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纳米医学中的体外-体内相关性(IVIVC):蛋白质冠是缺失的环节吗?

In-vitro in-vivo correlation (IVIVC) in nanomedicine: Is protein corona the missing link?

机构信息

Faculty of Pharmacy, VNS Group of Institutions, Nathu Barkheda, Neelbud, Bhopal 462044, India.

SLT Institute of Pharmaceutical Sciences, Guru Ghasidas Vishwavidyalaya, Bilaspur, C.G. 495009, India.

出版信息

Biotechnol Adv. 2017 Nov 15;35(7):889-904. doi: 10.1016/j.biotechadv.2017.08.003. Epub 2017 Aug 26.

Abstract

One of the unmet challenges in nanotechnology is to understand and establish the relationship between physicochemical properties of nanoparticles (NPs) and its biological interactions (bio-nano interactions). However, we are still far from assessing the biofate of NPs in a clear and unquestionable manner. Recent developments in the area of bio-nano interface and the understanding of protein corona (PC) has brought new insight in predicting biological interactions of NPs. PC refers to the spontaneous formation of an adsorbed layer of biomolecules on the surface of NPs in a biological environment. PC formation involves the spatiotemporal interplay of an intricate network of biological, environmental and particle characteristics. NPs with its PC can be viewed as a biological entity, which interacts with cells and barriers in a biological system. Recent studies on the bio-nano interface have revealed biological signatures that participate in cellular and physiological bioprocesses and control the biofate and toxicity of NPs. The ability of in-vitro derived parameters to forecast in-vivo consequences by developing a mathematical model forms the basis of in-vitro in-vivo correlation (IVIVC). Understanding the effect of bio-nano interactions on the biological consequences of NPs at the cellular and physiological level can have a direct impact on the translation of future nanomedicines and can lead to the ultimate goal of developing a mathematical IVIVC model. The review summarizes the emerging paradigms in the field of bio-nano-interface which clearly suggests an urgent need to revisit existing protocols in nanotechnology for defining the physicochemical correlates of bio-nano interactions.

摘要

纳米技术领域面临的挑战之一是理解和建立纳米颗粒(NPs)的物理化学特性与其生物相互作用(生物-纳米相互作用)之间的关系。然而,我们仍远不能以明确无疑的方式评估 NPs 的生物命运。生物-纳米界面领域的最新发展以及对蛋白冠(PC)的理解为预测 NPs 的生物相互作用带来了新的见解。PC 是指在生物环境中 NPs 表面上生物分子的自发形成的吸附层。PC 的形成涉及到生物、环境和颗粒特性的复杂网络的时空相互作用。具有 PC 的 NPs 可以被视为生物实体,它在生物系统中与细胞和屏障相互作用。生物-纳米界面的最近研究揭示了参与细胞和生理生物过程的生物特征,并控制 NPs 的生物命运和毒性。通过开发数学模型,从体外衍生参数来预测体内后果的能力构成了体外-体内相关性(IVIVC)的基础。理解生物-纳米相互作用对 NPs 在细胞和生理水平上的生物学后果的影响,可以直接影响未来纳米医学的转化,并有助于最终实现开发数学 IVIVC 模型的目标。综述总结了生物-纳米界面领域的新兴范例,这清楚地表明迫切需要重新审视纳米技术中现有的协议,以定义生物-纳米相互作用的物理化学相关性。

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