Batra Sagar, Olmo Francisco, Ragan Timothy J, Kaplan Merve, Calvaresi Valeria, Frank Asger Meldgaard, Lancey Claudia, Assadipapari Mahya, Ying Cuifeng, Struwe Weston B, Hesketh Emma L, Kelly John M, Barfod Lea, Campeotto Ivan
School of Biosciences, Division of Microbiology, Brewing and Biotechnology, University of Nottingham, Sutton Bonington Campus, Loughborough, UK.
Interdisciplinary Biomedical Research Center, School of Science and Technology, Nottingham Trent University, Nottingham, UK.
Nat Commun. 2025 Aug 5;16(1):7164. doi: 10.1038/s41467-025-62068-3.
Chagas disease, caused by the protozoan parasite Trypanosoma cruzi, remains a significant global public health concern. Despite its profound health impact in both endemic and non-endemic areas, no vaccine is available, and the existing therapies are outdated, producing severe side effects. The 80 kDa prolyl oligopeptidase of Trypanosoma cruzi (TcPOP) has been identified as a leading candidate for Chagas vaccine development. Here we report the three-dimensional structure of TcPOP in open and closed conformation, at a global resolution of 3.8 and 3.6 Å, respectively, determined using single-particle cryo-electron microscopy. Multiple conformations were observed and further characterized using plasmonic optical tweezers and hydrogen-deuterium exchange mass spectrometry. To assess the immunogenic potential of TcPOP, we immunized female mice and evaluated both polyclonal and monoclonal responses against the TcPOP antigen and its homologues. The anti-TcPOP polyclonal response demonstrates invasion blocking properties via parasite lysis. Polyclonal sera were cross-reactive with closely-related POPs but not with human homologues. Collectively, our findings provide structural and functional insights necessary to understand the immunogenicity of TcPOP for future Chagas vaccine development.
恰加斯病由原生动物寄生虫克氏锥虫引起,仍然是全球重大的公共卫生问题。尽管该病在流行地区和非流行地区都对健康有深远影响,但目前尚无可用疫苗,现有的治疗方法也过时了,还会产生严重的副作用。克氏锥虫的80 kDa脯氨酰寡肽酶(TcPOP)已被确定为恰加斯病疫苗开发的主要候选对象。在此,我们报告了通过单颗粒冷冻电子显微镜分别在3.8 Å和3.6 Å的整体分辨率下测定的处于开放和闭合构象的TcPOP的三维结构。观察到了多种构象,并使用等离子体光镊和氢-氘交换质谱进一步进行了表征。为了评估TcPOP的免疫原性潜力,我们对雌性小鼠进行了免疫,并评估了针对TcPOP抗原及其同源物的多克隆和单克隆反应。抗TcPOP多克隆反应通过寄生虫裂解表现出入侵阻断特性。多克隆血清与密切相关的POPs有交叉反应,但与人类同源物无交叉反应。总体而言,我们的研究结果为理解TcPOP对未来恰加斯病疫苗开发的免疫原性提供了必要的结构和功能见解。