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表面工程金纳米棒:有望成为 HIV-1 治疗的 DNA 疫苗佐剂。

Surface-engineered gold nanorods: promising DNA vaccine adjuvant for HIV-1 treatment.

机构信息

CAS Key Laboratory for Biomedical Effects of Nanomaterials and Nanosafety, National Center for Nanoscience and Technology of China, Beijing, 100190, China.

出版信息

Nano Lett. 2012 Apr 11;12(4):2003-12. doi: 10.1021/nl300027p. Epub 2012 Feb 28.

Abstract

With the intense international response to the AIDS pandemic, HIV vaccines have been extensively investigated but have failed due to issues of safety or efficacy in humans. Adjuvants for HIV/AIDS vaccines are under intense research but a rational design approach is still lacking. Nanomaterials represent an obvious opportunity in this field due to their unique physicochemical properties. Gold nanostructures are being actively studied as a promising and versatile platform for biomedical application. Herein, we report novel surface-engineered gold nanorods (NRs) used as promising DNA vaccine adjuvant for HIV treatment. We have exploited the effects of surface chemistry on the adjuvant activity of the gold nanorod by placing three kinds of molecules, that is, cetyltrimethylammonium bromide (CTAB), poly(diallydimethylammonium chloride) (PDDAC), and polyethyleneimine (PEI) on the surface of the nanorod. These PDDAC- or PEI-modified Au NRs can significantly promote cellular and humoral immunity as well as T cell proliferation through activating antigen-presenting cells if compared to naked HIV-1 Env plasmid DNA treatment in vivo. These findings have shed light on the rational design of low-toxic nanomaterials as a versatile platform for vaccine nanoadjuvants/delivery systems.

摘要

随着国际社会对艾滋病大流行的强烈反应,HIV 疫苗已被广泛研究,但由于在人体中的安全性或功效问题而失败。HIV/AIDS 疫苗的佐剂正在深入研究中,但仍然缺乏合理的设计方法。由于具有独特的物理化学性质,纳米材料在这一领域具有明显的优势。金纳米结构作为一种有前途和多功能的生物医学应用平台,正在被积极研究。在此,我们报告了一种新型的表面工程金纳米棒(NRs),可作为治疗 HIV 的有前途的 DNA 疫苗佐剂。我们利用表面化学对金纳米棒佐剂活性的影响,将三种分子,即十六烷基三甲基溴化铵(CTAB)、聚二烯丙基二甲基氯化铵(PDDAC)和聚乙烯亚胺(PEI)置于纳米棒表面。与体内裸 HIV-1Env 质粒 DNA 治疗相比,这些 PDDAC 或 PEI 修饰的 AuNR 可以通过激活抗原呈递细胞,显著促进细胞和体液免疫以及 T 细胞增殖。这些发现为低毒纳米材料作为疫苗纳米佐剂/递送系统的通用平台的合理设计提供了思路。

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