纳米纤维素
化学
分子动力学
磷酸化
核磁共振波谱
纤维
纤维素
产量(工程)
质子核磁共振
生物物理学
分子模型
原子力显微镜
结晶学
二维核磁共振波谱
化学物理
极化(电化学)
蛋白质结构
计算化学
化学位移
异核单量子相干光谱
核磁共振谱数据库
作者
Tomohito Yagita,Subhradip Paul,Wassilios Papawassiliou,Akane Sakiyama,Yuka Tomita,Tsuguyuki Saito,Sabine Hediger,Gaël De Paëpe,Shuji Fujisawa
摘要
High Resolution Image Download MS PowerPoint Slide Atomic-level details of nanocellulose structure, particularly at its surface, remain difficult to resolve and are therefore poorly understood. Here we apply dynamic nuclear polarization (DNP)-enhanced solid-state NMR to directly probe the surface chemistry of phosphorylated cellulose nanofibers. Multidimensional 13 C– 13 C and 31 P– 13 C correlation experiments reveal both mono- and diphosphate substitution, with C2 and C6 identified as the preferred sites. Quantitative multiCP analysis establishes the degree of phosphorylation and the conformational distribution of surface phosphate groups, while 31 P– 31 P correlations reveal their corresponding spatial distribution. The site-specific phosphorylation derived from DNP-NMR data was used to construct a CNF model for molecular dynamics (MD) simulations, which reproduce the fibril twisting observed by AFM and yield 31 P– 31 P radial distribution functions consistent with the DNP-NMR data. In addition, the MD-derived C6 phosphorylated and nonphosphorylated conformational distribution both within the fibril core and at its surface is in agreement with the DNP-NMR data. To rationalize the preferred conformations of phosphorylated C6 groups observed in both NMR experiments and MD simulations, DFT calculations were carried out and show that these conformations are governed by facet-dependent hydrogen-bond formation at the nanocellulose surface.
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