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蛋白质冠对纳米材料免疫反应和靶向能力的影响。

Impact of the protein corona on nanomaterial immune response and targeting ability.

机构信息

Department of Molecular Medicine, Sapienza University of Rome, Rome, Italy.

出版信息

Wiley Interdiscip Rev Nanomed Nanobiotechnol. 2020 Jul;12(4):e1615. doi: 10.1002/wnan.1615. Epub 2020 Jan 30.

DOI:10.1002/wnan.1615
PMID:32003104
Abstract

Over the last decade nanomaterials have had a major impact on human health for the early detection and treatment of many diseases. The future success of clinically translatable nanomaterials lies in the combination of several functionalities to realize a personalized medical experience for patients. To maintain promises, concerns arising from toxic potential and off-target accumulation of nanomaterials must be addressed first. Upon introduction to a complex biological system (e.g., following systemic administration), nanomaterials interact with all the encountered biomolecules and form the protein corona, a complex coating of plasma proteins that provides them with a totally new biological identity. As the protein corona controls the nanomaterial behavior in vivo, a precise knowledge of the relationship between biological identity and physiological response is needed but not yet achieved. Based on impressive progress made thus far, this review critically discusses how the protein corona activates immune response and influences the targeted delivery of nanomaterials. Furthermore, we comment on emerging strategies to manipulate protein binding in order to promote formation of designer artificial coronas and achieve a desired therapeutic outcome. We conclude by debating challenges that must be overcome to obtain widespread clinical adoption of nanomaterials. This article is categorized under: Nanotechnology Approaches to Biology > Cells at the Nanoscale Toxicology and Regulatory Issues in Nanomedicine > Toxicology of Nanomaterials Therapeutic Approaches and Drug Discovery > Emerging Technologies.

摘要

在过去的十年中,纳米材料在许多疾病的早期检测和治疗方面对人类健康产生了重大影响。临床可转化的纳米材料未来的成功在于结合多种功能,为患者实现个性化的医疗体验。为了保持承诺,必须首先解决纳米材料的毒性潜力和非靶向积累所引起的担忧。纳米材料被引入复杂的生物系统(例如,全身给药后)时,会与所有遇到的生物分子相互作用,形成蛋白质冠,这是一种复杂的血浆蛋白涂层,赋予它们全新的生物学特性。由于蛋白质冠控制着纳米材料在体内的行为,因此需要但尚未实现对生物学特性和生理反应之间关系的精确了解。基于迄今为止取得的令人印象深刻的进展,这篇综述批判性地讨论了蛋白质冠如何激活免疫反应并影响纳米材料的靶向递送。此外,我们还评论了新兴的策略来操纵蛋白质结合,以促进设计人工冠的形成并实现预期的治疗效果。最后,我们通过辩论必须克服的挑战来获得纳米材料的广泛临床应用。本文属于以下类别: 生物学中的纳米技术方法 > 纳米尺度的细胞 纳米医学中的毒理学和监管问题 > 纳米材料的毒理学 治疗方法和药物发现 > 新兴技术

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