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手性超粒子用于可控纳医学

Chiral Supraparticles for Controllable Nanomedicine.

机构信息

David H. Koch Institute for Integrative Cancer Research, Massachusetts Institute of Technology, Cambridge, MA, 02139, USA.

Department of Physiology and Biophysics, Institute of Biological Sciences, Universidade Federal de Minas Gerais, Belo Horizonte, MG, 31270-901, Brazil.

出版信息

Adv Mater. 2020 Jan;32(1):e1903878. doi: 10.1002/adma.201903878. Epub 2019 Nov 5.

Abstract

Chirality is ubiquitous in nature and hard-wired into every biological system. Despite the prevalence of chirality in biological systems, controlling biomaterial chirality to influence interactions with cells has only recently been explored. Chiral-engineered supraparticles (SPs) that interact differentially with cells and proteins depending on their handedness are presented. SPs coordinated with d-chirality demonstrate greater than threefold enhanced cell membrane penetration in breast, cervical, and multiple myeloma cancer cells. Quartz crystal microbalance with dissipation and isothermal titration calorimetry measurements reveal the mechanism of these chiral-specific interactions. Thermodynamically, d-SPs show more stable adhesion to lipid layers composed of phospholipids and cholesterol compared to l-SPs. In vivo, d-SPs exhibit superior stability and longer biological half-lives likely due to opposite chirality and thus protection from endogenous proteins including proteases. This work shows that incorporating d-chirality into nanosystems enhances uptake by cancer cells and prolonged in vivo stability in circulation, providing support for the importance of chirality in biomaterials. Thus, chiral nanosystems may have the potential to provide a new level of control for drug delivery systems, tumor detection markers, biosensors, and other biomaterial-based devices.

摘要

手性在自然界中无处不在,并且已深入到每个生物系统中。尽管手性在生物系统中很普遍,但控制生物材料的手性以影响与细胞的相互作用,这在最近才得到探索。本文提出了手性工程超粒子(SPs),它们根据手性的不同,与细胞和蛋白质的相互作用方式也不同。与 d-手性协调的 SPs 在乳腺癌、宫颈癌和多发性骨髓瘤癌细胞中的细胞膜穿透能力增强了三倍以上。石英晶体微天平耗散和等温滴定量热法测量揭示了这些手性特异性相互作用的机制。从热力学角度来看,与由磷脂和胆固醇组成的脂质层相比,d-SPs 表现出更稳定的粘附。在体内,d-SPs 表现出更好的稳定性和更长的生物半衰期,这可能是由于相反的手性,从而免受包括蛋白酶在内的内源性蛋白质的影响。这项工作表明,将 d-手性纳入纳米系统可增强癌细胞的摄取能力,并延长体内循环的稳定性,为生物材料中手性的重要性提供了支持。因此,手性纳米系统有可能为药物输送系统、肿瘤检测标记物、生物传感器和其他基于生物材料的设备提供新的控制水平。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b1c7/6986383/85fd42b82f50/nihms-1058565-f0001.jpg

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