鞭毛细菌介导的肿瘤抗原递送:增强树突状细胞活化以进行原位癌症疫苗接种的新方法

IF 5.7 2区 生物学
Wen Xia, Jinhui Wu
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引用次数: 0

摘要

原位疫苗接种是一种治疗方法,旨在利用肿瘤部位的肿瘤抗原诱导肿瘤特异性适应性免疫反应。据推测,垂死肿瘤细胞释放的抗原会被活化的树突状细胞吸收,并呈现给T细胞,T细胞会寻找并消灭肿瘤细胞。在肿瘤的免疫抑制微环境中,这一过程会受到严重阻碍。利用细菌作为天然佐剂或细胞因子工厂的原位疫苗策略呈增长趋势,旨在增强抗原递呈细胞对原位抗原的递呈。最近,有人提出了一种利用鞭毛细菌介导的抗原递送来激活树突状细胞的新方法。这种方法积极促进了肿瘤内抗原的递送,改善了肿瘤原位疫苗接种的抗原呈递。在此,我们重点介绍鞭毛菌介导的抗原递送如何增强原位疫苗的免疫激活能力。同时,我们还对这些前景广阔的抗原递送技术进行了展望和展望。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Flagellate bacteria-mediated tumour antigen delivery: A novel approach to enhance dendritic cell activation for in situ cancer vaccination

Flagellate bacteria-mediated tumour antigen delivery: A novel approach to enhance dendritic cell activation for in situ cancer vaccination

In situ vaccination is a therapeutic approach aimed at exploiting tumour antigens available at a tumour site to induce tumour-specific adaptive immune responses. Antigens released from dying tumour cells are assumed to be taken up by activated dendritic cells and presented to T cells that seek out and destroy tumour cells. This process is significantly impeded in the immunosuppressive microenvironment of tumours. There is a growing trend in in situ vaccine strategies that utilize bacteria as natural adjuvants or as factories for cytokines, aiming to enhance the presentation of in situ antigens by antigen-presenting cells. Recently, a novel approach using flagellate bacteria-mediated antigen delivery to activate dendritic cells has been proposed. This method actively facilitates the delivery of intratumoral antigens, improving their presentation for in situ cancer vaccination. Here, we highlight how flagellate bacteria-mediated antigen delivery enhances the immune activation capabilities of in situ vaccines. Meanwhile, we provide perspectives and outlooks on these promising antigen delivery technologies.

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来源期刊
Microbial Biotechnology
Microbial Biotechnology Immunology and Microbiology-Applied Microbiology and Biotechnology
CiteScore
11.20
自引率
3.50%
发文量
162
审稿时长
1 months
期刊介绍: Microbial Biotechnology publishes papers of original research reporting significant advances in any aspect of microbial applications, including, but not limited to biotechnologies related to: Green chemistry; Primary metabolites; Food, beverages and supplements; Secondary metabolites and natural products; Pharmaceuticals; Diagnostics; Agriculture; Bioenergy; Biomining, including oil recovery and processing; Bioremediation; Biopolymers, biomaterials; Bionanotechnology; Biosurfactants and bioemulsifiers; Compatible solutes and bioprotectants; Biosensors, monitoring systems, quantitative microbial risk assessment; Technology development; Protein engineering; Functional genomics; Metabolic engineering; Metabolic design; Systems analysis, modelling; Process engineering; Biologically-based analytical methods; Microbially-based strategies in public health; Microbially-based strategies to influence global processes
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