bioRxiv Science⌕ Search

Biology subjects

Midha, A.

Publications and source records attributed to Midha, A..

5 recordsLinked to original sources

Liver-Resident Metabolic Reprogramming and Th2/1 Cell Accumulation Drive Anti-Helminth Immunity During H. bakeri InfectionRunning title: Liver metabolic-immune crosstalk in helminth infection

The liver plays a pivotal yet understudied role in anti-helminth immunity. Here, we reveal that during Heligmosomoides bakeri infection, the liver serves as a critical immunological site, accumulating Th2 and Th2/1 hybrid cells through CXCR3-mediated recruitment driven by IFN-gamma and the chemokines CXCL9/10/11. Unlike traditional lymphoid organs, the liver maintains these functional Th2 and Th2/1 cells throughout the chronic and memory phases of infection, exhibiting potent cytokine production and no signs of exhaustion. Transcriptomic analysis of liver tissues uncovered stage-specific metabolic reprogramming, with early H. bakeri infection (6 days p.i.) suppressing oxidative phosphorylation and acute infection (14 days p.i.) activating immune pathways (e.g., TNF, JAK-STAT). Notably, metabolic shifts were independent of T cell infiltration and were instead induced by parasite excretory-secretory products (HES) and alarmins, which disrupted mitochondrial ATP production. The liver's glucose-rich microenvironment supported T cell effector function, including IL-5 production linked to elevated serum IL-5 and bile IgA. Our findings redefine the liver as a dynamic regulator of anti-helminth immunity, integrating metabolic and immune responses to sustain long-term host defense. These insights open new avenues for targeting liver-specific pathways to enhance parasite clearance.

immunology↗

Transcriptome of Peripheral Blood Mononuclear Cells Reveals Suppressed MAPK/AP-1 Pathways During Ascaris-Salmonella Coinfection in Pigs

Ascaris and Salmonella are prevalent pathogens in pigs, and their coinfection could pose significant veterinary and public health concern. While Salmonella typically elicits strong monocyte-driven inflammation, we previously showed that A. suum coinfection impairs monocyte responses and increases bacterial burden. Building on these prior observations, we investigated the transcriptional basis of helminth-induced immune modulation using peripheral blood mononuclear cells from experimentally infected pigs. Bulk RNASeq analysis revealed 126 differentially expressed genes in coinfected pigs relative to Salmonella single-infected pigs, including downregulation of genes associated with chemotactic function (CCL3L1, CCL8, CXCL14) linked to monocyte recruitment and macrophage-mediated antimicrobial function. To uncover underlying cellular signaling mechanisms, we applied co-expression network analysis, identifying two modules of interest: one enriched for inflammatory signaling pathways (TNF, IL-17, MAPK), and the other associated with phagosome and lysosome function. Notably, coinfection resulted in selective repression of key genes in the inflammation-related module, including MAPK modulators (DUSP1, DUSP6), AP-1 components (FOS, NR4A1, MAFF), and monocyte activation genes (TNFSF9, CD163), pointing to a potential coordinated shutdown of monocyte inflammatory signaling. These findings reveal that an active Ascaris infection interferes with host immunity against a subsequent bacterial infection by disrupting AP-1/MAPK-dependent transcriptional networks, providing mechanistic insight into helminth-mediated immune modulation.

immunology↗

A human and mouse subpopulation of senescent β-cells induces pathologic dysfunction through targetable paracrine signaling

