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Biology subjects

Armendariz, L.

Publications and source records attributed to Armendariz, L..

3 recordsLinked to original sources

Microfluidic Capture-Enrichment of individualized microbes from urban wastewater reveals a hidden reservoir of potential pre-emergent pathogens

Current environmental biosurveillance infrastructure excels at tracking known biological threats but is limited in its ability to proactively identify potential pre-emergent pathogens (PEPs). To address this gap, we developed a microfluidics-based Capture-Enrichment pipeline that isolates individual environmental cells via microdroplet encapsulation, preserving community biodiversity while enabling iterative selection against human sera. When applied to urban wastewater, this approach successfully recovered pathogens, commensals, and PEPs that fell below the detection limits of conventional amplicon sequencing. Genomic analysis revealed that wastewater-derived ESKAPE pathogens cluster closely with clinical isolates, showing that the pipeline captures clinically relevant threats. Furthermore, isolated PEPs exhibited known and emerging phenotypes associated with early-stage pathogenesis and antimicrobial resistance. These findings demonstrate that targeting PEPs can fundamentally expand the scope and quality of biosurveillance by providing a scalable strategy to identify, characterize, and close important gaps in our understanding of emerging microbial pathogens.

microbiology↗

P. aeruginosa liquid-based pathogenesis triggers HLH-30-dependent metabolic rewiring in C. elegans

Innate immunity is the first line of defense against invading pathogens and is essential for maintaining host survival. While the majority of innate immunity studies have focused on pathogen recognition and antimicrobial responses, increasing evidence suggests that lipid metabolism plays a fundamental role in shaping immune function. Understanding how these metabolic pathways contribute to immunity is crucial in the context of bacterial infections caused by opportunistic pathogens such as Pseudomonas aeruginosa. Host defense against P. aeruginosa requires the coordination of innate immune and metabolic responses; however, the mechanisms linking lipid metabolism to pathogen resistance remain poorly understood. Research into the relationship between lipid homeostasis and innate immunity may reveal factors governing host-pathogen interactions and identify novel strategies to enhance resistance to infection. Here, we demonstrate that P. aeruginosa liquid-based pathogenesis (LK-Pa) triggers a shift in host metabolism which differs from the one observed in response to agar-based pathogenesis. Our bioinformatic analyses revealed a highly similar metabolic profile (enrichment of lipid metabolism) in worms exposed to LK-Pa or the iron chelator phenanthroline, suggesting a shared host response to iron deprivation. We further characterized the host genetic factors driving this metabolic shift and established their importance for host defense against LK-Pa as well as liquid-based pathogenesis by Gram-positive pathogens Enterococcus faecalis and Staphylococcus aureus. Notably, our results indicate that LK-Pa triggers host lipid droplet depletion, an upstream component that leads to increased {beta}-oxidation. Finally, we demonstrate that LK-Pa triggers repression of MXL-3 which results in HLH-30-dependent metabolic rewiring.

cell biology↗

Box C/D snoRNPs and MDT-15/MED15 regulate mitochondrial surveillance via fatty acid metabolism

Text AbstractIn response to constant homeostatic threats, organisms have developed complex regulatory networks to monitor cellular functions and restore normal function. Here, we identify MDT-15 and its effectors, the fatty acid desaturases FAT-5, FAT-6, and FAT-7, as activators of the Ethanol and Stress Response (ESRE) mitochondrial surveillance pathway. Our data show that box C/D snoRNPs, which were previously linked to ESRE activation, also regulate FAT-6 and FAT-7 protein levels. Notably, knockdown of mdt-15 or fib-1, a component of box C/D snoRNP complex, increased accumulation of the mitophagic activator PINK-1, the first step in licensing mitophagy, suggesting a relationship between ESRE surveillance and mitophagic activation. Supplementation with downstream unsaturated fatty acid products of FAT-6 and FAT-7 enhanced ESRE and mitophagic activation, but did not affect UPRmt. Since fatty acids activated ESRE and PINK-1 in wild-type and mutant genetic backgrounds, they are likely to act via a mechanism independent of FAT-6 and FAT-7 function. Our results provide insight into a novel interplay between box C/D snoRNPs, MDT-15, and fatty acids in the regulation of mitochondrial surveillance and mitophagy. Graphical Abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=107 SRC="FIGDIR/small/656193v2_ufig1.gif" ALT="Figure 1"> View larger version (37K): org.highwire.dtl.DTLVardef@92f749org.highwire.dtl.DTLVardef@a8f496org.highwire.dtl.DTLVardef@51b28dorg.highwire.dtl.DTLVardef@1a15374_HPS_FORMAT_FIGEXP M_FIG C_FIG

cell biology↗