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SARS-CoV-2 E protein: Pathogenesis and potential therapeutic development.

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Zhou S. et al, (2023), Biomed Pharmacother, 159

Emerging Role for Branched-Chain Amino Acids Metabolism in Fibrosis.

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Wu T. et al, (2022), Pharmacol Res

Mouse models of spontaneous atrial fibrillation.

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Keefe JA. et al, (2022), Mamm Genome

ELTD1 Activation Induces an Endothelial-EMT Transition to a Myofibroblast Phenotype.

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Sheldon H. et al, (2021), Int J Mol Sci, 22

New aspects of endocrine control of atrial fibrillation and possibilities for clinical translation.

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Aguilar M. et al, (2021), Cardiovasc Res, 117, 1645 - 1661

Finding a new job: glutamate signaling acts in atrial cardiomyocytes.

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Reilly S. and Nattel S., (2021), Cell Res

BH4 Increases nNOS Activity and Preserves Left Ventricular Function in Diabetes.

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Carnicer Hijazo R. et al, (2021), Circulation research

Dilated Cardiomyopathy Mutations in Thin Filament Regulatory Proteins Reduce Contractility, Suppress Systolic Ca2+ & Activate NFAT & AKT Signalling

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Robinson P. et al, (2020), American Journal of Physiology-Heart and Circulatory Physiology

BK ablation attenuates osteoblast bone formation via integrin pathway.

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Wang Y. et al, (2019), Cell Death Dis, 10

Insights into pancreatic β cell energy metabolism using rodent β cell models

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Morten K. et al, (2017), Wellcome Open Research

Up-regulation of miR-31 in human atrial fibrillation begets the arrhythmia by depleting dystrophin and neuronal nitric oxide synthase.

Journal article

Reilly SN. et al, (2017), Science translational medicine, 8, 340ra74 - 340ra74

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