Cellular senescence is a stress response mechanism marked by irreversible growth arrest, upregulation of antiapoptotic pathways, loss of cellular function, and remodelling of the cellular secretory profile. In both humans and mice, pancreatic {beta}-cells undergo senescence with age and insulin resistance. Targeted removal of senescent cells in mouse models of diabetes improves glucose homeostasis, demonstrating the role {beta}-cell senescence in diabetes progression. In contrast, {beta}-cell senescence also promotes immune surveillance, promoting {beta}-cell survival and function. Thus, a better understanding of senescent cells phenotypic and functional heterogeneity is needed to develop effective therapeutic strategies. Herein, we show that subpopulations of senescent {beta}-cells in mice and humans, which were identified through the expression of Cdkn1a (encoding p21Cip1) and Cdkn2a (encoding p16Ink4a) by single-cell RNA sequencing (scRNA-seq), flow cytometry, spatial transcriptomics, and spatial proteomics, exhibit distinct transcriptional and functional identities. The predominant senescent {beta}-cell subpopulation expressed Cdkn1a and was characterized by a lack of glucose responsiveness, high basal insulin secretion, and transcription of canonical SASP factors. The SASP of Cdkn1a-expressing {beta}-cells had non-cell autonomous effects on neighbouring cells. A subset of four SASP factors from Cdkn1a+ cells was sufficient to induce secondary senescence and {beta}-cell dysfunction in vitro. JAK inhibitors (JAK1/2 and JAK1/3) counteracted secondary senescence induction and restored {beta}-cell function in high-fat diet-fed mice and human islets from donors with or without type 2 diabetes. GRAPHICAL ABSTRACT O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=196 SRC="FIGDIR/small/648438v1_ufig1.gif" ALT="Figure 1"> View larger version (34K): org.highwire.dtl.DTLVardef@9b8addorg.highwire.dtl.DTLVardef@1b9c4eborg.highwire.dtl.DTLVardef@12f2964org.highwire.dtl.DTLVardef@1468297_HPS_FORMAT_FIGEXP M_FIG C_FIG

developmental biology↗

Concurrent Ascaris infection modulates host immunity resulting in impaired control of Salmonella infection in pigs

Ascaris is one of the most widespread helminth infections of humans and pigs, leading to chronic morbidity in humans and considerable economic losses in pig farming. Additionally, pigs are an important reservoir for the zoonotic bacterial pathogen Salmonella, where pigs can serve as asymptomatic carriers. Here, we investigated the impact of an ongoing Ascaris infection on the immune response to Salmonella in pigs. We observed higher bacterial burdens in experimentally coinfected pigs compared to pigs infected with Salmonella alone. Ascaris-infected pigs exhibited numerous hallmarks of a type 2 immune response in organs impacted by larval migration, including increased Th2 cells, increased IL-4 production, eosinophilia, and increased expression of CD206, a marker for alternatively activated macrophages. While we observed only mild changes in frequencies of CD4+ Treg, Ascaris- infected pigs had increased frequencies of CD8+ Treg. We show that type 2 immune signals enhance susceptibility of macrophages to Salmonella infection in vitro. Furthermore, Ascaris impaired Salmonella-induced monocytosis and TNF- production by myeloid cells. Hence, our data demonstrate widespread immunomodulation during an acute Ascaris infection that facilitates the microbial spread into gut-associated lymphoid tissue in a Salmonella coinfection. ImportanceIn experimentally infected pigs we show that an ongoing infection with the parasitic worm Ascaris suum modulates host immunity to render pigs more susceptible to invading Salmonella. Both infections are widespread in pig production and the prevalence of Salmonella is high in endemic regions of human Ascariasis, indicating that this is a clinically meaningful coinfection. We observed a type 2 immune response to be induced during an Ascaris infection correlating with an increased susceptibility of pigs to the concurrent bacterial infection.

immunology↗

CD4+ Th immunogenicity of the Ascaris spp. secreted products

Ascaris spp. is a major health problem of humans and animals alike, and understanding the immunogenicity of its antigens is required for developing urgently needed vaccines. The parasite-secreted products represent the most relevant, yet highly complex (>250 proteins) antigens of Ascaris spp. as defining the pathogen-host interplay. We applied an in vitro antigen processing system coupled to quantitative proteomics to identify potential CD4+ Th cell epitopes in Ascaris suum-secreted products. This approach restricts the theoretical list of epitopes, based on affinity prediction, by a factor of [~]1200. More importantly, selection of 2 candidate peptides based on experimental evidence demonstrated the presence of epitope-reactive T cells in Ascaris-specific T cell lines generated from healthy human individuals. Thus, this stringent work pipeline identifies a human haplotype-specific T cell epitope of a major human pathogen. The methodology described represents an easily adaptable platform for characterization of highly complex pathogenic antigens and their MHCII-restriction.

immunology↗