Green synthesis of magnetic bio-Graphene nanohybrid for the immobilization of hydrolytic enzymes towards sustainable bioconversion of cellulose

IF 4.6 3区 化学 Q2 CHEMISTRY, MULTIDISCIPLINARY
RSC Advances Pub Date : 2025-10-06 DOI:10.1039/D5RA06271C
Christina Alatzoglou, Michaela Patila, Panagiotis G. Ziogas, Anastasia Skonta, Despoina Politi, Konstantinos Spyrou, Angela S. Kaloudi, Alexios P. Douvalis, Dimitrios P. Gournis and Haralambos Stamatis
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Abstract

In this work, we report a green and sustainable synthetic route for producing magnetic few-layer bio-Graphene (MbG) for the first time. Bio-Graphene (bG) was prepared via a green method using an aqueous olive leaf extract (OLE) as both the exfoliating and stabilizing agent, aiming to reduce the environmental impact of the traditional chemical methods. In the following step, iron oxide nanoparticles were created in situ on bG-OLE via co-precipitation using ferrous precursors. MbG was subsequently used to support the co-immobilization of cellulase (cel) and β-glucosidase (bgl), enabling the design of a recyclable, magnetically separable nanobiocatalyst. Various spectroscopic and microscopic techniques were employed to characterize the produced MbG and the resulting nanobiocatalysts. Both simultaneous and sequential immobilization strategies were applied to evaluate the synergy between cel and bgl. Several parameters were studied, such as the support-to-enzyme mass ratio, immobilization incubation time, and the order in which the enzymes were added. Although the 1-hour simultaneous co-immobilization resulted in low cel and bgl immobilization yields, the highest specific activity was observed (∼0.33 units mg−1). Moreover, the bi-enzymatic nanobiocatalyst demonstrated better reusability for carboxymethyl (CMC) and microcrystalline cellulose (Avicel) hydrolysis compared to the mono-enzymatic nanobiocatalyst. Subsequently, the mono- and bi-enzymatic systems were employed in continuous-flow microreactors for the hydrolysis of CMC towards glucose production. The bi-enzymatic system exhibited significantly higher turnover frequency (TOF) (0.105 h−1) and operational stability than the mono-enzymatic system (0.029 h−1). The entire synthetic route is characterized by a minimal environmental footprint, offering a platform for sustainable bioprocessing.

Abstract Image

绿色合成磁性生物-石墨烯纳米杂化物,用于固定化水解酶,实现纤维素的可持续生物转化。
在这项工作中,我们首次报道了一种绿色和可持续的合成方法来生产磁性少层生物石墨烯(MbG)。生物石墨烯(bG)采用绿色方法制备,以橄榄叶水提取物(OLE)作为去角质和稳定剂,旨在减少传统化学方法对环境的影响。在接下来的步骤中,通过铁前体共沉淀法在bG-OLE上原位制备了氧化铁纳米颗粒。随后,MbG被用于支持纤维素酶(cel)和β-葡萄糖苷酶(bgl)的共固定化,从而设计出可回收、可磁分离的纳米生物催化剂。采用各种光谱和显微技术来表征所生产的MbG和所得到的纳米生物催化剂。同时和顺序固定策略被应用于评估细胞和bgl之间的协同作用。研究了载体与酶的质量比、固定化培养时间和酶的添加顺序等参数。虽然同时共固定1小时导致细胞和bgl固定产量低,但观察到最高的比活性(~ 0.33单位mg-1)。此外,与单酶纳米生物催化剂相比,双酶纳米生物催化剂在羧甲基(CMC)和微晶纤维素(Avicel)水解方面具有更好的可重复使用性。随后,单酶和双酶系统在连续流微反应器中用于CMC水解生产葡萄糖。双酶体系的TOF (0.105 h-1)和操作稳定性显著高于单酶体系(0.029 h-1)。整个合成路线的特点是环境足迹最小,为可持续的生物处理提供了一个平台。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
RSC Advances
RSC Advances chemical sciences-
CiteScore
7.50
自引率
2.60%
发文量
3116
审稿时长
1.6 months
期刊介绍: An international, peer-reviewed journal covering all of the chemical sciences, including multidisciplinary and emerging areas. RSC Advances is a gold open access journal allowing researchers free access to research articles, and offering an affordable open access publishing option for authors around the world.
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