4.6 Review

Rational engineering of physicochemical properties of nanomaterials for biomedical applications with nanotoxicological perspectives

期刊

NANO CONVERGENCE
卷 3, 期 -, 页码 -

出版社

SPRINGER
DOI: 10.1186/s40580-016-0064-z

关键词

Rational design; Nanomaterials; Nanomedicine; Physicochemical; Nanotoxicology

资金

  1. Department of Science and Technology (DST), Government of India [SB/ITS-Y/0988/2014-15]
  2. Karnataka State Council for Science and Technology (KSCST) [7.1.03/SPP/1018]

向作者/读者索取更多资源

Innovative engineered nanomaterials are at the leading edge of rapidly emerging fields of nanobiotechnology and nanomedicine. Meticulous synthesis, unique physicochemical properties, manifestation of chemical or biological moieties on the surface of materials make engineered nanostructures suitable for a variety of biomedical applications. Besides, tailored nanomaterials exhibit entirely novel therapeutic applications with better functionality, sensitivity, efficiency and specificity due to their customized unique physicochemical and surface properties. Additionally, such designer made nanomaterials has potential to generate series of interactions with various biological entities including DNA, proteins, membranes, cells and organelles at nano-bio interface. These nano-bio interactions are driven by colloidal forces and predominantly depend on the dynamic physicochemical and surface properties of nanomaterials. Nevertheless, recent development and atomic scale tailoring of various physical, chemical and surface properties of nanomaterials is promising to dictate their interaction in anticipated manner with biological entities for biomedical applications. As a result, rationally designed nanomaterials are in extensive demand for bio-molecular detection and diagnostics, therapeutics, drug and gene delivery, fluorescent labelling, tissue engineering, biochemical sensing and other pharmaceuticals applications. However, toxicity and risk associated with engineered nanomaterials is rather unclear or not well understood; which is gaining considerable attention and the field of nanotoxicology is evolving promptly. Therefore, this review explores current knowledge of articulate engineering of nanomaterials for biomedical applications with special attention on potential toxicological perspectives.

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