揭示拓扑纳米结构在先进药物范例中的变革潜力:对其复杂领域的探索

IF 2.6 4区 材料科学 Q3 CHEMISTRY, MULTIDISCIPLINARY
Oshik S, Prasiddhi Naik, Kiran Kumar G. B, Chethan Patil, Prakash Goudanavar
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引用次数: 0

摘要

拓扑纳米结构以其分子精度、空间自组织和生物功能灵活性,彻底改变了药物输送、免疫治疗和分子诊断。在这些使用纳米级拓扑限制的复杂系统中,三维结构复杂性以无与伦比的灵敏度和控制力驱动生物相互作用。DNA折纸支架、超分子螯合物和可编程t细胞接合物能够实现动态的、刺激反应性的药物释放、免疫调节和靶向细胞界面。时空纳米系统协调,是关于仔细管理和同步拓扑纳米结构(如囊泡和纳米笼)的位置和时间,以实现生物系统中精确和可控的药物递送,改善药代动力学特征,破坏药物耐药性,免疫清除和全身毒性。然而,结构稳定性、合成可扩展性、生物相容性和监管审查阻碍了这些结构的翻译。计算驱动的分子地形学、生物正交共轭方法(生物实体可以在不干扰其自然代谢活动的情况下进行选择性和高效的化学反应)以及自适应仿生框架有望随着拓扑学、纳米技术和制药科学的融合而改变治疗景观。在精准医学和纳米药理学的背景下,本文旨在通过探讨拓扑纳米结构的理论基础、转化的实用性和潜在的长期临床后果,来解读拓扑纳米结构对生物医学创新的深层影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Unraveling the transformative potential of topological nanostructures in advanced pharmaceutical paradigms: an exploration of their complex realm

Topological nanostructures in pharmaceuticals revolutionize drug delivery, immunotherapy, and molecular diagnostics with their molecular precision, spatial self-organization, and bio-functional flexibility. Three-dimensional structural complexity drives bio-interactions with unparalleled sensitivity and control in these intricate systems, which use nanoscale topological restrictions. DNA origami scaffolds, supramolecular clathrochelates, and programmable T-cell engagers enable dynamic, stimuli-responsive drug release, immune modulation, and targeted cellular interfacing. Spatiotemporal nanosystems orchestration, which is about carefully managing and syncing the location and timing of topological nanostructures such as vesicles and nanocages to enable precise and controlled drug delivery in biological systems, improves pharmacokinetic profiles and disrupts medication resistance, immunological clearance, and systemic toxicity. However, structural stability, synthetic scalability, biocompatibility, and regulatory scrutiny hinder these constructions’ translation. Computationally driven molecular topography, bio-orthogonal conjugation methods, where living entities can undergo a selective and efficient family of chemical reactions without interfering with their natural metabolic activities, and adaptive biomimetic frameworks promise transformative therapeutic landscapes as topology, nanotechnology, and pharmaceutical sciences merge. In the context of precision medicine and nano-pharmacology, this discussion aims to decipher the deep effects of topological nanostructures on biomedical innovation by probing their theoretical foundations, practicality for translation, and potential long-term clinical consequences.

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来源期刊
Journal of Nanoparticle Research
Journal of Nanoparticle Research 工程技术-材料科学:综合
CiteScore
4.40
自引率
4.00%
发文量
198
审稿时长
3.9 months
期刊介绍: The objective of the Journal of Nanoparticle Research is to disseminate knowledge of the physical, chemical and biological phenomena and processes in structures that have at least one lengthscale ranging from molecular to approximately 100 nm (or submicron in some situations), and exhibit improved and novel properties that are a direct result of their small size. Nanoparticle research is a key component of nanoscience, nanoengineering and nanotechnology. The focus of the Journal is on the specific concepts, properties, phenomena, and processes related to particles, tubes, layers, macromolecules, clusters and other finite structures of the nanoscale size range. Synthesis, assembly, transport, reactivity, and stability of such structures are considered. Development of in-situ and ex-situ instrumentation for characterization of nanoparticles and their interfaces should be based on new principles for probing properties and phenomena not well understood at the nanometer scale. Modeling and simulation may include atom-based quantum mechanics; molecular dynamics; single-particle, multi-body and continuum based models; fractals; other methods suitable for modeling particle synthesis, assembling and interaction processes. Realization and application of systems, structures and devices with novel functions obtained via precursor nanoparticles is emphasized. Approaches may include gas-, liquid-, solid-, and vacuum-based processes, size reduction, chemical- and bio-self assembly. Contributions include utilization of nanoparticle systems for enhancing a phenomenon or process and particle assembling into hierarchical structures, as well as formulation and the administration of drugs. Synergistic approaches originating from different disciplines and technologies, and interaction between the research providers and users in this field, are encouraged.
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