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Manhas, A.

Publications and source records attributed to Manhas, A..

2 recordsLinked to original sources

Plasmodium Repetome: A mysterious space with a wealth of information

Eukaryotic proteomes harbour repetitive stretches of amino acids that may play critical roles in the biology of that organism. While several tandem repeats (TR) are known to contribute to protein structure and function, information about the vast majority of repeat regions remains obscure. In this article, we have analysed the repeat content of different Plasmodium species and found the leading human malaria-causing P. falciparum (Pf) and P. vivax to be exceptionally rich in TR regions (>40% TR containing proteins). Detailed analysis of Pf repetome showed this intracellular parasite to carry longer TRs, several of which were present in exported proteins important for parasite survival and immune evasion. The repeat regions of Pf were enriched in acidic amino acids and asparagine (Asn), where Asn was more abundant in short and intermediate TRs, suggesting an evolutionary bias influenced by replication slippage and positive selection. Gene ontology analysis of TR containing Pf proteins helped us to understand their cellular localization along with the molecular and biological processes they are involved in. The Pf variable surface antigen families with roles in important pathogenic processes like cytoadherence, immune evasion etc. had low repeat content present within seroreactive peptides. Three-dimensional structure predictions of TR regions revealed several repeats to adopt ordered super-secondary conformations that are known to facilitate intermolecular interactions. Overall, this is a comprehensive study attempting to gain insights on the importance of TRs in malaria parasite biology and suggests a novel route to understanding protein function through the characterization of repeat content.

bioinformatics↗

Gestational exposure to high heat-humidity conditions impairs mouse embryonic development

Unprecedented rates of global warming have created an existential challenge for the sustainable survival of species on this planet. Tropical conditions of high ambient temperature and relative humidity are extremely vulnerable to maternal-child health. Emerging epidemiological studies depict that exposure to extremely hot weather conditions during pregnancy leads to an array of adverse pregnancy outcomes, such as low birth weight, stillbirth, preterm delivery, congenital abnormalities and adult-onset disorders. A lack of understanding of the underlying molecular pathophysiology limits us from developing an effective combat strategy in terms of targeted therapeutics to improvise the combined teratogenic effects of high heat-humidity in pregnancy. To address this, it is important to delineate the effect of hot-humid weather conditions on the process of embryogenesis. However, working with human embryos is technically and ethically challenging. In this study, we have established a mouse model of heat-humidity stress during pregnancy, which essentially recapitulates the adverse pregnancy outcomes observed in humans. Importantly, we have profiled the impact of high heat-humidity exposure during gestation at different stages of embryogenesis using this mouse model. Our results indicate that the teratogenicity of heat-humidity stress gets manifested in a cumulative manner, starting from the pre-implantation stage and becomes severe at the mid-gestation, culminating in significantly higher embryonic deaths and malformations at the late gestational stage of mouse embryogenesis. Overall, our study paves the path for exploring the underlying molecular players that get dysregulated under gestational exposure to hot and humid conditions, resulting in severe embryonic defects.

developmental biology↗