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Biology subjects

Murcia, J. D. G.

Publications and source records attributed to Murcia, J. D. G..

3 recordsLinked to original sources

Ramp sequence may explain synonymous variant association with Alzheimer's disease in the Paired Immunoglobulin-like Type 2 Receptor Alpha (PILRA)

BACKGROUNDSynonymous variant NC_000007.14:g.100373690T>C (rs2405442:T>C) in the Paired Immunoglobulin-like Type 2 Receptor Alpha (PILRA) gene was previously associated with decreased risk for Alzheimers disease (AD) in genome-wide association studies, but its biological impact is largely unknown. OBJECTIVEWe hypothesized that rs2405442:T>C decreases mRNA and protein levels by destroying a ramp of slowly translated codons at the 5 end of PILRA. METHODSWe assessed rs2405442:T>C predicted effects on PILRA through quantitative polymerase chain reactions (qPCR) and enzyme-linked immunosorbent assays (ELISA) using Chinese hamster ovary (CHO) cells. RESULTSBoth mRNA (P=1.9184 x 10-13) and protein (P=0.01296) levels significantly decreased in the mutant versus the wildtype in the direction that we predicted based on destroying a ramp sequence. CONCLUSIONSWe show that rs2405442:T>C alone directly impacts PILRA mRNA and protein expression, and ramp sequences may play a role in regulating AD-associated genes without modifying the protein product. Research in ContextO_LISystematic review: Genetic variants identified through genome-wide association studies often lack biological support for their association with Alzheimers disease. Although synonymous variant rs2405442:T>C in PILRA was previously reported as protective against Alzheimers disease, its effects have generally been attributed to linkage with missense variant, rs1859788:A>G. C_LIO_LIInterpretation: We show that rs2405442:T>C alone decreases mRNA and protein levels by destroying a ramp of slowly translated codons at the beginning of PILRA. We also show that a ramp sequence is present in PILRA and likely regulates mRNA and protein levels, thus offering a plausible biological mechanism explaining rs2405442:T>C association with Alzheimers disease independent of rs1859788:A>G. C_LIO_LIFuture directions: We provide the first protocol to evaluate how disease-associated variants impact ramp sequences, which could explain why some genetic variants are reported by genome-wide association studies. Future studies might examine if the ramp sequence could be therapeutically targeted to regulate PILRA expression without changing the protein product. C_LI

genetics↗

Conserved Noncoding Cis-Elements Associated with Hibernation Modulate Metabolic and Behavioral Adaptations in Mice

Our study elucidates functional roles for conserved cis-elements associated with the evolution of mammalian hibernation. Genomic analyses found topologically associated domains (TADs) that disproportionately accumulated convergent genomic changes in hibernators, including the TAD for the Fat Mass & Obesity (Fto) locus. Some hibernation-linked cis-elements in this TAD form regulatory contacts with multiple neighboring genes. Knockout mice for these cis-elements exhibit Fto, Irx3, and Irx5 gene expression changes, impacting hundreds of genes downstream. Profiles of pre-torpor, torpor, and post-torpor phenotypes found distinct roles for each cis-element in metabolic control, while a high caloric diet uncovered different obesogenic effects. One cis-element promoting a lean phenotype influences foraging behaviors throughout life, affecting specific behavioral sequences. Thus, convergent evolution in hibernators pinpoints functional genetic mechanisms of mammalian metabolic control. One-sentence summaryDeletions of conserved cis-elements tied to hibernator evolution causes diverse metabolic traits in mice.

genomics↗

Genomic Convergence in Hibernating Mammals Elucidates the Genetics of Metabolic Regulation in the Hypothalamus

Elucidating the genetic basis of mammalian metabolism could help define mechanisms central to health and disease. Here, we define conserved cis-regulatory elements (CREs) and programs for mammalian metabolic control. We delineate gene expression and chromatin responses in the mouse hypothalamus for 7 steps of the Fed-to-Fasted-to-Refed (FFR) response process. Comparative genomics of hibernating versus non-hibernating lineages then illuminates cis-elements showing convergent changes in hibernators. Hibernators accumulated loss-of-function effects for specific CREs regulating hypothalamic FFR responses. Multi-omics approaches pinpoint key CREs, genes, regulatory programs, and cell types in the divergence of hibernating and homeothermic lineages. The refeeding period after extended fasting is revealed as one critical period of chromatin remodeling with convergent genomic changes. This genetic framework is a step toward harnessing hibernator adaptations in medicine. One sentence summaryConvergent signals define cis-regulatory mechanisms behind food scarcity responses and hibernator-homeotherm divergence.

genomics↗