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Cardiac Metabolism and MiRNA Interference

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MDPI
DOI: 10.3390/ijms24010050

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cardiac metabolism; fatty acid metabolism; glucose metabolism; miRNAs; ATP generation; miRNA targeting therapy; cardiometabolic disease

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The abnormal increase in cardio-metabolic diseases has led to the exploration of novel mechanisms involved in these diseases. Recent evidence reveals that the derangement of cardiac energy metabolism plays a crucial role in the development and progression of chronic cardio-metabolic diseases. miRNAs, as novel executors, regulate cardiac metabolism through base pairing with target transcripts, and several miRNAs are involved in different aspects of cardiac energy metabolism. A better understanding of these mechanisms is important for developing novel therapeutic strategies for cardiometabolic diseases.
The aberrant increase in cardio-metabolic diseases over the past couple of decades has drawn researchers' attention to explore and unveil the novel mechanisms implicated in cardiometabolic diseases. Recent evidence disclosed that the derangement of cardiac energy substrate metabolism plays a predominant role in the development and progression of chronic cardiometabolic diseases. Hence, in-depth comprehension of the novel molecular mechanisms behind impaired cardiac metabolism-mediated diseases is crucial to expand treatment strategies. The complex and dynamic pathways of cardiac metabolism are systematically controlled by the novel executor, microRNAs (miRNAs). miRNAs regulate target gene expression by either mRNA degradation or translational repression through base pairing between miRNA and the target transcript, precisely at the 3' seed sequence and conserved heptametrical sequence in the 5' end, respectively. Multiple miRNAs are involved throughout every cardiac energy substrate metabolism and play a differential role based on the variety of target transcripts. Novel theoretical strategies have even entered the clinical phase for treating cardiometabolic diseases, but experimental evidence remains inadequate. In this review, we identify the potent miRNAs, their direct target transcripts, and discuss the remodeling of cardiac metabolism to cast light on further clinical studies and further the expansion of novel therapeutic strategies. This review is categorized into four sections which encompass (i) a review of the fundamental mechanism of cardiac metabolism, (ii) a divulgence of the regulatory role of specific miRNAs on cardiac metabolic pathways, (iii) an understanding of the association between miRNA and impaired cardiac metabolism, and (iv) summary of available miRNA targeting therapeutic approaches.

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