Han Xu, Zheng Yeting, Munro Catherine J, Ji Yiwen, Braunschweig Adam B
Department of Chemistry, University of Miami, 1301 Memorial Drive, Coral Gables, FL 33146, USA.
Department of Chemistry, University of Miami, 1301 Memorial Drive, Coral Gables, FL 33146, USA.
Curr Opin Biotechnol. 2015 Aug;34:41-7. doi: 10.1016/j.copbio.2014.11.016. Epub 2014 Dec 1.
Despite their central role in directing some of the most complex biological processes, carbohydrates--nature's other information carrying biopolymer--have been largely ignored as building blocks for synthetic hierarchical assemblies. The non-stoichiometric binding and astronomical diversity characteristic of carbohydrates could lead to tantalizingly complex assembly algorithms, but these attributes simultaneously increase the difficulty of preparing carbohydrate assemblies and anticipating their behavior. Convergences in biotechnology, nanotechnology, polymer chemistry, surface science, and supramolecular chemistry have led to many recent important breakthroughs in glycan microarrays and synthetic carbohydrate receptors, where the idiosyncrasies of carbohydrate structure and binding are increasingly considered. We hope to inspire more researchers to consider carbohydrate structure, diversity, and binding as attractive tools for constructing synthetic hierarchical assemblies.
尽管碳水化合物在指导一些最复杂的生物过程中发挥着核心作用——它是自然界中另一种携带信息的生物聚合物——但作为合成分级组装体的构建单元,碳水化合物在很大程度上被忽视了。碳水化合物的非化学计量结合和极其多样的特性可能会导致极其复杂的组装算法,但这些特性同时也增加了制备碳水化合物组装体以及预测其行为的难度。生物技术、纳米技术、高分子化学、表面科学和超分子化学的融合,在聚糖微阵列和合成碳水化合物受体方面带来了许多近期的重要突破,在这些领域中,碳水化合物结构和结合的特性越来越受到重视。我们希望激励更多的研究人员将碳水化合物的结构、多样性和结合视为构建合成分级组装体的有吸引力的工具。