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基于酶解的平台技术可高效、高产量地生产纤维素纳米球。

An enzymatic hydrolysis-based platform technology for the efficient high-yield production of cellulose nanospheres.

机构信息

Laboratory of Applied Bionanotechnology, Department of Biotechnology, Engineering School of Lorena, University of São Paulo, Lorena, SP 12602-810, Brazil.

Laboratory of Applied Bionanotechnology, Department of Biotechnology, Engineering School of Lorena, University of São Paulo, Lorena, SP 12602-810, Brazil.

出版信息

Int J Biol Macromol. 2024 Oct;278(Pt 1):134602. doi: 10.1016/j.ijbiomac.2024.134602. Epub 2024 Aug 9.

DOI:10.1016/j.ijbiomac.2024.134602
PMID:39127282
Abstract

This study evaluates the feasibility of using enzymatic technology to produce novel nanostructures of cellulose nanomaterials, specifically cellulose nanospheres (CNS), through enzymatic hydrolysis with endoglucanase and xylanase of pre-treated cellulose fibers. A statistical experimental design facilitated a comprehensive understanding of the process parameters, which enabled high yields of up to 82.7 %, while maintaining a uniform diameter of 54 nm and slightly improved crystallinity and thermal stability. Atomic force microscopy analyses revealed a distinct CNS formation mechanism, where initial fragmentation of rod-like nanoparticles and subsequent self-assembly of shorter rod-shaped nanoparticles led to CNS formation. Additionally, adjustments in process parameters allowed precise control over the CNS diameter, ranging from 20 to 100 nm, highlighting the potential for customization in high-performance applications. Furthermore, this study demonstrates how the process framework, originally developed for cellulose nanocrystals (CNC) production, was successfully adapted and optimized for CNS production, ensuring scalability and efficiency. In conclusion, this study emphasizes the versatility and efficiency of the enzyme-based platform for producing high-quality CNS, providing valuable insights into energy consumption for large-scale economic and environmental assessments.

摘要

本研究评估了利用酶技术生产新型纤维素纳米材料纳米结构的可行性,特别是通过预处理纤维素纤维的内切葡聚糖酶和木聚糖酶的酶解作用生产纤维素纳米球(CNS)。统计实验设计有助于全面了解工艺参数,从而实现高达 82.7%的高产率,同时保持 54nm 的均匀直径,略微提高结晶度和热稳定性。原子力显微镜分析揭示了一种独特的 CNS 形成机制,其中最初的棒状纳米颗粒的碎片化和随后较短棒状纳米颗粒的自组装导致 CNS 的形成。此外,通过调整工艺参数,可以精确控制 CNS 的直径,范围从 20 到 100nm,突出了在高性能应用中进行定制的潜力。此外,本研究表明,最初为生产纤维素纳米晶(CNC)而开发的工艺框架如何成功地适应和优化用于 CNS 生产,确保了可扩展性和效率。总之,本研究强调了基于酶的平台生产高质量 CNS 的多功能性和效率,为大规模经济和环境评估的能源消耗提供了有价值的见解。

相似文献

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An enzymatic hydrolysis-based platform technology for the efficient high-yield production of cellulose nanospheres.基于酶解的平台技术可高效、高产量地生产纤维素纳米球。
Int J Biol Macromol. 2024 Oct;278(Pt 1):134602. doi: 10.1016/j.ijbiomac.2024.134602. Epub 2024 Aug 9.
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High-yield production of rod-like and spherical nanocellulose by controlled enzymatic hydrolysis of mechanically pretreated cellulose.通过机械预处理纤维素的控制酶解生产高产棒状和球形纳米纤维素。
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Preparation of cellulose nanospheres via combining ZnCl·3HO pretreatment and p-toluenesulfonic hydrolysis as a two-step method.通过 ZnCl·3HO 预处理和对甲苯磺酸水解相结合的两步法制备纤维素纳米球。
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Combining biomass wet disk milling and endoglucanase/β-glucosidase hydrolysis for the production of cellulose nanocrystals.采用生物质湿盘磨法和内切葡聚糖酶/β-葡萄糖苷酶水解法生产纤维素纳米晶体。
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Controllable self-assembly of cellulose nanospheres through phosphoric acid triggered dissolution-regeneration and degradation.通过磷酸引发的溶解-再生和降解来控制纤维素纳米球的可控自组装。
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Cellulose nanostructures obtained using enzymatic cocktails with different compositions.使用具有不同组成的酶混合物获得的纤维素纳米结构。
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