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不同非病毒基因传递系统吸附的“蛋白冠”谱的差异分析。

Differential analysis of "protein corona" profile adsorbed onto different nonviral gene delivery systems.

机构信息

Dipartimento di Chimica, Sapienza Università di Roma, Piazzale Aldo Moro 5, 00185 Rome, Italy.

出版信息

Anal Biochem. 2011 Dec 15;419(2):180-9. doi: 10.1016/j.ab.2011.08.003. Epub 2011 Aug 9.

Abstract

A shotgun proteomics approach was used to characterize and compare the proteins that lead to the formation of a rich "protein corona" adsorbed onto the surfaces of cationic liposomes (CLs), lipoplexes, and lipid/polycation/DNA (LPD) complexes, when they come into contact with plasma. After separation of the nanoparticle-protein complex from plasma, the protein mixture was digested, and peptides were analyzed by nanoliquid chromatography-Orbitrap LTQ-XL mass spectrometry. The number of proteins bound to lipoplexes was double that of those identified in the corona of CLs (208 vs 105), while 77 proteins were common to both coronas. The number of proteins bound to the surface of the LPD complexes (158, 133 of which are common to lipoplexes) is intermediate between those found in the protein corona of both CLs and lipoplexes. About half of them were found in the protein corona of CLs. By overlapping the three formulations, it can be seen that only 12 proteins are peculiar to LPD complexes. These results may help in designing gene delivery systems capable of binding the minimum possible quantity of proteins that influence transfection negatively, binding selectively proteins capable of helping in steering in vivo the vector toward the target, and obtaining more efficient and effective gene therapy.

摘要

采用 shotgun 蛋白质组学方法来描述和比较阳离子脂质体(CLs)、脂质体复合物和脂质/聚阳离子/DNA(LPD)复合物表面吸附的富含“蛋白质冠”的蛋白质,当它们与血浆接触时。将纳米颗粒-蛋白质复合物从血浆中分离出来后,将蛋白质混合物进行消化,并用纳流液相色谱-Orbitrap LTQ-XL 质谱仪对肽进行分析。与 CLs 蛋白冠相比,结合到脂质体复合物的蛋白质数量增加了一倍(208 个比 105 个),而 77 个蛋白是两者共有的。与 LPD 复合物表面结合的蛋白质数量(158 个,其中 133 个与脂质体复合物共有)介于 CLs 和脂质体复合物蛋白冠之间。其中约一半存在于 CLs 的蛋白冠中。通过重叠这三种制剂,可以看出只有 12 种蛋白质是 LPD 复合物所特有的。这些结果可能有助于设计基因传递系统,该系统能够结合尽可能少的负性转染蛋白,选择性结合有助于在体内将载体导向靶标的蛋白,并获得更高效和有效的基因治疗。

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