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Gonzalez, X.

Publications and source records attributed to Gonzalez, X..

4 recordsLinked to original sources

Concerted modulation of spontaneous behavior and time-integrated whole-brain neuronal activity by serotonin receptors

Serotonin neurons from the raphe nuclei project across the entire brain and modulate diverse physiology and behavior by acting on over a dozen receptors. Here, we took a step towards dissecting this complex process by examining the effects of agonists and antagonists of four widely expressed serotonin receptors (2A, 2C, 1A, and 1B) on spontaneous mouse behavior, which we related to time-integrated whole-brain neuronal activity as assessed by the expression of Fos, a canonical immediate-early gene product. Low-dimensional representations of behavioral and Fos map data revealed the dominant factors of variation in each domain, captured predictable differences across drug groups, and enabled predictions of behavioral changes following perturbations in Fos maps and vice versa. Our study provides a rich resource describing the effects of manipulating serotonin receptors on animal behavior and whole-brain integrated neuronal activity. It also establishes an experimental and analysis paradigm for interrogating the relationship between behavior and neuronal activity across different time scales.

neuroscience↗

Glucose-fed microbiota alters intestinal epithelium and increases susceptibility to bacterial pathogens

Overconsumption of dietary sugar can lead to many negative health effects including the development of Type 2 diabetes, metabolic syndrome, cardiovascular disease, and neurodegenerative disorders. Recently, the human intestinal microbiota strongly associated with our overall health has also been known to be affected by diet. However, mechanistic insight into the importance of the human intestinal microbiota and the effects of chronic sugar ingestion has not been possible largely due to the complexity of the human microbiome which contains hundreds of types of organisms. Here, we use an interspecies C. elegans-E. coli system, where E. coli are subjected to high sugar, then consumed by the bacterivore host C. elegans to become the microbiota. This glucose-fed microbiota results in a significant lifespan reduction accompanied by reduced healthspan including locomotion, stress resistance, and changes in behavior and feeding. Lifespan reduction is also accompanied by two potential major contributors: increased intestinal bacterial density and increased reactive oxygen species. The glucose-fed microbiota accelerated the age-related development of intestinal cell permeability, intestinal distention, and dysregulation of immune effectors. Ultimately, the changes in the intestinal epithelium due to aging with the glucose fed microbiota results in increased susceptibility to multiple bacterial pathogens. Taken together, our data reveal that chronic ingestion of sugar such as a western diet has profound health effects on the host due to changes in the microbiota and may contribute to the current increased incidence of ailments including inflammatory bowel diseases as well as multiple age-related diseases.

physiology↗

Distinct members of the C. elegans CeMbio reference microbiota exert cryptic virulence and infection protection

Microbiotas are complex microbial communities that colonize specific niches in the host and provide essential organismal functions that are important in health and disease. A key aspect is the ability of each distinct community member to promote or impair host health, alone or in the context of the community, in hosts with varied levels of immune competence. Understanding such interactions is limited by the complexity and experimental accessibility of current systems and models. Recently, a reference twelve-member microbiota for the model organism C. elegans, known as CeMbio, was defined to aid the dissection of conserved host-microbiota interactions. Understanding the physiological impact of the CeMbio bacteria on C. elegans is in its infancy. Here, we show the differential ability of each CeMbio bacterial species to activate innate immunity through the conserved PMK-1/p38 MAPK, ACh/WNT, and HLH-30/TFEB pathways. Using immunodeficient animals, we uncovered several examples of bacterial cryptic virulence, or virulence that was masked by the host defense response. The ability to activate the PMK-1/p38 pathway did not correlate with bacterial virulence in wild type or immunodeficient animals. In contrast, ten out of twelve species activated HLH-30/TFEB, and most showed virulence towards hlh-30-deficient animals. In addition, we identified Pseudomonas lurida as a pathogen in wild type animals, and Acinetobacter guillouiae as avirulent despite activating all three pathways. Moreover, short pre-exposure to A. guillouiae promoted host survival of infection with P. lurida, which was dependent on PMK-1/p38 MAPK and HLH-30/TFEB. These results suggest that the microbiota of C. elegans is rife with "opportunistic" pathogens, and that HLH-30/TFEB is a fundamental and key host protective factor. Furthermore, they support the idea that bacteria like A. guillouiae evolved the ability to induce host innate immunity to improve host fitness when confronted with pathogens, providing new insights into how colonization order impacts host health.

immunology↗

Negative regulation of C. elegans innate immunity by orphan nuclear receptor NHR-42

Positive and negative regulators of innate immunity work together to maintain immune homeostasis. We previously discovered that HLH-30/TFEB is a critical transcription factor that positively regulates host defense genes upon S. aureus infection in C. elegans. However, repression of host defense genes and negative regulation of immunity remain poorly understood. In this study, we identified nhr-42 as a negative regulator of host defense genes functioning downstream of HLH-30/TFEB, with major implications in host survival and metabolism after infection. nhr-42 expression is induced in an HLH-30/TFEB dependent manner mostly in the pharynx upon infection. We find that animals lacking nhr-42 have higher expression of host defense genes, which enables enhanced survival after infection. Antimicrobials expressed in the pharynx such as abf-2, function downstream of nhr-42 to confer resistance to infection by mitigating pathogen burden. Furthermore, nhr-42 deficient animals are defective in lipid mobilization, having higher lipid stores compared to wild type animals after infection. nhr-42 therefore enables C. elegans to limit the host defense response and reallocate energy resources through lipid mobilization after infection. To our knowledge, this is the first report of a transcription factor that represses host defense genes in C. elegans.

immunology↗