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Explaining the Microtubule Energy Balance: Contributions Due to Dipole Moments, Charges, van der Waals and Solvation Energy.
Ayoub, Ahmed Taha; Staelens, Michael; Prunotto, Alessio; Deriu, Marco A; Danani, Andrea; Klobukowski, Mariusz; Tuszynski, Jack Adam.
Afiliação
  • Ayoub AT; Medicinal Chemistry Department, Heliopolis University, Cairo-Belbeis Desert Rd, El-Nahda, El-Salam, Cairo Governorate 11777, Egypt. atayoub@ualberta.ca.
  • Staelens M; Department of Physics, University of Alberta, Edmonton, AB T6G 2E1, Canada. staelens@ualberta.ca.
  • Prunotto A; Istituto Dalle Molle di Studi sull'Intelligenza Artificiale (IDSIA), Scuola Universitaria Professionale Della Svizzera Italiana (SUPSI), Università Della Svizzera Italiana (USI), Centro Galleria 2, Manno CH-6928, Switzerland. alessio.prunotto@gmail.com.
  • Deriu MA; Istituto Dalle Molle di Studi sull'Intelligenza Artificiale (IDSIA), Scuola Universitaria Professionale Della Svizzera Italiana (SUPSI), Università Della Svizzera Italiana (USI), Centro Galleria 2, Manno CH-6928, Switzerland. deriu.marco@gmail.com.
  • Danani A; Istituto Dalle Molle di Studi sull'Intelligenza Artificiale (IDSIA), Scuola Universitaria Professionale Della Svizzera Italiana (SUPSI), Università Della Svizzera Italiana (USI), Centro Galleria 2, Manno CH-6928, Switzerland. andrea.danani@supsi.ch.
  • Klobukowski M; Department of Chemistry, University of Alberta, Edmonton, AB T6G 2G2, Canada. mariusz.klobukowski@ualberta.ca.
  • Tuszynski JA; Department of Physics, University of Alberta, Edmonton, AB T6G 2E1, Canada. jackt@ualberta.ca.
Int J Mol Sci ; 18(10)2017 Sep 22.
Article em En | MEDLINE | ID: mdl-28937650
ABSTRACT
Microtubules are the main components of mitotic spindles, and are the pillars of the cellular cytoskeleton. They perform most of their cellular functions by virtue of their unique dynamic instability processes which alternate between polymerization and depolymerization phases. This in turn is driven by a precise balance between attraction and repulsion forces between the constituents of microtubules (MTs)-tubulin dimers. Therefore, it is critically important to know what contributions result in a balance of the interaction energy among tubulin dimers that make up microtubules and what interactions may tip this balance toward or away from a stable polymerized state of tubulin. In this paper, we calculate the dipole-dipole interaction energy between tubulin dimers in a microtubule as part of the various contributions to the energy balance. We also compare the remaining contributions to the interaction energies between tubulin dimers and establish a balance between stabilizing and destabilizing components, including the van der Waals, electrostatic, and solvent-accessible surface area energies. The energy balance shows that the GTP-capped tip of the seam at the plus end of microtubules is stabilized only by - 9 kcal/mol, which can be completely reversed by the hydrolysis of a single GTP molecule, which releases + 14 kcal/mol and destabilizes the seam by an excess of + 5 kcal/mol. This triggers the breakdown of microtubules and initiates a disassembly phase which is aptly called a catastrophe.
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Texto completo: 1 Base de dados: MEDLINE Assunto principal: Tubulina (Proteína) / Microtúbulos Idioma: En Ano de publicação: 2017 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Assunto principal: Tubulina (Proteína) / Microtúbulos Idioma: En Ano de publicação: 2017 Tipo de documento: Article