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纳结构电子学:一种多功能工具,用于破译生物界面上纳米颗粒与细胞蛋白、核酸和磷脂的相互作用。

Nanoarchitectronics: A versatile tool for deciphering nanoparticle interaction with cellular proteins, nucleic acids and phospholipids at biological interfaces.

机构信息

Manipal College of Pharmaceutical Sciences, Manipal Academy of Higher Education, Manipal, Karnataka, India.

Manipal College of Pharmaceutical Sciences, Manipal Academy of Higher Education, Manipal, Karnataka, India.

出版信息

Int J Biol Macromol. 2020 May 15;151:136-158. doi: 10.1016/j.ijbiomac.2020.02.150. Epub 2020 Feb 15.

DOI:10.1016/j.ijbiomac.2020.02.150
PMID:32070745
Abstract

Nano-Bio interface involves the dynamic interactions of nanomaterial and a living system. Association of nanotechnology and biology has been a valuable tool in improving the potentials of biomedical research. Exquisite structures of nanoparticles comparable in size with biomolecules and the unique possibility of tuning their chemical and physical functionality at small length scales make them more attractive for biological research. In this review, we comprehend Nano-Bio interactions at cellular levels and discuss parameters involved in determining nano-bio interactions. Techniques used for the characterization of nano-bio interactions have also been discussed. Applications of nanotechnology as a tool for manipulating cellular behaviors, studying important biological processes such as adhesion, morphology, and proliferation, and nanoparticles as nanoprobes and nanosensors have been discussed here. Knowledge of these interactions and processes at a cellular level will be useful for understanding the bioenergetics of subcellular organelle and might provide innovative ideas for designing new tools to enhance the understanding of cellular functions. Further, detailed information about the cellular and subcellular processes will be rather helpful in designing new nanocarriers and drug discovery.

摘要

纳米 - 生物界面涉及纳米材料和生命系统的动态相互作用。纳米技术与生物学的结合已成为提高生物医学研究潜力的宝贵工具。纳米粒子的精细结构与生物分子相当,并且在小尺寸范围内调整其化学和物理功能的独特可能性,使它们更吸引生物研究。在这篇综述中,我们理解细胞水平的纳米 - 生物相互作用,并讨论决定纳米 - 生物相互作用的参数。还讨论了用于表征纳米 - 生物相互作用的技术。这里还讨论了纳米技术作为操纵细胞行为的工具的应用,研究重要的生物学过程,如粘附、形态和增殖,以及纳米粒子作为纳米探针和纳米传感器。在细胞水平上了解这些相互作用和过程将有助于理解亚细胞器的生物能量,并可能为设计新工具提供创新思路,以增强对细胞功能的理解。此外,有关细胞和亚细胞过程的详细信息将非常有助于设计新的纳米载体和药物发现。

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