Department of Analytical Chemistry, Faculty of Chemistry, University of Tabriz, 51666-16471, Tabriz, Iran.
Department of Pharmaceutical Sciences, Jerry H. Hodge School of Pharmacy, Texas Tech University Health Sciences Center (TTUHSC), Amarillo, TX, USA.
Chemosphere. 2022 Dec;309(Pt 1):136633. doi: 10.1016/j.chemosphere.2022.136633. Epub 2022 Sep 30.
Since the development of enzyme electrodes, the research area of glucose biosensing has seen outstanding progress and improvement. Numerous sensing platforms have been developed based on different immobilization techniques and improved electron transfer between the enzyme and electrode. Interestingly, these platforms have consistently used innovative nanostructures and nanocomposites. In recent years, layered double hydroxides (LDHs) have become key tools in the field of analytical chemistry owing to their outstanding features and benefits, such as facile synthesis, cost-effectiveness, substantial surface area, excellent catalytic performance, and biocompatibility. LDHs are often synthesized as nanomaterial composites or manufactured with specific three-dimensional structures. The purpose of this review is to illustrate the biosensing prospects of LDH-based glucose sensors and the need for improvement. First, various clinical and conventional approaches for glucose determination are discussed. The definitions, types, and various synthetic methodologies of LDHs are then explained. Subsequently, we discuss the various research studies regarding LDH-based electrochemical and optical assays, focusing on modified systems, improved electron transfers pathways (through developments in surface science), and different sensing designs based on nanomaterials. Finally, a summary of the current limitations and future challenges in glucose analysis is described, which may facilitate further development and applications.
自酶电极发展以来,葡萄糖生物传感的研究领域取得了显著的进展和改善。基于不同的固定化技术和改进的酶与电极之间的电子转移,已经开发出了许多传感平台。有趣的是,这些平台一直使用创新的纳米结构和纳米复合材料。近年来,层状双氢氧化物(LDHs)由于其出色的特性和优势,如易于合成、经济实惠、大的表面积、优异的催化性能和生物相容性,已成为分析化学领域的重要工具。LDHs 通常被合成纳米材料复合材料或采用特定的三维结构制造。本综述的目的是说明基于 LDH 的葡萄糖传感器的生物传感前景和改进的必要性。首先,讨论了各种用于葡萄糖测定的临床和常规方法。然后解释了 LDH 的定义、类型和各种合成方法。随后,我们讨论了基于 LDH 的电化学和光学分析的各种研究,重点是改进的系统、改进的电子转移途径(通过表面科学的发展)以及基于纳米材料的不同传感设计。最后,描述了葡萄糖分析中当前的局限性和未来的挑战,这可能有助于进一步的发展和应用。