Mishra Snehasish, Singh Puneet Kumar, Pattnaik Ritesh, Kumar Subrat, Ojha Sanjay Kumar, Srichandan Haragobinda, Parhi Pankaj Kumar, Jyothi Rajesh Kumar, Sarangi Prakash Kumar
BDTC, Bioenergy Lab, School of Biotechnology, KIIT Deemed University, Bhubaneswar, India.
School of Biotechnology, KIIT Deemed University, Bhubaneswar, India.
Front Bioeng Biotechnol. 2022 Mar 8;10:780409. doi: 10.3389/fbioe.2022.780409. eCollection 2022.
The potential of cellulose nanocomposites in the new-generation super-performing nanomaterials is huge, primarily in medical and environment sectors, and secondarily in food, paper, and cosmetic sectors. Despite substantial illumination on the molecular aspects of cellulose synthesis, various process features, namely, cellular export of the nascent polysaccharide chain and arrangement of cellulose fibrils into a quasi-crystalline configuration, remain obscure. To unleash its full potential, current knowledge on nanocellulose dispersion and disintegration of the fibrillar network and the organic/polymer chemistry needs expansion. Bacterial cellulose biosynthesis mechanism for scaled-up production, namely, the kinetics, pathogenicity, production cost, and product quality/consistency remain poorly understood. The bottom-up bacterial cellulose synthesis approach makes it an interesting area for still wider and promising high-end applications, primarily due to the nanosynthesis mechanism involved and the purity of the cellulose. This study attempts to identify the knowledge gap and potential wider applications of bacterial cellulose and bacterial nanocellulose. This review also highlights the manufacture of bacterial cellulose through low-cost substrates, that is, mainly waste from brewing, agriculture, food, and sugar industries as well as textile, lignocellulosic biorefineries, and pulp mills.
纤维素纳米复合材料在新一代高性能纳米材料中的潜力巨大,主要体现在医疗和环境领域,其次是食品、造纸和化妆品领域。尽管对纤维素合成的分子层面已有大量研究,但各种工艺特征,即新生多糖链的细胞输出以及纤维素原纤维排列成准晶体结构,仍不清楚。为充分发挥其潜力,目前关于纳米纤维素分散、纤维网络解体以及有机/聚合物化学的知识需要扩充。用于大规模生产的细菌纤维素生物合成机制,即动力学、致病性、生产成本以及产品质量/一致性,仍了解不足。自下而上的细菌纤维素合成方法使其成为一个极具吸引力的领域,有望实现更广泛的高端应用,这主要得益于所涉及的纳米合成机制以及纤维素的纯度。本研究旨在找出细菌纤维素和细菌纳米纤维素的知识空白以及潜在的更广泛应用。本综述还强调了通过低成本底物制造细菌纤维素,这些底物主要是酿造、农业、食品和制糖工业以及纺织、木质纤维素生物精炼厂和纸浆厂产生的废料。