水性深共晶溶剂驱动的生态友好型导电玉米芯生物质:高温下酶结构、储存和活性的合适介质

IF 7.1 1区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Niketa Yadav, Deepak Chahar, Meena Bisht, Pannuru Venkatesu
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引用次数: 0

摘要

利用木质纤维素生物质废料生产生物材料对各种应用都具有重要意义。然而,将其转化为有用材料所需的苛刻化学品、极端条件和繁琐工艺是其应用的主要瓶颈。本文采用氯化胆碱-甘油(ChCl-Gly)和氯化胆碱-乙二醇(ChCl-EG)这两种深共晶溶剂(DES),通过溶解热工艺,将玉米芯生物质(CB)的剩余废物转化为功能性碳质材料。对使用 CB-ChCl-Gly 和 CB-ChCl-EG 合成的 CB 基溶热碳材料进行了表征,以验证其中的形态变化。结果表明,合成的碳材料富含氧官能团,具有多孔、球状的表面结构。此外,还详细分析了合成的生物材料作为细胞色素-c(Cyt-c)生物相容性载体的可行性。与原生酶相比,过氧化物酶样活性显著增强了 1.5 倍。此外,还利用迈克尔斯-门顿方程验证了这些合成碳材料的生物相容性。此外,对固定这些生物质基碳材料后的 Cyt-c 进行的随时间和温度变化的研究表明,这些碳材料不仅保持了结构的完整性,还提高了酶的活性。各种生物物理技术验证了固定化后酶的二级和三级结构得到了改善。利用透射电子显微镜(TEM)和动态光散射(DLS)测量的流体力学尺寸(dH)和 zeta 电位值获得的显微照片显示,蛋白质成功固定在合成的碳材料上。有趣的是,在 CB-ChCl-EG 和 CB-ChCl-Gly 碳材料存在下,Cyt-c 的二级结构在较高温度下仍能保持不变。总之,本研究阐明了一种可持续来源和生态友好的溶热碳材料制备方法,并显示了其对 Cyt-c 活性和稳定性的有利影响。值得注意的是,CB 被证明是一种对蛋白质友好的宿主,将有助于蛋白质的长期包装,这可能为具有多种工业应用的生物大分子成像模式奠定基础。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Ecofriendly and Conductive Corn-Cob-Based Biomass Driven from Aqueous Deep Eutectic Solvents: A Suitable Media for Enzyme Structure, Storage, and Activity at High Temperature

Ecofriendly and Conductive Corn-Cob-Based Biomass Driven from Aqueous Deep Eutectic Solvents: A Suitable Media for Enzyme Structure, Storage, and Activity at High Temperature
Production of biomaterials from lignocellulosic biomass waste is of prime importance for diverse applications. However, the use of harsh chemicals, extreme conditions, and tedious processes to convert it into useful materials are the major bottlenecks for its application. Herein, leftover waste of corn-cob biomass (CB) was converted into functional carbonaceous material via a solvothermal process using water in deep eutectic solvents (DESs) by employing two DESs namely, choline chloride-glycerol (ChCl-Gly) and ChCl-ethylene glycol (ChCl-EG). The synthesized CB-based solvothermal carbon materials, using CB-ChCl-Gly and CB-ChCl-EG, were characterized to verify incorporated morphological variations. The obtained results showed that the synthesized carbon materials were rich in oxygen functionality with a more porous, globular surface structure. Further, the detailed analysis of the feasibility of the synthesized biomaterials as biocompatible carriers for cytochrome-c (Cyt-c) was evaluated. The peroxidase-like activity was remarkably enhanced up to 1.5-fold compared to the native enzyme. Further, the biocompatibility of these synthesized carbon materials was validated using the Michaelis–Menten equation. Besides this, time- and temperature-dependent studies of Cyt-c after immobilization of these biomass-based carbon materials demonstrated preservation of structural integrity as well as improved enzymatic activity. Various biophysical techniques validated the improved secondary and tertiary structures of the enzymes after immobilization. The micrograph obtained using transmission electron microscopy (TEM) microscopy and hydrodynamic size (dH) and zeta potential values measured using dynamic light scattering (DLS) showed successful protein immobilization on the synthesized carbon materials. Interestingly, the secondary structure of Cyt-c is maintained at higher temperatures in the presence of both CB-ChCl-EG and CB-ChCl-Gly carbon materials. Overall, this study elucidates a sustainable source and ecofriendly method of preparation of solvothermal carbon material and displays its beneficial influence on the activity and stability of Cyt-c. Remarkably, proving to be a protein-friendly host, CB will be helpful for long-term protein packing, which may provide a foundation for imaging modalities for the biomolecules with diverse industrial applications.
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来源期刊
ACS Sustainable Chemistry & Engineering
ACS Sustainable Chemistry & Engineering CHEMISTRY, MULTIDISCIPLINARY-ENGINEERING, CHEMICAL
CiteScore
13.80
自引率
4.80%
发文量
1470
审稿时长
1.7 months
期刊介绍: ACS Sustainable Chemistry & Engineering is a prestigious weekly peer-reviewed scientific journal published by the American Chemical Society. Dedicated to advancing the principles of green chemistry and green engineering, it covers a wide array of research topics including green chemistry, green engineering, biomass, alternative energy, and life cycle assessment. The journal welcomes submissions in various formats, including Letters, Articles, Features, and Perspectives (Reviews), that address the challenges of sustainability in the chemical enterprise and contribute to the advancement of sustainable practices. Join us in shaping the future of sustainable chemistry and engineering.
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