Literature DB >> 22658592

Posttranslational acetylation of α-tubulin constrains protofilament number in native microtubules.

Juan G Cueva1, Jen Hsin, Kerwyn Casey Huang, Miriam B Goodman.   

Abstract

BACKGROUND: Microtubules are built from linear polymers of α-β tubulin dimers (protofilaments) that form a tubular quinary structure. Microtubules assembled from purified tubulin in vitro contain between 10 and 16 protofilaments; however, such structural polymorphisms are not found in cells. This discrepancy implies that factors other than tubulin constrain microtubule protofilament number, but the nature of these constraints is unknown.
RESULTS: Here, we show that acetylation of MEC-12 α-tubulin constrains protofilament number in C. elegans touch receptor neurons (TRNs). Whereas the sensory dendrite of wild-type TRNs is packed with a cross-linked bundle of long, 15-protofilament microtubules, mec-17;atat-2 mutants lacking α-tubulin acetyltransferase activity have short microtubules, rampant lattice defects, and variable protofilament number both between and within microtubules. All-atom molecular dynamics simulations suggest a model in which acetylation of lysine 40 promotes the formation of interprotofilament salt bridges, stabilizing lateral interactions between protofilaments and constraining quinary structure to produce stable, structurally uniform microtubules in vivo.
CONCLUSIONS: Acetylation of α-tubulin is an essential constraint on protofilament number in vivo. We propose a structural model in which this posttranslational modification promotes the formation of lateral salt bridges that fine-tune the association between adjacent protofilaments and enable the formation of uniform microtubule populations in vivo.
Copyright © 2012 Elsevier Ltd. All rights reserved.

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Year:  2012        PMID: 22658592      PMCID: PMC3670109          DOI: 10.1016/j.cub.2012.05.012

Source DB:  PubMed          Journal:  Curr Biol        ISSN: 0960-9822            Impact factor:   10.834


  44 in total

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Review 2.  Maintenance of C. elegans.

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3.  Nanoscale organization of the MEC-4 DEG/ENaC sensory mechanotransduction channel in Caenorhabditis elegans touch receptor neurons.

Authors:  Juan G Cueva; Atticus Mulholland; Miriam B Goodman
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7.  Structural diversity of microtubules in the supporting cells of the sensory epithelium of guinea pig organ of Corti.

Authors:  K Saito; K Hama
Journal:  J Electron Microsc (Tokyo)       Date:  1982

8.  Developmental genetics of the mechanosensory neurons of Caenorhabditis elegans.

Authors:  M Chalfie; J Sulston
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Authors:  T Kikuchi; T Takasaka; A Tonosaki; H Watanabe; K Hozawa; H Shinkawa; H Wada
Journal:  Acta Otolaryngol Suppl       Date:  1991

10.  The mec-7 beta-tubulin gene of Caenorhabditis elegans is expressed primarily in the touch receptor neurons.

Authors:  M Hamelin; I M Scott; J C Way; J G Culotti
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  74 in total

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6.  Structure of the α-tubulin acetyltransferase, αTAT1, and implications for tubulin-specific acetylation.

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9.  Generation of differentially modified microtubules using in vitro enzymatic approaches.

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