ArticleBioengineering & translational medicine2023
Identification of PIK3CG as a hub in septic myocardial injury using network pharmacology and weighted gene co-expression network analysis.
Article in Bioengineering & translational medicine, 2023. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 8 papers.
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Who cites it
8 citing papers in PubMed, 21 citations in OpenAlex.
- CD74 deficiency protects against doxorubicin cardiotoxicity through RRM2-mediated regulation of ferroptosis.Acta pharmaceutica Sinica. B · 2026Article
- Plasma proteins and mechanisms involved in the evolvement of cardiac function after myocardial infarction.Scientific reports · 2026Article
- Advances in the mechanisms of the NLRP3 inflammasome in sepsis‑induced cardiomyopathy and targeted therapeutic studies (Review).Molecular medicine reports · 2026Review
- Astragali Radix-Carthami Flos alleviate brain-heart injury after cerebral ischemia/reperfusion via regulating TSPO signaling.NPJ science of food · 2025Article
- Utilizing omics technologies in the investigation of sepsis-induced cardiomyopathy.International journal of cardiology. Heart & vasculature · 2024Review
- Exploring the potential mechanism of WuFuYin against hypertrophic scar using network pharmacology and molecular docking.World journal of clinical cases · 2024Article
- Celastrol attenuates streptozotocin-induced diabetic cardiomyopathy in mice by inhibiting the ACE / Ang II / AGTR1 signaling pathway.Diabetology & metabolic syndrome · 2023Article
- Identification of PIK3CG as a hub in septic myocardial injury using network pharmacology and weighted gene co-expression network analysis.Bioengineering & translational medicine · 2023Article
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Authors and funding
11 authors at 4 institutions in 3 countries.
Funding
No grant is acknowledged in the PubMed record.
Abstract
Sepsis causes multiple organ injuries, among which the heart is one most severely damaged organ. Melatonin (MEL) alleviates septic myocardial injury, although a systematic and comprehensive approach is still lacking to understand the precise protective machinery of MEL. This study aimed to examine the underlying mechanisms of MEL on improvement of septic myocardial injury at a systematic level. This study integrated three analytic modalities including database investigations, RNA-seq analysis, and weighted gene co-expression network analysis (WCGNA), in order to acquire a set of genes associated with the pathogenesis of sepsis. The Drugbank database was employed to predict genes that may serve as pharmacological targets for MEL-elicited benefits, if any. A pharmacological protein-protein interaction network was subsequently constructed, and 66 hub genes were captured which were enriched in a variety of immune response pathways. Notably, PIK3CG, one of the hub genes, displayed high topological characteristic values, strongly suggesting its promise as a novel target for MEL-evoked treatment of septic myocardial injury. Importantly, molecular docking simulation experiments as well as in vitro and in vivo studies supported an essential role for PIK3CG in MEL-elicited effect on septic myocardial injury. This study systematically clarified the mechanisms of MEL intervention in septic myocardial injury involved multiple targets and multiple pathways. Moreover, PIK3CG-governed signaling cascade plays an important role in the etiology of sepsis and septic myocardial injury. Findings from our study provide valuable information on novel intervention targets for the management of septic myocardial injury. More importantly, this study has indicated the utility of combining a series of techniques for disease target discovery and exploration of possible drug targets, which should shed some light on elucidation of experimental and clinical drug action mechanisms systematically.
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