Cell Biol. 2007 Jan 15;176(2):147-54 PMID: 17227889
  29. The C. elegans homologue of the spastic paraplegia protein, spastin, disassembles microtubules.
    Biochem Biophys Res Commun. 2007 Jul 20;359(1):157-62 PMID: 17531954
  30. The RhoGAP RGA-2 and LET-502/ROCK achieve a balance of actomyosin-dependent forces in C. elegans epidermis to control morphogenesis.
    Development. 2007 Jul;134(13):2469-79 PMID: 17537791
  31. Cell surface mechanics and the control of cell shape, tissue patterns and morphogenesis.
    Nat Rev Mol Cell Biol. 2007 Aug;8(8):633-44 PMID: 17643125
  32. Establishment of a tissue-specific RNAi system in C. elegans.
    Gene. 2007 Oct 1;400(1-2):166-73 PMID: 17681718
  33. Ninein is released from the centrosome and moves bi-directionally along microtubules.
    J Cell Sci. 2007 Sep 1;120(Pt 17):3064-74 PMID: 17698918
  34. Epidermal morphogenesis.
    WormBook. 2005 Dec 01;:1-22 PMID: 18050408
  35. Efficient chaperone-mediated tubulin biogenesis is essential for cell division and cell migration in C. elegans.
    Dev Biol. 2008 Jan 1;313(1):320-34 PMID: 18062952
  36. Tracking the ends: a dynamic protein network controls the fate of microtubule tips.
    Nat Rev Mol Cell Biol. 2008 Apr;9(4):309-22 PMID: 18322465
  37. Epithelial morphogenesis in embryos: asymmetries, motors and brakes.
    Trends Genet. 2008 May;24(5):221-30 PMID: 18375008
  38. Single-copy insertion of transgenes in Caenorhabditis elegans.
    Nat Genet. 2008 Nov;40(11):1375-83 PMID: 18953339
  39. Anchorage of microtubule minus ends to adherens junctions regulates epithelial cell-cell contacts.
    Cell. 2008 Nov 28;135(5):948-59 PMID: 19041755
  40. Microtubule plus-end and minus-end capture at adherens junctions is involved in the assembly of apico-basal arrays in polarised epithelial cells.
    Cell Motil Cytoskeleton. 2009 Oct;66(10):893-908 PMID: 19479825
  41. A ZYG-12-dynein interaction at the nuclear envelope defines cytoskeletal architecture in the C. elegans gonad.
    J Cell Biol. 2009 Jul 27;186(2):229-41 PMID: 19635841
  42. Continuum model of epithelial morphogenesis during Caenorhabditis elegans embryonic elongation.
    Philos Trans A Math Phys Eng Sci. 2009 Sep 13;367(1902):3379-400 PMID: 19657005
  43. Myosin II regulation during C. elegans embryonic elongation: LET-502/ROCK, MRCK-1 and PAK-1, three kinases with different roles.
    Development. 2009 Sep;136(18):3109-19 PMID: 19675126
  44. In vivo coupling of cell elongation and lumen formation in a single cell.
    Curr Biol. 2010 Feb 23;20(4):359-66 PMID: 20137948
  45. CRT-1/calreticulin and the E3 ligase EEL-1/HUWE1 control hemidesmosome maturation in C. elegans development.
    Curr Biol. 2010 Feb 23;20(4):322-7 PMID: 20153198
  46. The making of hemidesmosome structures in vivo.
    Dev Dyn. 2010 May;239(5):1465-76 PMID: 20205195
  47. PAR-3 mediates the initial clustering and apical localization of junction and polarity proteins during C. elegans intestinal epithelial cell polarization.
    Development. 2010 Jun;137(11):1833-42 PMID: 20431121
  48. A developmentally regulated two-step process generates a noncentrosomal microtubule network in Drosophila tracheal cells.
    Dev Cell. 2010 May 18;18(5):790-801 PMID: 20493812
  49. Kinesin-1 and dynein at the nuclear envelope mediate the bidirectional migrations of nuclei.
    J Cell Biol. 2010 Oct 4;191(1):115-28 PMID: 20921138
  50. Distinct ECM mechanosensing pathways regulate microtubule dynamics to control endothelial cell branching morphogenesis.
    J Cell Biol. 2011 Jan 24;192(2):321-34 PMID: 21263030
  51. A tension-induced mechanotransduction pathway promotes epithelial morphogenesis.
    Nature. 2011 Mar 3;471(7336):99-103 PMID: 21368832
  52. A high-resolution C. elegans essential gene network based on phenotypic profiling of a complex tissue.
    Cell. 2011 Apr 29;145(3):470-82 PMID: 21529718
  53. Dynamics of actomyosin contractile activity during epithelial morphogenesis.
    Curr Opin Cell Biol. 2011 Oct;23(5):531-9 PMID: 21764278
  54. Mechanosensitive EPLIN-dependent remodeling of adherens junctions regulates epithelial reshaping.
    J Cell Biol. 2011 Aug 22;194(4):643-56 PMID: 21844208
  55. UNC-33 (CRMP) and ankyrin organize microtubules and localize kinesin to polarize axon-dendrite sorting.
    Nat Neurosci. 2011 Nov 20;15(1):48-56 PMID: 22101643
  56. Differential regulation of adherens junction dynamics during apical-basal polarization.
    J Cell Sci. 2011 Dec 1;124(Pt 23):4001-13 PMID: 22159415
  57. The making of a fusion branch in the Drosophila trachea.
    Dev Biol. 2012 Feb 15;362(2):187-93 PMID: 22178247
