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Storer, C.

Publications and source records attributed to Storer, C..

2 recordsLinked to original sources

Enterotoxigenic Escherichia coli heat-labile toxin drives enteropathic changes in small 1intestinal epithelia

Enterotoxigenic E. coli (ETEC), produce heat-labile (LT) and/or heat-stable (ST) enterotoxins, and are a common cause of diarrhea in children of resource-poor regions. ETEC have also been linked repeatedly to poorly understood sequelae including enteropathy, malnutrition, and growth impairment. While the cellular actions of ETEC enterotoxins leading to diarrhea are well-established, their potential contribution to subsequent pathology is unclear. LT stimulates cellular cAMP production to activate protein kinase A (PKA) which phosphorylates cellular ion channels that drive export of salt and water into the intestinal lumen resulting in diarrhea. However, as PKA exhibits broad kinase activity and its activated catalytic subunits modulate transcription of many genes, we interrogated the transcriptional profiles of LT-treated small intestinal epithelia. These studies demonstrated toxin-induced changes in hundreds of genes including those required for biogenesis and function of the brush border, the major site absorption of nutrients, and suppression of a key transcription factors, HNF4 and SMAD4, critical to differentiation of intestinal epithelia. Accordingly, LT treatment of intestinal epithelial cells significantly disrupted the absorptive microvillus architecture and altered transport of essential nutrients. In addition, challenge of neonatal mice with LT-producing ETEC recapitulated the architectural derangement of the brush border while maternal vaccination with LT prevented brush border disruption in ETEC-challenged neonatal mice. Finally, mice repeatedly challenged with toxigenic ETEC exhibited impaired growth recapitulating the multiplicative impact of recurring ETEC infections in children. These findings highlight impacts of ETEC enterotoxins beyond acute diarrheal illness and may inform approaches to mitigate and prevent major sequelae including malnutrition that impact millions of young children.

microbiology↗

Evolution and diversification dynamics of butterflies

Butterflies are a diverse and charismatic insect group that are thought to have diversified via coevolution with plants and in response to dispersals following key geological events. These hypotheses have been poorly tested at the macroevolutionary scale because a comprehensive phylogenetic framework and datasets on global distributions and larval hosts of butterflies are lacking. We sequenced 391 genes from nearly 2,000 butterfly species to construct a new, phylogenomic tree of butterflies representing 92% of all genera and aggregated global distribution records and larval host datasets. We found that butterflies likely originated in what is now the Americas, [~]100 Ma, shortly before the Cretaceous Thermal Maximum, then crossed Beringia and diversified in the Paleotropics. The ancestor of modern butterflies likely fed on Fabaceae, and most extant families were present before the K/Pg extinction. The majority of butterfly dispersals occurred from the tropics (especially the Neotropics) to temperate zones, largely supporting a "cradle" pattern of diversification. Surprisingly, host breadth changes and shifts to novel host plants had only modest impacts.

evolutionary biology↗