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Identification of regulatory microRNAs for hypoxia induced coagulation mechanism by In-silico analysis

Srivastava, S.

2020-06-26 genomics
10.1101/2020.06.26.173112 bioRxiv
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BackgroundHypoxia (oxygen deprivation) is known to induce a prothrombotic state by activating the process of coagulation. Hypoxia inducible factor (HIF), is a major transcription factor involved in cellular response to low oxygen tension. MicroRNAs (miRNAs) are non-coding regulatory sequences capable of post-translational modification of multiple genes. Present study aimed to identify common regulatory miRNAs of HIF gene family and coagulation pathway by In-silico approach in order to understand the molecular mechanism underlying the process of hypoxia induced coagulation. MethodsHIF family and Coagulation pathway genes along with their receptors and mediators were enlisted after comprehensive literature review. Thorough search of three highly cited database was done to identify the miRNAs targeting these genes. The extracted miRNA list was then prioritized on the basis of number and functional relevance of genes targeted. The target genes of all prioritized miRNAs were listed and subjected to followed by gene ontology (GO) study and pathway analysis. ResultPresent In-silico analysis identified five candidate miRNAs, viz., hsa-mir-4433a-3p, hsa-mir-4667-5p, hsa-mir-6735-5p, hsa-mir-6777-3p and hsa-mir-6815-3p that co-regulate genes of HIF family and coagulation pathway. GO and pathway analysis revealed that genes regulated by these five microRNAs, predominantly modulate genes facilitating coagulation and hypoxic response. ConclusionWe identified five key microRNAs involved in bodys response to hypoxia and potentially involved in the blood coagulation cascade as well. These five candidate miRNAs may serve as putative epigenetic biomarkers and therapeutic targets to modulate the process of hypoxia induced coagulation.

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