Structurally programmable, functionally tuneable dendrimers in biomedical applications.

IF 5.8 3区 医学 Q1 MATERIALS SCIENCE, BIOMATERIALS Biomaterials Science Pub Date : 2025-01-13 DOI:10.1039/d4bm01475h
Geethu Prakash, Bhagyesh Parmar, Dhiraj Bhatia
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Abstract

The application of nanotechnology in medical biology has seen a significant rise in recent years because of the introduction of novel tools that include supramolecular systems, complexes, and composites. Dendrimers are one of the remarkable examples of such tools. These spherical, regularly branching structures with enhanced cell compatibility and bioavailability have shown to be an excellent option for gene or drug administration. They are the fourth important architectural group of polymers after the three well-known types (branched, cross-linked, and linear polymers). These tiny macromolecules generate nanometer-size structures consisting of branching, with identical units assembled around a central core. By regulating dendrimer synthesis, it is possible to manipulate both their molecular weight and chemical content carefully, permitting predictable tailoring of their biocompatibility and pharmacokinetics, making them a promising candidate for biomedical uses. In contrast to their more easily obtainable synthetic techniques and comparable functions in hyperbranched polymers, dendrimers have demonstrated efficacy in biological applications, exhibiting remarkable sample purity and synthesizing reproducibility. Dendrimers are appealing as basic materials for manufacturing nanomaterials for uses in many different disciplines because of their highly specified chemical structure and globular form. Thus, much effort has been made to create functional materials with dendrimers. Especially looking at dendrimer-based nanomaterials meant for use in the biomedical domain, this review discusses the design, types, properties, and function of bionanomaterials employing several techniques, including surface modification, assembly, and hybrid development, and their uses.

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生物医学应用中结构可编程、功能可调整的树枝状聚合物。
近年来,纳米技术在医学生物学中的应用有了显著的增长,因为引入了包括超分子系统、复合物和复合材料在内的新工具。树突状分子就是这类工具的典型例子之一。这些球形、有规律的分支结构具有增强的细胞相容性和生物利用度,已被证明是基因或药物管理的绝佳选择。它们是继三种众所周知的聚合物(支链、交联和线性聚合物)之后的第四个重要的聚合物结构组。这些微小的大分子产生了由分支组成的纳米大小的结构,相同的单元围绕一个中心核心组装。通过调节树状大分子的合成,可以小心地操纵它们的分子量和化学成分,允许对它们的生物相容性和药代动力学进行可预测的调整,使它们成为生物医学用途的有希望的候选者。与它们更容易获得的合成技术和在超支化聚合物中的类似功能相比,树状大分子在生物应用中表现出了卓越的样品纯度和合成可重复性。树状大分子由于其高度特定的化学结构和球状结构而成为制造纳米材料的基础材料,用于许多不同的学科。因此,人们已经付出了很大的努力来创造具有树状大分子的功能材料。特别是着眼于用于生物医学领域的树突基纳米材料,本文讨论了采用几种技术的生物纳米材料的设计、类型、性质和功能,包括表面改性、组装和杂交开发及其用途。
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来源期刊
Biomaterials Science
Biomaterials Science MATERIALS SCIENCE, BIOMATERIALS-
CiteScore
11.50
自引率
4.50%
发文量
556
期刊介绍: Biomaterials Science is an international high impact journal exploring the science of biomaterials and their translation towards clinical use. Its scope encompasses new concepts in biomaterials design, studies into the interaction of biomaterials with the body, and the use of materials to answer fundamental biological questions.
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