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Chauhan, C.

Publications and source records attributed to Chauhan, C..

4 recordsLinked to original sources

PRMT5-mediated regulatory arginine methylation of RIPK3

The TNF receptor-interacting protein kinases (RIPK)-1 and 3 are regulators of extrinsic cell death response pathways, where RIPK1 makes the cell-survival or death decisions by associating with distinct complexes mediating survival signaling, caspase activation or RIPK3-dependent necroptotic cell death in a context dependent manner. Using a mass spectrometry-based screen to find new components of the ripoptosome/necrosome, we discovered the protein-arginine methyltransferase (PRMT)-5 as a direct interaction partner of RIPK1. Interestingly, RIPK3 but not RIPK1 was then found a target of PRMT5-mediated symmetric arginine dimethylation. A conserved arginine residue in RIPK3 (R486 in human, R415 in mouse) was identified as the evolutionarily conserved target for PRMT5-mediated symmetric dimethylation and the mutations R486A and R486K in human RIPK3 almost completely abrogated its methylation. Rescue experiments using these non-methylatable mutants of RIPK3 demonstrated PRMT5-mediated RIPK3 methylation to act as an efficient mechanism of RIPK3-mediated feedback control on RIPK1 activity and function. Therefore, this study reveals PRMT5-mediated RIPK3 methylation as a novel modulator of RIPK1-dependent signaling.

cell biology↗

Genetic changes of P. vivax tempers host tissue-specific responses in Anopheles stephensi

In our preceding study (Sharma et al., 2019; BioRxiv) we showed that in the gut lumen Plasmodium vivax follows a unique strategy of immuno-suppression by disabling gut flora proliferation. Here, we further demonstrate that post gut invasion, a shrewd molecular relationship with individual tissues such as midgut, hemocyte, salivary glands, and strategic changes in the genetic makeup of P. vivax favors its survival in the mosquito host. A transient suppression of metabolic machinery by early oocysts, and increased immunity against late oocysts suggested a unique mechanism of gut homeostasis restoration and Plasmodium population regulation. Though a hyper immune response of hemocyte was a key to remove free circulating sporozoites, but a strong suppression of salivary metabolic activities, may favor successful survival of invaded sporozoites. Finally, genetic alteration of P. vivax ensures evasion of mosquito responses. Conclusively, our system-wide RNAseq analysis provides first genetic evidences of direct mosquito-Plasmodium interaction and establishes a functional correlation.\n\nAuthor SummaryMalaria transmission dynamics is heavily influenced by mosquito -parasite interaction. When passing through tissue specific barriers, Plasmodium have to compromise by losing its own population, but genetic relation is unknown. To win the developmental race Plasmodium need to overcome two important immuno-physiological barriers. First one accounts an indirect 24-30hr long pre-invasive gut-microbe-parasite interaction in the gut lumen. And second one follows a direct post gut invasive 14-18 days interaction with midgut, hemocyte and salivary glands. During pre-invasive phase of interaction, we showed Plasmodium vivax follows immuno-suppression strategy by restricting microbial growth in the gut lumen. Here, we demonstrate that switch of parasite from one stage to another stage within mosquito vector is accompanied by genetic changes of parasite. Our data suggests genetic makeup change enables the parasite to manipulate the metabolism of mosquito tissues. This strategy not only clear off multifaceted mosquitos tissue specific immune responses, but also favors Plasmodium own survival and transmission. Comprehending this tissue specific interaction between host and parasite at molecular level could provide new tool to intervene the plasmodium life cycle within vector.

genomics↗

Microbiome-Gut-Brain-Axis communication regulates metabolic switch in the mosquito Anopheles culicifacies

