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Nanomechanics of cellulose deformation reveal molecular defects that facilitate natural deconstruction.
Ciesielski, Peter N; Wagner, Ryan; Bharadwaj, Vivek S; Killgore, Jason; Mittal, Ashutosh; Beckham, Gregg T; Decker, Stephen R; Himmel, Michael E; Crowley, Michael F.
Afiliação
  • Ciesielski PN; Biosciences Center, National Renewable Energy Laboratory, Golden, CO 80401; Peter.Ciesielski@nrel.gov michael.crowley@nrel.gov.
  • Wagner R; Material Measurement Laboratory, National Institute of Standards and Technology, Boulder, CO.
  • Bharadwaj VS; Biosciences Center, National Renewable Energy Laboratory, Golden, CO 80401.
  • Killgore J; Material Measurement Laboratory, National Institute of Standards and Technology, Boulder, CO.
  • Mittal A; Biosciences Center, National Renewable Energy Laboratory, Golden, CO 80401.
  • Beckham GT; National Bioenergy Center, National Renewable Energy Laboratory, Golden, CO 80401.
  • Decker SR; Biosciences Center, National Renewable Energy Laboratory, Golden, CO 80401.
  • Himmel ME; Biosciences Center, National Renewable Energy Laboratory, Golden, CO 80401.
  • Crowley MF; Biosciences Center, National Renewable Energy Laboratory, Golden, CO 80401; Peter.Ciesielski@nrel.gov michael.crowley@nrel.gov.
Proc Natl Acad Sci U S A ; 116(20): 9825-9830, 2019 05 14.
Article em En | MEDLINE | ID: mdl-31036649
Technologies surrounding utilization of cellulosic materials have been integral to human society for millennia. In many materials, controlled introduction of defects provides a means to tailor properties, introduce reactivity, and modulate functionality for various applications. The importance of defects in defining the behavior of cellulose is becoming increasingly recognized. However, fully exploiting defects in cellulose to benefit biobased materials and conversion applications will require an improved understanding of the mechanisms of defect induction and corresponding molecular-level consequences. We have identified a fundamental relationship between the macromolecular structure and mechanical behavior of cellulose nanofibrils whereby molecular defects may be induced when the fibrils are subjected to bending stress exceeding a certain threshold. By nanomanipulation, imaging, and molecular modeling, we demonstrate that cellulose nanofibrils tend to form kink defects in response to bending stress, and that these macromolecular features are often accompanied by breakages in the glucan chains. Direct observation of deformed cellulose fibrils following partial enzymatic digestion reveals that processive cellulases exploit these defects as initiation sites for hydrolysis. Collectively, our findings provide a refined understanding of the interplay between the structure, mechanics, and reactivity of cellulose assemblies.
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Texto completo: 1 Base de dados: MEDLINE Assunto principal: Celulose Tipo de estudo: Prognostic_studies Idioma: En Ano de publicação: 2019 Tipo de documento: Article

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