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Biology subjects

Nebangwa, D. N.

Publications and source records attributed to Nebangwa, D. N..

2 recordsLinked to original sources

Predictive Immunoinformatics Reveal Promising Safety and Anti-Onchocerciasis Protective Immune Response Profiles to Vaccine Candidates (Ov-RAL-2 and Ov-103) in Anticipation of Phase I Clinical Trials

Onchocerciasis is a devastating tropical disease that causes severe eye and skin lesions. As global efforts shift from disease control to elimination, prophylactic/therapeutic vaccines have emerged as alternative elimination tools. Notably, Ov-RAL-2 and Ov-103 antigens have shown great promise in preclinical studies and plans are underway for clinical trials. Here, we predict the immunogenicity and other vaccine-related parameters for both antigens using immunoinformatics, as potential vaccine candidates against onchocerciasis. The analysis reveals that both antigens exhibit a favourable safety profile, making them promising candidates poised for human trials. Importantly, in silico immune simulation forecasts heightened antibody production and sustained cellular responses for both vaccine candidates. Indeed, the antigens were predicted to harbour substantial numbers of a wide range of distinct epitopes associated with protective responses against onchocerciasis, as well as the potential for stimulating innate immune TLR-4 receptor recognition with Ov-103 exhibiting better structural efficiency and antigenicity with no homology to human proteins compared to Ov-RAL-2. Overall, we provide herein valuable insights for advancing the development of Ov-103 and RAL-2 vaccine candidates against onchocerciasis in humans. Authors summaryTo address the significant impact of onchocerciasis, a tropical disease commonly known as river blindness, we have employed computational tools to assess the viability of two promising vaccine candidates, namely Ov-RAL-2 and Ov-103. Existing control strategies alone are insufficient to eliminate the disease. Our study utilises advanced immunoinformatics techniques to systematically evaluate the safety, antigenicity, and immunogenic properties of these antigens as potential vaccine candidates against onchocerciasis prior to human trials. Our analysis revealed that both vaccine candidates demonstrate favourable safety profiles and possess the capability to induce robust antibody responses and cellular immunity. Notably, we identified numerous distinct epitopes present within each vaccine candidate that are associated with protective immunity against onchocerciasis. The abundance of these epitopes suggests that both vaccine candidates have the potential to activate the immune system through diverse humoral and cellular response mechanisms. By providing these valuable insights, our research assists in guiding the development of Ov-103 and Ov-RAL-2 as effective vaccines against onchocerciasis. Ultimately, our findings contribute to the global endeavour to eliminate this debilitating disease and enhance the quality of life for the millions of affected individuals.

bioinformatics↗

Two highly selected mutations in the tandemly duplicated CYP6P4a and CYP6P4b drive pyrethroid resistance in Anopheles funestus

Gaining a comprehensive understanding of the genetic mechanisms underlying insecticide resistance in malaria vectors is crucial for optimising the effectiveness of insecticide-based vector control methods and developing diagnostic tools for resistance management. Considering the heterogeneity of metabolic resistance in major malaria vectors, the implementation of tailored resistance management strategies is essential for successful vector control. In this study, we provide evidence demonstrating that two highly selected mutations in the tandemly duplicated cytochrome P450 genes namely CYP6P4a and CYP6P4b, are driving pyrethroid insecticide resistance in the major malaria vector Anopheles funestus, in West Africa. Through a continent-wide polymorphism survey, we observed heightened indications of directional selection in both genes between 2014 and 2021. By conducting in vitro insecticide metabolism assays with recombinant enzymes expressed from both genes, we established that mutant alleles under selection exhibit higher metabolic efficiency compared to their wild-type counterparts. Furthermore, using the GAL4-UAS transgenic system, we demonstrated that transgenic Drosophila melanogaster flies overexpressing mutant alleles displayed an increased resistance to pyrethroids. These findings were in agreement with in silico characterisation, which highlighted changes in enzyme active site architecture that enhance the affinity of mutant alleles for type I and II pyrethroids. Furthermore, we developed two DNA-based assays capable of detecting the CYP6P4a-M220I and CYP6P4b-D284E mutations, showing their current confinement to West Africa. Genotype/phenotype correlation analyses revealed that these markers are strongly associated with resistance to types I and II pyrethroids and combine to drastically reduce the efficacy of pyrethroid bednets. Overall, our study makes available two field-applicable insecticide resistance molecular markers that will help in the monitoring and better management of insecticide resistance in West Africa. TeaserTwo field-applicable diagnostic tools for detecting metabolic resistance in Anopheles funestus to enhance insecticide resistance management in West Africa.

genetics↗