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Biology subjects

Beard, D.

Publications and source records attributed to Beard, D..

3 recordsLinked to original sources

Liver-specific Mettl14 deletion induces nuclear heterotypia and dysregulates RNA export machinery

Modification of RNA with N6-methyladenosine (m6A) has gained attention in recent years as a general mechanism of gene regulation. In the liver, m6A, along with its associated machinery, has been studied as a potential biomarker of disease and cancer, with impacts on metabolism, cell cycle regulation, and pro-cancer state signaling. However these observational data have yet to be causally examined in vivo. For example, neither perturbation of the key m6A writers Mettl3 and Mettl14, nor the m6A readers Ythdf1 and Ythdf2 have been thoroughly mechanistically characterized in vivo as they have been in vitro. To understand the functions of these machineries, we developed mouse models and found that deleting Mettl14 led to progressive liver injury characterized by nuclear heterotypia, with changes in mRNA splicing, processing and export leading to increases in mRNA surveillance and recycling.

molecular biology↗

Metabolic Adaptations in Adult Spiny Mouse (Acomys) Cardiomyocytes Facilitate Enhanced Cardiac Recovery Following Myocardial Infarction

The adult mammalian heart has limited regenerative capacity following injury, leading to progressive heart failure and mortality. Recent studies have identified the spiny mouse (Acomys) as a unique model for mammalian cardiac regeneration, exhibiting enhanced recovery after myocardial infarction compared to commonly used laboratory mouse strains. However, the cellular and molecular mechanisms underlying this regenerative response remain poorly understood. In this study, we performed a comprehensive characterization of the metabolic adaptations to ischemic injury in cardiomyocytes of Acomys in comparison to the non-regenerative Mus Musculus. To investigate the transcriptomic and metabolomic profiles of cardiomyocytes in response to myocardial infarction, we utilized single-nucleus RNA sequencing (snRNA-seq) in sham-operated animals and 1, 3, and 7 days post-myocardial infarction. Complementary targeted metabolomics, stable isotope-resolved metabolomics, and functional mitochondrial assays were performed on heart tissues from both species to validate the transcriptomic findings and elucidate the metabolic adaptations in cardiomyocytes following ischemic injury. Transcriptomic analysis revealed that Acomys cardiomyocytes upregulate genes associated with glycolysis, the pentose phosphate pathway, and glutathione metabolism while downregulating genes involved in oxidative phosphorylation following injury. These metabolic changes were linked to decreased production of reactive oxygen species and increased antioxidant capacity, evidenced by the upregulation of genes such as Prdx1, Sod1, Sod2, and G6pd. Our targeted metabolomic studies supported these findings, showing a shift from fatty acid oxidation to glycolysis and ancillary biosynthetic pathways in Acomys cardiomyocytes post-injury. Functional mitochondrial studies indicated a higher reliance on glycolysis in Acomys compared to Mus, underscoring the unique metabolic adaptations of Acomys cardiomyocytes. Stable isotope tracing experiments confirmed a shift in glucose utilization from oxidative phosphorylation in Acomys. In conclusion, our study identifies unique metabolic adaptations in Acomys cardiomyocytes that contribute to their enhanced regenerative capacity following myocardial infarction. These findings provide novel insights into the role of metabolism in regulating cardiomyocyte proliferation and cardiac repair in adult mammals. By targeting the specific metabolic pathways and regulators identified in Acomys, such as glycolytic enzymes and PCK2, we may be able to develop innovative therapies to promote cardiac regeneration in patients with ischemic heart disease. Our work highlights the importance of metabolic flexibility in determining cardiomyocyte regenerative responses and establishes Acomys as a valuable model for studying cardiac regeneration in adult mammals. Graphical abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=119 SRC="FIGDIR/small/595229v1_ufig1.gif" ALT="Figure 1"> View larger version (37K): org.highwire.dtl.DTLVardef@dba53aorg.highwire.dtl.DTLVardef@3c8a74org.highwire.dtl.DTLVardef@a60251org.highwire.dtl.DTLVardef@e2142c_HPS_FORMAT_FIGEXP M_FIG C_FIG

cell biology↗

Rapamycin Treatment Reduces Brain Pericyte Constriction in Ischemic Stroke

The contraction and subsequent death of brain pericytes may play a role in microvascular no-reflow following the re-opening of an occluded artery during ischemic stroke. Mammalian target of rapamycin (mTOR) inhibition has been shown to reduce motility/contractility of various cancer cell lines and reduce neuronal cell death in stroke. However, the effects of mTOR inhibition on brain pericyte contraction and death during ischemia have not yet been investigated. Cultured pericytes exposed to simulated ischemia for 12 hours in vitro contracted after less than 1 h, which was about 7h prior to cell death. Rapamycin significantly reduced the rate of pericyte contraction during ischemia, however, it did not have a significant effect on pericyte viability at any time point. Rapamycin appeared to reduce pericyte contraction through a RhoA-dependent pathway, independent of changes in intracellular calcium. Using a mouse model of middle cerebral artery occlusion, rapamycin significantly increased the diameter of capillaries underneath pericytes and increased the number of open capillaries 30 minutes following recanalization. Our findings suggest rapamycin may be a useful adjuvant therapeutic to reduce pericyte contraction and improve cerebral reperfusion post-stroke.

neuroscience↗