ArticleComputational and mathematical methods in medicine2020
CUL1-Mediated Organelle Fission Pathway Inhibits the Development of Chronic Obstructive Pulmonary Disease.
Article in Computational and mathematical methods in medicine, 2020. 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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8 citing papers in PubMed, 10 citations in OpenAlex.
- Identification of STAT3 signaling as a shared pathogenic signature in systemic lupus erythematosus, chronic obstructive pulmonary disease, and asthma.Scientific reports · 2025Article
- miR‑186‑5p regulates the inflammatory response of chronic obstructive pulmonary disorder by targeting HIF‑1α.Molecular medicine reports · 2024Article
- Detecting and dissecting signaling crosstalk via the multilayer network integration of signaling and regulatory interactions.Nucleic acids research · 2024Article
- Significant role and the underly mechanism of cullin-1 in chronic obstructive pulmonary disease.Open medicine (Warsaw, Poland) · 2024Article
- The Role of the miR-548au-3p/CA12 Axis in Tracheal Chondrogenesis in Congenital Pulmonary Airway Malformations.Oxidative medicine and cellular longevity · 2023Article
- Different expression of circulating microRNA profile and plasma SP-D in Tibetan COPD patients.Scientific reports · 2022Article
- Epigenetic regulation of inflammation by microRNAs in post-infectious bronchiolitis obliterans.Clinical & translational immunology · 2022Article
- Construction of Potential miRNA-mRNA Regulatory Network in COPD Plasma by Bioinformatics Analysis.International journal of chronic obstructive pulmonary disease · 2020Article
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Authors and funding
5 authors at 2 institutions in 1 country.
Funding
No grant is acknowledged in the PubMed record.
Abstract
Chronic obstructive pulmonary disease (COPD) is a global high-incidence chronic airway inflammation disease. Its deterioration will lead to more serious lung lesions and even lung cancer. Therefore, it is urgent to determine the pathogenesis of COPD and find potential therapeutic targets. The purpose of this study is to reveal the molecular mechanism of COPD disease development through in-depth analysis of transcription factors and ncRNA-driven pathogenic modules of COPD. We obtained the expression profile of COPD-related microRNAs from the NCBI-GEO database and analyzed the differences among groups to identify the microRNAs significantly associated with COPD. Then, their target genes are predicted and mapped to a protein-protein interaction (PPI) network. Finally, key transcription factors and the ncRNA of the regulatory module were identified based on the hypergeometric test. The results showed that CUL1 was the most interactive gene in the highly interactive module, so it was recognized as a dysfunctional molecule of COPD. Enrichment analysis also showed that it was much involved in the biological process of organelle fission, the highest number of regulatory modules. In addition, ncRNAs, mainly composed of miR-590-3p, miR-495-3p, miR-186-5p, and transcription factors such as MYC, BRCA1, and CDX2, significantly regulate COPD dysfunction blocks. In summary, we revealed that the COPD-related target gene CUL1 plays a key role in the potential dysfunction of the disease. It promotes the proliferation of fibroblast cells in COPD patients by mediating functional signals of organelle fission and thus participates in the progress of the disease. Our research helps biologists to further understand the etiology and development trend of COPD.
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