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首页> 外文期刊>ACS nano >Skin dendritic cell targeting via microneedle arrays laden with antigen-encapsulated poly- D, l -Lactide- Co -Glycolide nanoparticles induces efficient antitumor and antiviral immune responses
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Skin dendritic cell targeting via microneedle arrays laden with antigen-encapsulated poly- D, l -Lactide- Co -Glycolide nanoparticles induces efficient antitumor and antiviral immune responses

机译:通过载有抗原包封的聚-D,l-丙交酯-Co-糖苷纳米颗粒的微针阵列靶向皮肤树突状细胞诱导有效的抗肿瘤和抗病毒免疫反应

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The efficacious delivery of antigens to antigen-presenting cells (APCs), in particular, to dendritic cells (DCs), and their subsequent activation remains a significant challenge in the development of effective vaccines. This study highlights the potential of dissolving microneedle (MN) arrays laden with nanoencapsulated antigen to increase vaccine immunogenicity by targeting antigen specifically to contiguous DC networks within the skin. Following in situ uptake, skin-resident DCs were able to deliver antigen-encapsulated poly-d,l-lactide-co-glycolide (PGLA) nanoparticles to cutaneous draining lymph nodes where they subsequently induced significant expansion of antigen-specific T cells. Moreover, we show that antigen-encapsulated nanoparticle vaccination via microneedles generated robust antigen-specific cellular immune responses in mice. This approach provided complete protection in vivo against both the development of antigen-expressing B16 melanoma tumors and a murine model of para-influenza, through the activation of antigen-specific cytotoxic CD8 ~+ T cells that resulted in efficient clearance of tumors and virus, respectively. In addition, we show promising findings that nanoencapsulation facilitates antigen retention into skin layers and provides antigen stability in microneedles. Therefore, the use of biodegradable polymeric nanoparticles for selective targeting of antigen to skin DC subsets through dissolvable MNs provides a promising technology for improved vaccination efficacy, compliance, and coverage.
机译:将抗原有效地递送至抗原呈递细胞(APC),特别是向树突状细胞(DC),以及其随后的活化仍然是开发有效疫苗的重大挑战。这项研究强调了通过将抗原特异性地靶向皮肤内连续的DC网络来溶解载有纳米囊化抗原的微针(MN)阵列以提高疫苗免疫原性的潜力。在原位摄取后,皮肤驻留DC能够将抗原封装的聚-d,l-丙交酯-共-乙交酯(PGLA)纳米颗粒递送至皮肤引流淋巴结,在那里它们随后诱导了抗原特异性T细胞的显着扩增。此外,我们表明,通过微针进行抗原包封的纳米颗粒疫苗接种可在小鼠中产生强大的抗原特异性细胞免疫应答。这种方法通过激活抗原特异性细胞毒性CD8 + T细胞,从而有效清除肿瘤和病毒,从而在体内提供了针对表达抗原的B16黑色素瘤肿瘤和副流感鼠模型的完全保护,分别。此外,我们显示出令人鼓舞的发现,即纳米包封有助于抗原保留在皮肤层中并在微针中提供抗原稳定性。因此,使用可生物降解的聚合物纳米颗粒通过可溶解的MN将抗原选择性靶向皮肤DC亚群,为改善疫苗接种效力,依从性和覆盖率提供了有希望的技术。

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