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Malcolm, L.

Publications and source records attributed to Malcolm, L..

2 recordsLinked to original sources

Enterovirus Evolution Reveals the Mechanism of an RNA-Targeted Antiviral and Determinants of Viral Replication

Selective pressures on positive-strand RNA viruses provide opportunities to establish target site specificity and mechanisms of action of antivirals. Here, Enterovirus-A71 revertant viruses with resistant mutations in the SLII IRES domain (SLIIresist) were selected at low doses of the antiviral DMA-135. The EV-A71 revertant viruses were resistant to DMA-135 at concentrations that robustly inhibit replication of wild-type virus. EV-A71 IRES structures harboring the suppressor mutations induced efficient expression of reporter Luciferase mRNA in the presence of non-cytotoxic doses of DMA-135 whereas DMA-135 dose-dependently inhibited Luciferase expression from the wild-type IRES element. NMR studies indicate that the resistant mutations change the structure of SLII at the bulge loop binding site of DMA-135 and at part of an extended surface recognized by host RNA-binding protein AUF1. Comparisons of biophysical analysis of complexes formed between AUF1, DMA-135, or either SLII or SLIIresist show that DMA-135 stabilizes a ternary complex with AUF1-SLII but not AUF1-SLIIresist. Further studies demonstrate that the hnRNP A1 protein retains binding affinity for SLIIresist, illustrating that DMA-135 inhibition and viral resistance do not perturb the SLII-hnRNP A1 arm of the regulatory axis. Taken together, this work demonstrates how viral evolution under selective pressures of small molecules can elucidate RNA binding site specificity, mechanisms of action, and provide additional insights into the viral pathways inhibited by the antiviral DMA-135.

molecular biology↗

Heat induces multi-omic and phenotypic stress propagation in zebrafish embryos

Heat alters biology from molecular to ecological levels, but may also have unknown indirect effects. This includes the novel concept that animals exposed to abiotic stress can induce stress in naive receivers. Here, we provide a comprehensive picture of the molecular signatures of this process, by integrating multi-omic and phenotypic data. In individual zebrafish embryos, repeated heat peaks elicited both a molecular response and a burst of accelerated growth followed by a growth slow-down in concert with reduced responses to novel stimuli. Metabolomes of the media of heat treated vs. untreated embryos revealed candidate stress metabolites including sulphur-containing compounds and lipids. These stress metabolites elicited transcriptomic changes in naive receivers related to immune response, extracellular signalling, glycosaminoglycan/keratan sulphate, and lipid metabolism. Consequently, non heat-exposed receivers (exposed to stress metabolites only) experienced accelerated catch-up growth in concert with reduced swimming performance. The combination of heat and stress metabolites accelerated development the most, mediated by apelin signalling. Our results prove the concept of indirect heat-induced stress propagation towards naive receivers, inducing phenotypes comparable to those resulting from direct heat exposure, but utilising distinct molecular pathways. Group-exposing a non-laboratory zebrafish line, we independently confirm that the glycosaminoglycan biosynthesis-related gene chs1, and the mucus glycoprotein gene prg4a, functionally connected to the candidate stress metabolite classes sugars and phosphocholine, are differentially expressed in receivers. This hints at production of Schreckstoff-like cues in receivers, leading to further stress propagation within groups, which may have ecological and animal welfare implications for aquatic populations in a changing climate. Significance StatementAquatic animals utilise chemicals to mediate adaptive behaviours. For instance, predated fish release chemical cues that elicit antipredatory responses in naive receivers. But whether abiotic factors such as heat likewise alter chemical communication has received little focus. Here, we uncover a novel dimension of chemical communication -- heat-stressed donors can induce stress in naive receivers. We show that heat activates molecular stress responses, leading to the release of distinct stress metabolite classes into the environment. These stress metabolites alter the transcriptome of receivers, resulting in faster development and hypoactivity. Heat combined with stress metabolites had the largest effect, highlighting that abiotic stress, experienced both directly and indirectly, can alter chemical communication and affect embryonic development. Graphical Abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=83 SRC="FIGDIR/small/508176v1_ufig1.gif" ALT="Figure 1"> View larger version (38K): org.highwire.dtl.DTLVardef@1e44b4borg.highwire.dtl.DTLVardef@10b6878org.highwire.dtl.DTLVardef@1f7c3bforg.highwire.dtl.DTLVardef@15436bc_HPS_FORMAT_FIGEXP M_FIG C_FIG HighlightsO_LIWe elucidate the mechanism for a novel dimension of the heat stress response -- chemical communication from heat-stressed donors that induces stress in naive receivers -- constituting a positive feedback loop C_LIO_LIRepeated heat stress induces a cellular and cortisol stress response and alters the phenotype of zebrafish embryos C_LIO_LIHeat-stressed embryos release stress metabolites enriched in lipids and sulphur-containing organo-oxygen compounds C_LIO_LIIn combination, heat and stress metabolites induced 47% distinct differentially expressed genes, with many related to organ development C_LIO_LIThese stress metabolites alter the transcriptome and induce both faster development and hypoactivity in naive receivers, a similar response to that of heat stress itself C_LI

molecular biology↗