  58. A role for the centrosome and PAR-3 in the hand-off of MTOC function during epithelial polarization.
    Curr Biol. 2012 Apr 10;22(7):575-82 PMID: 22425160
  59. Tropomodulin protects α-catenin-dependent junctional-actin networks under stress during epithelial morphogenesis.
    Curr Biol. 2012 Aug 21;22(16):1500-5 PMID: 22771044
  60. Protein phosphatase-1M and Rho-kinase affect exocytosis from cortical synaptosomes and influence neurotransmission at a glutamatergic giant synapse of the rat auditory system.
    J Neurochem. 2012 Oct;123(1):84-99 PMID: 22817114
  61. Noncentrosomal microtubules and type II myosins potentiate epidermal cell adhesion and barrier formation.
    J Cell Biol. 2012 Oct 29;199(3):513-25 PMID: 23091070
  62. Dynamic microtubules produce an asymmetric E-cadherin-Bazooka complex to maintain segment boundaries.
    J Cell Biol. 2013 Jun 10;201(6):887-901 PMID: 23751496
  63. Engineering the Caenorhabditis elegans genome using Cas9-triggered homologous recombination.
    Nat Methods. 2013 Oct;10(10):1028-34 PMID: 23995389
  64. Tethering the assembly of SNARE complexes.
    Trends Cell Biol. 2014 Jan;24(1):35-43 PMID: 24119662
  65. Quantitative cell polarity imaging defines leader-to-follower transitions during collective migration and the key role of microtubule-dependent adherens junction formation.
    Development. 2014 Mar;141(6):1282-91 PMID: 24595289
  66. Single-molecule analysis of cell surface dynamics in Caenorhabditis elegans embryos.
    Nat Methods. 2014 Jun;11(6):677-82 PMID: 24727651
  67. A dynamic microtubule cytoskeleton directs medial actomyosin function during tube formation.
    Dev Cell. 2014 Jun 9;29(5):562-576 PMID: 24914560
  68. Epithelial junctions, cytoskeleton, and polarity.
    WormBook. 2014 Nov 04;:1-35 PMID: 25373597
  69. Remodeling of keratin-coupled cell adhesion complexes.
    Curr Opin Cell Biol. 2015 Feb;32:30-8 PMID: 25460779
  70. Microtubule-dependent apical restriction of recycling endosomes sustains adherens junctions during morphogenesis of the Drosophila tracheal system.
    Development. 2015 Jan 15;142(2):363-74 PMID: 25564624
  71. Control of E-cadherin apical localisation and morphogenesis by a SOAP-1/AP-1/clathrin pathway in C. elegans epidermal cells.
    Development. 2015 May 1;142(9):1684-94 PMID: 25858456
  72. NOCA-1 functions with γ-tubulin and in parallel to Patronin to assemble non-centrosomal microtubule arrays in C. elegans.
    Elife. 2015 Sep 15;4:e08649 PMID: 26371552
  73. RAL-1 controls multivesicular body biogenesis and exosome secretion.
    J Cell Biol. 2015 Oct 12;211(1):27-37 PMID: 26459596
  74. Functional and Genetic Analysis of VAB-10 Spectraplakin in Caenorhabditis elegans.
    Methods Enzymol. 2016;569:407-30 PMID: 26778569
  75. Caenorhabditis elegans morphogenesis: the role of the cytoskeleton in elongation of the embryo.
    Dev Biol. 1986 Sep;117(1):156-73 PMID: 3743895
  76. The genetics of Caenorhabditis elegans.
    Genetics. 1974 May;77(1):71-94 PMID: 4366476
  77. The embryonic cell lineage of the nematode Caenorhabditis elegans.
    Dev Biol. 1983 Nov;100(1):64-119 PMID: 6684600
  78. Microtubule integrity is necessary for the epithelial barrier function of cultured thyroid cell monolayers.
    Exp Cell Res. 1995 Jun;218(2):540-50 PMID: 7796888
  79. cis regulatory requirements for hypodermal cell-specific expression of the Caenorhabditis elegans cuticle collagen gene dpy-7.
    Mol Cell Biol. 1997 Apr;17(4):2301-11 PMID: 9121480
  80. Myosin light chain-activating phosphorylation sites are required for oogenesis in Drosophila.
    J Cell Biol. 1997 Dec 29;139(7):1805-19 PMID: 9412474
  81. Microtubule polymerization dynamics.
    Annu Rev Cell Dev Biol. 1997;13:83-117 PMID: 9442869
  82. A putative catenin-cadherin system mediates morphogenesis of the Caenorhabditis elegans embryo.
    J Cell Biol. 1998 Apr 6;141(1):297-308 PMID: 9531567
Article Info
Journal
Development (Cambridge, England)
Abbr.
Development
ISSN
1477-9129
Published
2016-01-01
Epub
2015-00-19
Pages
160-73
Language
English
Region
England
NLM ID
8701744
PMCID
PMC6514414
Subset
IM
Grants
NIGMS NIH HHS · R01 GM074207 · United States
NIGMS NIH HHS · GM074207 · United States
Corrections
ErratumIn
Analysis Services
Analysis Services

Contact

No. 2 Wenbo Road, Zhangqiu District, Jinan, Shandong

Qilu Normal University · Genelibs Bioinformatics Lab

750 Shunhua Rd, Jinan

2F, Bldg F, University Science Park

Tel: 0531-88819269

WeChat Official Account

Follow our WeChat subscription account for real-time updates and the latest in medical and biological research.


Business Email

E-mail: product@genelibs.com