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Naim, N.

Publications and source records attributed to Naim, N..

4 recordsLinked to original sources

A TCER-1-siRNA Regulatory Axis Suppresses Antibacterial Innate Immunity in C. elegans

Small interfering RNA (siRNA) are important regulators of gene expression with well-established roles in pathogen defense. Yet, their specific roles in antibacterial immunity are not well understood. Here, we identify an siRNA pathway involved in repressing antibacterial innate immunity in Caenorhabditis elegans. We show that genes required for the biogenesis or function of WAGO Argonaute-associated siRNAs, called 22G-RNAs, function in a common genetic pathway with the immune-suppressive transcription elongation and splicing factor TCER-1 to inhibit immunity. Loss of tcer-1 reduced levels of 22G-RNAs from a subset of WAGO targets, while mutations in several WAGO 22G-RNA pathway genes phenocopied the enhanced immunoresistance of tcer-1 mutants, suggesting a shared regulatory module. Integrative 22G-RNA-mRNA analyses and molecular genetic studied show that this module does not induce widespread gene silencing, but instead targets a restricted set of immune-relevant effectors, including scrm-4, encoding a phospholipid translocase that promotes host resistance. Together, our findings establish endogenous WAGO 22G-RNAs as repressors of antibacterial immunity and identify TCER-1 as a physiological regulator that promotes 22G-RNA biogenesis to constrain host defense. The results uncover a previously unrecognized small RNA-dependent mechanism linking transcription, metabolism, and antibacterial innate immunity.

immunology↗

LIPL-1 and LIPL-2 are TCER-1-regulated Lysosomal Lipases with Distinct Roles in Immunity and Fertility

Reproduction and immunity are fundamental, energy intensive processes that often compete for resources, leading to trade-offs observed across diverse species. Lipid metabolism plays a crucial role in integrating these processes, particularly during stressful conditions such as pathogenic infections. Yet the molecular mechanisms governing this integration remain poorly understood. TCER-1, the C. elegans homolog of mammalian TCERG1, suppresses immunity and promotes fertility, especially upon maternal infection. Here, we show that TCER-1 regulates two conserved lysosomal lipases, lipl-1 and lipl-2, to balance reproduction, immunity and lifespan. Using transcriptomic, lipidomic, and molecular-genetic analyses, we demonstrate that while both lipl-1 and lipl-2 mediate infection-induced lipid remodeling, lipl-1 enhances immunity and catalyzes the accumulation of ceramide species linked to stress response and longevity, whereas, lipl-2 unexpectedly does not. Both lipases contribute towards fertility outcomes, but lipl-2 is especially critical for maintaining embryonic-eggshell integrity during maternal infection and aging. Strikingly, expression of human lysosomal acid lipase (LAL), the ortholog of lipl genes, rescues the immune defects triggered by lipl-l loss and enhances immune resilience. Together, these findings uncover functionally distinct roles for lipl-1 and lipl-2 in modulating lipid species that shape immune fitness, healthspan and reproductive health, and suggest a potentially conserved mechanism by which lipid metabolism links fertility and immunity.

genetics↗

Soluble cyclase-mediated nuclear cAMP synthesis is sufficient for cell proliferation

cAMP is a key player in many physiological processes. Classically considered to originate solely from the plasma membrane, this view was recently challenged by observations showing that GPCRs can sustain cAMP signaling from intracellular compartments associated with nuclear PKA translocation and activation of transcriptional events. In this report we show that neither PKA translocation nor cAMP diffusion, but rather nuclear sAC activation represents the only source of nuclear cAMP accumulation, PKA activation, and CREB phosphorylation. Both pharmacological and genetic sAC inhibition, that did not affect the cytosolic cAMP levels, completed blunted nuclear cAMP accumulation, PKA activation and proliferation, while an increase in sAC nuclear expression significantly enhanced cell proliferation. Moreover, utilizing novel compartment-specific optogenetic actuators we showed that light-dependent nuclear cAMP synthesis can stimulate PKA, CREB and trigger cell proliferation. Thus, our results show that sAC-mediated nuclear accumulation is not only necessary but sufficient and rate-limiting for cAMP-dependent proliferation.

cell biology↗

NHR-49 acts in distinct tissues to promote longevity versus innate immunity

Aging and immunity are inextricably linked and many genes that extend lifespan also enhance immunoresistance. However, it remains unclear if longevity-enhancing factors modulate immunity and longevity by distinct or shared mechanisms. Here, we demonstrate that the Caenorhabditis elegans pro-longevity factor, NHR-49, also promotes resistance against Pseudomonas aeruginosa, but modulates immunity and longevity by spatially and mechanistically distinct mechanisms. Fenofibrate, an agonist of NHR-49s mammalian functional homolog, PPAR, enhanced worm immunoresistance in an NHR-49-dependent manner. NHR-49 expression is increased by germline ablation, an intervention that extends lifespan, but lowered by pathogen exposure. NHR-49 acted in multiple somatic tissues to promote longevity, whereas, its pro-immunity function was mediated by neuronal expression. The canonical NHR-49 target genes, acs-2 and fmo-2, were upregulated by germline loss, but infection triggered fmo-2 downregulation and acs-2 upregulation. Interestingly, neither gene conferred resistance against Gram-negative Pseudomonas, unlike their reported roles in immunity against Gram-positive pathogens. Thus, NHR-49 is differentially regulated by interventions that bring about long-term changes (lifespan extension) vs. short-term stress (pathogen exposure) and in response it orchestrates distinct outputs, including pathogen-specific transcriptional programs. Overall, our study demonstrates the independent control of immunity and longevity by a conserved regulatory protein.

molecular biology↗