Periodic ingestion of a protein-rich blood meal by adult female mosquitoes causes a drastic metabolic change in their innate physiological status, which is referred to as metabolic switch. Although the down-regulation of olfactory factors is key to restrain host-attraction, how the gut metabolic switch modulates brain functions, and resilience physiological homeostasis remains unexplored. Here, we demonstrate that the protein-rich diet induces mitochondrial function and energy metabolism, possibly shifting the brains engagement to manage organismal homeostasis. A dynamic expression pattern of neuro-signaling and neuro-modulatory genes in both the brain and gut indicates an optimal brain-distant organ communication. Even after decapitation, significant modulation of the neuro-modulator receptor genes as well as quantitative estimation of neurotransmitters (NTs), together confer the guts ability to serve as a second brain. Finally, data on comparative metagenomic analysis and altered NTs dynamics of naive and aseptic mosquitoes provide the initial evidence that gut-endosymbionts are key modulators for the synthesis of major neuroactive molecules. Conclusively, our data establish a new conceptual understanding of microbiome-gut-brain-axis communication in mosquitoes. O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=183 SRC="FIGDIR/small/774430v2_ufig1.gif" ALT="Figure 1"> View larger version (43K): org.highwire.dtl.DTLVardef@4fed8corg.highwire.dtl.DTLVardef@17494f3org.highwire.dtl.DTLVardef@df1cd7org.highwire.dtl.DTLVardef@1de7923_HPS_FORMAT_FIGEXP M_FIG Graphical abstract C_FIG HighlightsO_LIHighly proteinaceous blood meal uptake causes gut metabolic switch activity in mosquitoes. C_LIO_LIGuts calling shifts the brains administrative function from external communication to inter-organ management. C_LIO_LI Gut, as a Second brain plays a crucial role in the maintenance of physiological homeostasis. C_LIO_LIMetabolic switch and proliferation of symbiotic bacteria establish microbiome-gut-brain axis communication in mosquitoes. C_LI

animal behavior and cognition↗

Altered gut microbiota and immunity defines Plasmodium vivax survival in Anopheles stephensi

Blood feeding-enriched gut-microbiota boosts mosquitoes anti-Plasmodium immunity. Here, we ask how Plasmodium vivax alters microbiota, anti-Plasmodial immunity and impact tripartite Plasmodium-mosquito-microbiota interactions in the gut lumen. Using a metagenomics analysis, we predominantly detect Elizabethkingia meningitis and Pseudomonas sps. in naive mosquitoes. Naive blood fed gut shows a heightened presence of Elizabethkingia, Pseudomonas and Serratia. A parallel RNAseq analysis of blood-fed midguts identify Elizabethkingia-transcripts, which may have role in iron metabolism. Post, a Plasmodium vivax infected blood-meal, however, we do not detect bacterial until circa 36 hours. Intriguingly, transcriptional expression of a selected array of antimicrobial arsenal cecropins 1-2, defensin-1 and gambicin remains low during the first 36 hours-a time frame when ookinietes/early oocysts invade gut. We conclude during the preinvasive phase, Plasmodium vivax outcompetes midgut-microbiota. Suppression of important immune factors, likely due to altered microbiota, may enhance Plasmodium vivax survival. Additional finding of a novel Wolbachia association warrants further research to design paratransgenesis tools for malaria control.\n\nAuthor SummarySuccessful malaria transmission relies on the competitive interactions of Plasmodium and mosquitos tissue specific immune potential. Within 24hrs of blood meal gut-microbiota grows exponentially and lead to robust enhancement of mosquito immune response, which is detrimental to parasite survival and development. But the mechanism how Plasmodium manages to evade this pre-invasive immune barrier is not well known. We investigated the influence of tripartite gut-microbiome-parasite interaction on human malaria parasite Plasmodium vivax in its natural/native vector Anopheles stephensi. Surprisingly we found that infectious blood meal lead to dramatic suppression in gut-bacteria population, a plausible strategy of P. vivax ookinetes to avoid immune responses. Our study suggests that for its own survival Plasmodium vivax causes early suppression of bacterial population, possibly by scavenging Fe from the blood meal which is indispensable for bacterial growth. Disruption and manipulation of this gut-microbe-interaction may help to design new paratransgenesis molecular tool for malaria control.

genomics↗