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Three-dimensional architecture and surface functionality of coccolith base plates.
Marzec, B; Walker, J M; Panagopoulou, M; Jhons, Y; Clare, D; Wheeler, A; Shaver, M P; Nudelman, F.
Afiliação
  • Marzec B; School of Chemistry, University of Edinburgh, King's Buildings, Edinburgh EH9 3FJ, United Kingdom.
  • Walker JM; School of Chemistry, University of Edinburgh, King's Buildings, Edinburgh EH9 3FJ, United Kingdom.
  • Panagopoulou M; MRC Centre for Inflammation Research, University of Edinburgh, 47 Little France Crescent, Edinburgh EH16 4TJ, United Kingdom.
  • Jhons Y; School of Chemistry, University of Edinburgh, King's Buildings, Edinburgh EH9 3FJ, United Kingdom.
  • Clare D; Electron Bio-Imaging Centre, Diamond Light Source Ltd., Harwell Science & Innovation Campus, Didcot OX11 0DE, United Kingdom.
  • Wheeler A; MRC Human Genetics Unit, Institute of Genetics and Molecular Medicine, University of Edinburgh, Crewe Road, Edinburgh EH4 2XU, United Kingdom.
  • Shaver MP; School of Materials, The University of Manchester, Oxford Road, Manchester M13 9PL, United Kingdom.
  • Nudelman F; School of Chemistry, University of Edinburgh, King's Buildings, Edinburgh EH9 3FJ, United Kingdom. Electronic address: fabio.nudelman@ed.ac.uk.
J Struct Biol ; 208(2): 127-136, 2019 11 01.
Article em En | MEDLINE | ID: mdl-31437582
Coccolithophores are marine phytoplankton that are among the most prolific calcifiers widespread in Earth's oceans, playing a crucial role in the carbon cycle and in the transport of organic matter to the deep sea. These organisms produce highly complex mineralized scales that are composed of hierarchical assemblies of nano-crystals of calcium carbonate in the form of calcite. Coccolith formation in vivo occurs within compartmentalized mineralisation vesicles derived from the Golgi body, which contain coccolith-associated polysaccharides ('CAPs') providing polymorph selection and mediating crystal growth kinetics, and oval organic mineralisation templates, also known as base plates, which promote heterogenous nucleation and further mechanical interlocking of calcite single crystals. Although the function of coccolith base plates in controlling crystal nucleation have been widely studied, their 3D spatial organization and the chemical functional groups present on the crystal nucleation sites, which are two crucial features impacting biomineralization, remain unsolved. Utilising cryo-electron tomography we show that base plates derived from an exemplary coccolithophore Pleurochrysis carterae (Pcar) in their native hydrated state have a complex 3-layered structure. We further demonstrate, for the first time, the edge and rim of the base plate - where the crystals nucleate - are rich in primary amine functionalities that provide binding targets for negatively charged complexes composed of synthetic macromolecules and Ca2+ ions. Our results indicate that electrostatic interactions between the negatively charged biogenic CAPs and the positively charged rim of the base plate are sufficient to mediate the transport of Ca2+ cations to the mineralization sites.
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Texto completo: 1 Base de dados: MEDLINE Assunto principal: Haptófitas Idioma: En Ano de publicação: 2019 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Assunto principal: Haptófitas Idioma: En Ano de publicação: 2019 Tipo de documento: Article