Advanced biotechnological applications of bacterial nanocellulose-based biopolymer nanohybrids: A review

IF 9.9 Q1 MATERIALS SCIENCE, COMPOSITES
Muhammad Wajid Ullah , Khulood Fahad Alabbosh , Atiya Fatima , Salman Ul Islam , Sehrish Manan , Mazhar Ul-Islam , Guang Yang
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引用次数: 0

Abstract

Bacterial nanocellulose (BNC), as a natural polymer, produced in vivo by bacteria and in vitro by the cell-free enzymes system, is comprised of nano-sized fibers. The pristine BNC possesses unique structural, physiological, and biological properties. Its fibrous and porous morphology allows the incorporation of natural and synthetic polymers, nanomaterials, clays, etc., while the presence of free hydroxyl (OH) groups allows its chemical modification with a variety of functional groups to form nanohybrids. These hybrids not only have superior properties to those of pristine BNC but possess additional functionalities imparted by the reinforcement materials. The properties of BNC-based nanohybrids can be tuned at macro, micro, and nano-scales as well as controlled at molecular levels. This review consolidates the current knowledge on the synthesis of β-(1,4)-glucan chains, their excretion and organization into high-ordered nano-sized fibers, as well as functionalization, both at physiological and molecular levels. It comparatively discusses the microbial and cell-free synthesis of cellulose and discusses the potential merits and limitations of each method. It further explores the methods used for developing BNC-based hybrids and discusses the synthesis-structure-properties relationship of BNC-based hybrids to justify their use for targeted biotechnological applications. A large portion of this review is devoted to discussing the recent trends in the preparation of BNC-based nanohybrids for their biotechnological applications, including biomedical (i.e., wound healing, cardiovascular devices, neural tissues, bone and cartilage tissues, dental implants, and drug delivery) and non-biomedical (biosensing, cosmetics, food, bio- and optoelectronics, environment, energy, and additive manufacturing). Finally, it provides an outlook on the future BNC research for human welfare.

细菌纳米纤维素基纳米杂交种的先进生物技术应用综述
细菌纳米纤维素(BNC)是一种天然聚合物,在体内由细菌产生,在体外由无细胞酶系统产生,由纳米级纤维组成。原始 BNC 具有独特的结构、生理和生物特性。它的纤维状和多孔状形态允许加入天然和合成聚合物、纳米材料、粘土等,而游离羟基(OH)基团的存在则允许用各种官能团对其进行化学修饰,形成纳米混合物。这些混合物不仅具有比原始 BNC 更优越的性能,而且还具有增强材料赋予的额外功能。基于 BNC 的纳米杂化材料的特性可以在宏观、微观和纳米尺度上进行调整,也可以在分子水平上进行控制。本综述整合了目前有关 β-(1,4)-葡聚糖链的合成、排泄和组织成高阶纳米级纤维以及在生理和分子水平上进行功能化的知识。报告比较讨论了纤维素的微生物合成和无细胞合成,并讨论了每种方法的潜在优点和局限性。它还进一步探讨了开发基于 BNC 的杂交纤维的方法,并讨论了基于 BNC 的杂交纤维的合成-结构-性能关系,以证明它们可用于目标生物技术应用。本综述的很大一部分专门讨论了制备 BNC 基纳米杂化物用于生物技术应用的最新趋势,包括生物医学(即伤口愈合、心血管设备、神经组织、骨和软骨组织、牙科植入物和药物输送)和非生物医学(生物传感、化妆品、食品、生物和光电子、环境、能源和增材制造)。最后,报告对未来 BNC 研究为人类福祉服务的前景进行了展望。
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
Advanced Industrial and Engineering Polymer Research
Advanced Industrial and Engineering Polymer Research Materials Science-Polymers and Plastics
CiteScore
26.30
自引率
0.00%
发文量
38
审稿时长
29 days
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