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Engineering a new vaccine platform for heterologous antigen delivery in live-attenuated Mycobacterium tuberculosis

机译:工程一种新的抗原分枝杆菌异源抗原递送的新疫苗平台

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摘要

Live vaccines are attractive vehicles for antigen delivery as a strategy to immunize against heterologous pathogens. The live vaccine MTBVAC is based on rational attenuation of Mycobacterium tuberculosis with the objective of improving BCG protection against pulmonary tuberculosis. However, the development of recombinant mycobacteria as antigen-presenting microorganisms has been hindered due to their fastidious genetic manipulation. In this study, we used MTBVAC as a genetic platform to deliver diphtheria, tetanus, or pertussis toxoids, which are the immunogenic constituents of the DTP vaccine. When using nonoptimal genetic conditions, the expression of these immunogens was barely detectable. Accordingly, we pursued a rational, step-by-step optimization of the genetic components to achieve the expression and secretion of these toxoids. We explored variants of the L5 mycobacteriophage promoter to ensure balanced antigen expression and plasmid stability. Optimal signal sequences were identified by comparative proteomics of MTBVAC and its parental strain. It was determined that proteins secreted by the Twin Arginine Translocation pathway displayed higher secretion in MTBVAC, and the Ag85A secretion sequence was selected as the best candidate. Because the coding regions of diphtheria, tetanus, and pertussis toxoids significantly differ in G + C content relative to mycobacterial genes, their codon usage was optimized. We also placed a 3xFLAG epitope in frame with the C-terminus of these toxoids to facilitate protein detection. Altogether, these optimizations resulted in the secretion of DTP antigens by MTBVAC, as demonstrated by western blot and MRM-MS. Finally, we examined specific antibody responses in mice vaccinated with recombinant MTBVAC expressing DTP antigens.
机译:活疫苗是抗原递送的有吸引力的载体,作为对异源病原体免疫的策略。活疫苗MTBVAC基于结核分枝杆菌的合理衰减,其目的是改善BCG保护对抗肺结核。然而,由于其苛刻的遗传操作,重组分枝杆菌作为抗原呈递微生物的发展已经受到阻碍。在这项研究中,我们使用MTBVAC作为遗传平台,以递送白喉,破伤风或百日咳毒素,这是DTP疫苗的免疫原性成分。当使用非优质遗传条件时,这些免疫原的表达几乎无法检测到。因此,我们追求了遗传组分的理性,逐步优化,以实现这些毒素的表达和分泌。我们探索了L5分枝杆菌促进剂的变种,以确保平衡抗原表达和质粒稳定性。通过MTBVAC的比较蛋白质组学和其亲本菌株鉴定了最佳信号序列。确定由双精氨酸易位途径分泌的蛋白质在MTBVAC中显示出更高的分泌,并选择AG85A分泌序列作为最佳候选。因为白喉,破伤风和百日咳毒素的编码区域相对于分枝杆菌基因的G + C含量显着不同,因此优化了它们的密码子使用。我们还将3xFlag表位与这些毒素的C-末端放在框架中,以促进蛋白质检测。总之,这些优化导致MTBVAC分泌DTP抗原,如Western印迹和MRM-MS所示。最后,我们检查用表达DTP抗原的重组MTBVAC接种疫苗的小鼠中的特异性抗体反应。

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