Nanotechnology Application and Intellectual Property Right Prospects of Mammalian Cell Culture

H. Rachamalla, Anubhab Mukherjee, Manash K. Paul
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Abstract

The significant challenges faced by modern-day medicine include designing a target-specific drug delivery system with a controlled release mechanism, having the potential to avoid opsonization and reduce bio-toxicity. Nanoparticles are materials with nanoscale dimensions and maybe natural and synthetic in origin. Engineered nano-sized materials are playing an indispensable role in the field of nanomedicine and nanobiotechnology. Besides, engineered nano-sized particles impart therapeutic applications with enhanced specificity because of their unique bespoke properties. Moreover, such application-customized nanoparticles offer an enormous possibility for their compatibility with different biological molecules like proteins, genetic materials, cell membranes, and organelles at the nano-bio frame. Besides, surface functionalization with targeting moieties such as small molecule ligands, monoclonal antibodies, aptamers, cell-penetrating peptides, and proteins facilitate nanoparticle-based specific tissue targeting. This review summarizes some of the advances in nanoparticle-based therapeutics and theranostics. A better understanding of idealistic preparation methods, physicochemical attributes, surface functionalization, biocompatibility can empower the potential translation of nanomaterials from the ‘bench-to-bedside’. In modern-day medicine, engineered nanoparticles have a wide range of demands ranging from bio-imaging, theranostics, tissue engineering, sensors, drug and nucleic acid delivery, and other pharmaceuticals applications. 2D and 3D mammalian cell-based assays are widely used to model diseases, screening of drugs, drug discovery, and toxicity analyses. Recent advances in cell culture technology and associated progress in nanotechnology have enabled researchers to study a wide variety of physiologically relevant questions. This chapter explores the properties of nanoparticles, different targeted delivery methods, biological analysis, and theranostics. Moreover, this chapter also emphasizes biosafety and bioethics associated with mammalian cell culture and discusses the significance of intellectual property rights from an industrial and academic perspective.
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哺乳动物细胞培养的纳米技术应用及知识产权前景
现代医学面临的重大挑战包括设计具有控制释放机制的靶向药物递送系统,具有避免调理和降低生物毒性的潜力。纳米粒子是纳米尺度的材料,可能是天然的,也可能是人工合成的。工程纳米材料在纳米医学和纳米生物技术领域发挥着不可替代的作用。此外,工程纳米粒子由于其独特的定制特性,赋予治疗应用更强的特异性。此外,这种应用定制的纳米粒子为它们在纳米生物框架中与不同的生物分子(如蛋白质、遗传物质、细胞膜和细胞器)的相容性提供了巨大的可能性。此外,表面功能化的靶向部分,如小分子配体、单克隆抗体、适体、细胞穿透肽和蛋白质,促进了基于纳米颗粒的特异性组织靶向。本文综述了基于纳米粒子的治疗学和治疗学的一些进展。更好地理解理想的制备方法,物理化学属性,表面功能化,生物相容性可以使纳米材料从“实验室到病床”的潜在转化。在现代医学中,工程纳米颗粒具有广泛的需求,包括生物成像、治疗学、组织工程、传感器、药物和核酸输送以及其他药物应用。基于哺乳动物细胞的二维和三维分析被广泛用于疾病建模、药物筛选、药物发现和毒性分析。细胞培养技术的最新进展和纳米技术的相关进展使研究人员能够研究各种各样的生理学相关问题。本章探讨了纳米颗粒的特性,不同的靶向递送方法,生物分析和治疗。此外,本章还强调了与哺乳动物细胞培养相关的生物安全和生物伦理,并从工业和学术的角度讨论了知识产权的重要性。
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