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用于靶向药物和基因递送的生物响应启发型纳米材料。

Bioresponse Inspired Nanomaterials for Targeted Drug and Gene Delivery.

作者信息

Sharma Shrestha, Javed Md Noushad, Pottoo Faheem Hyder, Rabbani Syed Arman, Barkat Md Abul, Sarafroz Md, Amir Mohd

机构信息

Department of Pharmacy, School of Medical and Allied Sciences, K. R. Mangalam University, Gurgaon, Haryana, India.

Department of Pharmaceutics, School of Pharmaceutical Education and Research (SPER), Jamia Hamdard University, New-Delhi, India.

出版信息

Pharm Nanotechnol. 2019;7(3):220-233. doi: 10.2174/2211738507666190429103814.

Abstract

The traditional drug delivery techniques are unresponsive to the altering metabolic states of the body and fail to achieve target specific drug delivery, which results in toxic plasma concentrations. In order to harmonize the drug release profiles, diverse biological and pathological pathways and factors involved have been studied and consequently, nanomaterials and nanostructures are engineered in a manner so that they respond and interact with the target cells and tissues in a controlled manner to induce promising pharmacological responses with least undesirable effects. The bioinspired nanoparticles such as carbon nanotubes, metallic nanoparticles, and quantum dots sense the localized host environment for diagnosis and treatment of pathological states. These biocompatible polymeric- based nanostructures bind drugs to the specific receptors, which renders them as ideal vehicles for the delivery of drugs and gene. The ultimate goal of bioinspired nanocomposites is to achieve personalized diagnostic and therapeutic outcomes. This review briefly discussed current trends; role, recent advancements as well as different approaches, which are being used for designing and fabrication of some bioinspired nanocarriers.

摘要

传统的药物递送技术对身体不断变化的代谢状态没有反应,无法实现靶向特定药物递送,从而导致血浆中毒性浓度。为了协调药物释放曲线,人们研究了多种相关的生物学和病理学途径及因素,因此,纳米材料和纳米结构的设计方式使其能够以可控方式与靶细胞和组织发生反应并相互作用,从而以最少的不良影响诱导出有前景的药理反应。诸如碳纳米管、金属纳米颗粒和量子点等仿生纳米颗粒可感知局部宿主环境,用于病理状态的诊断和治疗。这些基于生物相容性聚合物的纳米结构将药物与特定受体结合,使其成为药物和基因递送的理想载体。仿生纳米复合材料的最终目标是实现个性化的诊断和治疗效果。本文综述简要讨论了当前的趋势、作用、最新进展以及用于设计和制造一些仿生纳米载体的不同方法。

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