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抗铜绿假单胞菌的含STING佐剂的外膜囊泡纳米颗粒疫苗。

STING-adjuvanted outer membrane vesicle nanoparticle vaccine against Pseudomonas aeruginosa.

作者信息

Bjånes Elisabet, Krishnan Nishta, Koh Truman, Ngo Anh Tp, Cole Jason, Olson Joshua, Cornax Ingrid, Chen Chih-Ho, Chavarria Natalie, Dahesh Samira, Hannah Shawn M, Stream Alexandra, Zhang Jiaqi Amber, Besançon Hervé, Sun Daniel, Yendluri Siri, Morrill Sydney, Zhou Jiarong, Mohapatra Animesh, Fang Ronnie H, Nizet Victor

机构信息

Division of Host-Microbe Systems and Therapeutics, Department of Pediatrics.

Aiiso Yufeng Li Family Department of Chemical and Nano Engineering, and.

出版信息

JCI Insight. 2025 Jul 24;10(17). doi: 10.1172/jci.insight.188105. eCollection 2025 Sep 9.

Abstract

Multidrug-resistant (MDR) bacterial pneumonia poses a critical threat to global public health. The opportunistic Gram-negative pathogen Pseudomonas aeruginosa is a leading cause of nosocomial-associated pneumonia, and an effective vaccine could protect vulnerable populations, including the elderly, immunocompromised, and those with chronic respiratory diseases. Highly heterogeneous outer membrane vesicles (OMVs), shed from Gram-negative bacteria, are studded with immunogenic lipids, proteins, and virulence factors. To overcome limitations in OMV stability and consistency, we described what we believe to be a novel vaccine platform that combines immunogenic OMVs with precision nanotechnology - creating a bacterial cellular nanoparticle (CNP) vaccine candidate, termed Pa-STING CNP, which incorporates an adjuvanted core that activates the STING (stimulator of interferon genes) pathway. In this design, OMVs are coated onto the surface of self-adjuvanted STING nanocores. Pa-STING CNP vaccination induced substantial antigen presenting cell recruitment and activation in draining lymph nodes, robust anti-Pseudomonas antibody responses, and provided protection against lethal challenge with the hypervirulent clinical P. aeruginosa isolate PA14. Antibody responses mediated this protection and provided passive immunity against the heterologous P. aeruginosa strain PA01. These findings provided evidence that nanotechnology can be used to create a highly efficacious vaccine platform against high priority MDR pathogens such as P. aeruginosa.

摘要

多重耐药(MDR)细菌性肺炎对全球公共卫生构成了严重威胁。机会性革兰氏阴性病原体铜绿假单胞菌是医院获得性肺炎的主要病因,一种有效的疫苗可以保护包括老年人、免疫功能低下者以及患有慢性呼吸道疾病的人在内的易感人群。革兰氏阴性细菌释放的高度异质性外膜囊泡(OMV)上布满了免疫原性脂质、蛋白质和毒力因子。为了克服OMV稳定性和一致性方面的局限性,我们描述了一种我们认为新颖的疫苗平台,该平台将免疫原性OMV与精密纳米技术相结合——创建了一种细菌细胞纳米颗粒(CNP)候选疫苗,称为Pa-STING CNP,它包含一个能激活干扰素基因刺激物(STING)途径的佐剂核心。在这种设计中,OMV被包被在自佐剂化的STING纳米核心表面。Pa-STING CNP疫苗接种在引流淋巴结中诱导了大量抗原呈递细胞的募集和激活,产生了强烈的抗铜绿假单胞菌抗体反应,并提供了针对高毒力临床铜绿假单胞菌分离株PA14致死性攻击的保护作用。抗体反应介导了这种保护作用,并提供了针对异源铜绿假单胞菌菌株PA01的被动免疫。这些发现证明,纳米技术可用于创建一个针对如铜绿假单胞菌等高优先级MDR病原体的高效疫苗平台。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0df1/12487677/54cfd704d2df/jciinsight-10-188105-g230.jpg

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