Shamriz Shabnam, Ofoghi Hamideh
Department of Biotechnology, Iranian Research Organization for Science and Technology, Tehran, Iran.
BMC Bioinformatics. 2016 Feb 6;17:71. doi: 10.1186/s12859-016-0918-8.
Malaria infection is still widespread in some parts of the world and threatens the lives of millions of people every year. Vaccines, especially oral vaccines are considered to be effective in reducing the burden of malaria morbidity and mortality. By using recombinant technology, suitable oral hosts could serve as antigen delivering vehicles in developing oral vaccines. This study was aimed towards designing and computational analysis of a fusion protein consisting of Plasmodium falciparum cell-traversal protein for ookinetes and sporozoites (PfCelTOS) fused to human interleukin-2 (IL-2) and M cell-specific peptide ligand (Co1), as a step toward developing a vaccine candidate.
To our best knowledge, the three dimensional (3D) structure of CelTOS is not reported in protein database. Therefore, we carried out computational modeling and simulation in the hope of understanding the properties and structure of PfCelTOS. Then we fused IL-2 to PfCelTOS by a flexible linker and did in silico analysis to confirm the proper folding of each domain in the designed fusion protein. In the last step, Co1 ligand was added to the confirmed fusion structure using a rigid linker and computational analysis was performed to evaluate the final fusion construct. One structure out of five predicted by I-TASSER for PfCelTOS and fusion constructs was selected based on the highest value for C-score. Molecular dynamics (MD) simulation analysis indicated that predicted structures are stable during the simulation. Ramchandran Plot analysis of PfCelTOS and fusion constructs before and after MD simulation also represented that most residues were fallen in favorable regions.
In silico study showed that Co1-(AEEEK)3- IL-2-(GGGGS)3-PfCelTOS construct has a constant structure and the selected linkers are effectively able to separate the domains. Therefore, data reported in this paper represents the first step toward developing of an oral vaccine candidate against malaria infection.
疟疾感染在世界某些地区仍然广泛存在,每年威胁着数百万人的生命。疫苗,尤其是口服疫苗,被认为在减轻疟疾发病和死亡负担方面有效。通过使用重组技术,合适的口服宿主可作为开发口服疫苗的抗原递送载体。本研究旨在设计并对一种融合蛋白进行计算分析,该融合蛋白由恶性疟原虫动合子和子孢子的细胞穿越蛋白(PfCelTOS)与人白细胞介素-2(IL-2)和M细胞特异性肽配体(Co1)融合而成,作为开发候选疫苗的第一步。
据我们所知,蛋白质数据库中未报道CelTOS的三维(3D)结构。因此,我们进行了计算建模和模拟,希望了解PfCelTOS的特性和结构。然后我们通过柔性接头将IL-2与PfCelTOS融合,并进行了计算机模拟分析,以确认设计的融合蛋白中每个结构域的正确折叠。在最后一步中,使用刚性接头将Co1配体添加到已确认的融合结构中,并进行计算分析以评估最终的融合构建体。基于I-TASSER预测的PfCelTOS和融合构建体的五个结构中,根据C分数的最高值选择了一个结构。分子动力学(MD)模拟分析表明,预测结构在模拟过程中是稳定的。MD模拟前后PfCelTOS和融合构建体的Ramchandran图分析也表明,大多数残基落在有利区域。
计算机模拟研究表明,Co1-(AEEEK)3-IL-2-(GGGGS)3-PfCelTOS构建体具有恒定结构,所选接头能够有效地分离各结构域。因此,本文报道的数据代表了开发抗疟疾感染口服候选疫苗的第一步。