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首页> 外文期刊>Biomacromolecules >Real Time and Quantitative Imaging of Lignocellulosic Films Hydrolysis by Atomic Force Microscopy Reveals Lignin Recalcitrance at Nanoscale
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Real Time and Quantitative Imaging of Lignocellulosic Films Hydrolysis by Atomic Force Microscopy Reveals Lignin Recalcitrance at Nanoscale

机译:用原子力显微镜测量的木质纤维素膜水解的实时和定量成像显示在纳米级的木质素克累积

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摘要

Lignocellulosic biomass is considered as a sustainable source of energy and chemicals, but its recalcitrance to bioconversion still limits its use. In this paper, a strategy based on two aspects was developed to improve our knowledge on the lignin recalcitrance to enzymatic hydrolysis. First, lignocellulosic films of cellulose nanofibrils (CNFs) with increasing content of lignin (up to 40%) were prepared. Thanks to in situ real time Atomic Force Microscopy (AFM) measurements during the hydrolysis and by comparison with biochemical assays, the use of such films allows to fully assess the importance of the lignin content and of the arrangement between CNFs and lignin on the hydrolysis efficiency. In a second time, contrary to other studies by AFM which only followed a specific structure during enzymatic processes mostly on simple systems (CNFs or cellulose nanocrystals), a quantitative analysis of in-situ time-lapse measurements was developed. It enables to accurately address lignocellulosic biomass recalcitrance mechanisms mediated by lignin at nanoscale. Such analysis could pave the way for the use of a quantitative criteria to visualize in situ deconstruction of complex lignocellulosic substrates. Coupling the use of lignocellulosic films and dynamical AFM quantitative analysis to follow the evolution of the structure at nanoscale might lead to an effective targeting of new promising bioconversion strategies.
机译:木质纤维素生物量被认为是能量和化学品的可持续源,但其对生物增强仍然限制了其使用。在本文中,开发了一种基于两个方面的策略,以提高我们对酶水解的木质素顽固的了解。首先,制备纤维素纳米纤维(CNFS)的木质纤维素薄膜,其含量增加木质素含量(高达40%)。由于原位实时原子力显微镜(AFM)测量在水解期间和与生物化学测定的比较,这种薄膜的使用允许充分评估木质素含量的重要性和CNF和木质素之间的安排对水解效率的影响。第二次,与AFM的其他研究相反,仅在酶促过程中仅遵循了大多数在简单的系统(CNF或纤维素纳米晶体)期间的特定结构,开发了原位时间流逝测量的定量分析。它能够准确地解决木质素介导的木质素骨髓性批量级机制,在纳米载体处介导。这种分析可以铺平使用定量标准以便在原位解构复杂木质纤维素基材上可视化。偶联木质纤维素膜和动力学AFM定量分析以遵循纳米级结构的进化可能导致新有前景的生物转化策略的有效靶向。

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