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Childers, L.

Publications and source records attributed to Childers, L..

3 recordsLinked to original sources

Genome wide transcriptional changes underlie gradual and recurrent adaptation to protein malnutrition in zebrafish

Lysosome-rich enterocytes (LREs) are a specialized population of intestinal cells that mediate the uptake and absorption of dietary proteins in fish and neonatal mammals. Loss of LRE function causes inhibited growth and poor survival due to protein malnutrition. Previously, we reported that in zebrafish loss of Plasmolipin (pllp), an endosomal membrane protein highly expressed in LREs, impairs LRE differentiation and dietary protein absorption, resulting in marked reduction in survival rates. Raising pllp homozygous mutants surviving to adulthood and in-crossing them for multiple generations resulted in their adaptation to malnutrition, with adapted pllp mutants showing no survival deficits. To uncover mechanisms underlying this phenomenon, we compared the older adapted pllp allele with genetically related wild type (WT) fish and a newly generated pllp mutant allele. Using transcriptome profiling and quantitative protein absorption assays, we found that adapted pllp mutants exhibit upregulation of LRE endocytic components, resulting in a capacity for protein absorption that exceeds that of WT. This hyperactivation of LRE endocytic and absorptive activity is aided by a fine-tuned transcriptional regulation of immune genes that may contribute to the enhanced survival of pllp mutants in the face of increased exposure to environmental antigens. Genetic analyses indicate that these adaptations emerge gradually and are recurrent as shown experimentally by the adaptation of a mutant allele upon inbreeding and natural selection. Overall, our study illustrates that genome wide transcriptional changes underly adaptation mechanisms that enhance intestinal function and organismal survival in response to protein malnutrition. Author SummaryIn this study, we investigated how zebrafish adapt to protein malnutrition when the function of specialized intestinal protein-absorbing enterocytes, also found in newborn mammals, is impaired. We observed that fish carrying a mutation that severely disrupts intestinal protein absorption gradually recovered their ability to survive over multiple generations of inbreeding, even though the underlying mutation remained intact. By comparing gene activity in these adapted fish with that of newly generated mutants, we found that adaptation involves a coordinated rewiring of two systems: the enterocytes themselves became hyperactivated, absorbing more protein than even wildtype fish, while the immune system was simultaneously recalibrated to dampen inflammation. We further showed that this adaptive process is recurrent by using a second, independently generated mutant line that underwent a strikingly similar recovery trajectory over successive generations. Together, our findings reveal that animals can overcome a severe, heritable nutritional deficit through a gradual, genome-wide transcriptional response that fundamentally reshapes intestinal function across generations.

developmental biology↗

A General Analytic Approach to Predicting the Best Antibiotic Dosing Regimen

Determining optimal antibiotic dosing strategies is complex. Clinically, some antibiotics work best in continuous low doses, while others require high repeated pulses. However, a rational understanding of the best approach depending on the specific pairing of antibiotic and bacterial species remains unclear. Using mathematical models, we analyze bacterial populations under two strategies - constant concentration and repeated dosing - given fixed pharmacodynamic and pharmacokinetic properties. Our results reveal that the shape of the dose-response curve, which measures bacterial net growth rate against antibiotic concentration, is crucial. Specifically, its concavity determines the best strategy. In cases where the curve exhibits multiple concavities, additional factors such as tolerable dosing range influence the regimen. These findings challenge the universal application of "hit hard and hit early," as some recommended schedules include lower, constant doses. This work contributes to the literature on rational antibiotic prescription, aiming to minimize antibiotic use and combat antimicrobial resistance.

pharmacology and toxicology↗

Protein absorption in the zebrafish gut is regulated by interactions between lysosome rich enterocytes and the microbiome

Dietary protein absorption in neonatal mammals and fishes relies on the function of a specialized and conserved population of highly absorptive lysosome rich enterocytes (LREs). The gut microbiome has been shown to enhance absorption of nutrients, such as lipids, by intestinal epithelial cells. However, whether protein absorption is also affected by the gut microbiome is poorly understood. Here, we investigate connections between protein absorption and microbes in the zebrafish gut. Using live microscopy-based quantitative assays, we find that microbes slow the pace of protein uptake and degradation in LREs. While microbes do not affect the number of absorbing LRE cells, microbes lower the expression of endocytic and protein digestion machinery in LREs. Using transgene assisted cell isolation and single cell RNA-sequencing, we characterize all intestinal cells that take up dietary protein. We find that microbes affect expression of bacteria-sensing and metabolic pathways in LREs, and that some secretory cell types also take up protein and share components of protein uptake and digestion machinery with LREs. Using custom-formulated diets, we investigated the influence of diet and LRE activity on the gut microbiome. Impaired protein uptake activity in LREs, along with a protein-deficient diet, alters the microbial community and leads to increased abundance of bacterial genera that have the capacity to reduce protein uptake in LREs. Together, these results reveal that diet-dependent reciprocal interactions between LREs and the gut microbiome regulate protein absorption.

cell biology↗