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Published on: December 1, 2023
Machine learning Reveals ATM and CNOT6L as critical factors in Cataract pathogenesis
Peng Qi1, Songhao Zhang1, Wenbing Guo1
1Department of Ophthalmology, The Fourth Affiliated Hospital of Harbin Medical University, Harbin, Heilongjiang, 150001, PR China.
Objective:
Cataract, a common age-related blinding eye disease, has a complex pathogenesis. This study aims to identify key genes and potential mechanisms associated with cataracts, offering new targets and insights for its prevention and treatment.
Methods:
Transcriptomic data analysis and machine learning identified ATM serine/threonine kinase (ATM) and CCR4-NOT transcription complex subunit 6 like (CNOT6L) as key differential genes. Their roles in oxidative stress and apoptosis were validated using overexpression experiments in a cataract cell model. Immune-related analyses explored their regulatory effects on the immune microenvironment, and Kyoto Encyclopedia of Genes and Genomes (KEGG) pathway analysis revealed potential mechanisms. In addition, in vitro experiments were conducted to evaluate the effects of ATM and CNOT6L overexpression on cell proliferation, oxidative stress, and apoptosis in lens epithelial cells.
Results:
We identified 14 aging-associated differentially expressed genes, and ATM and CNOT6L were screened as key genes through machine learning and external dataset validation. KEGG pathway analysis indicated their involvement in base excision repair, ERBB signaling, and fatty acid metabolism pathways. Immune infiltration analysis revealed that ATM and CNOT6L positively correlated with CD8 T cells and B cells, and negatively correlated with regulatory T cells (Tregs), natural killer (NK) cells, and M1 macrophages. In vitro, overexpression of ATM and CNOT6L in cataract cell models promoted cell proliferation, inhibited apoptosis, reduced reactive oxygen species (ROS) and malondialdehyde (MDA) levels, and enhanced glutathione peroxidase (GSH-PX) activity.
Conclusion:
ATM and CNOT6L play protective roles in cataract progression by reducing oxidative stress, inhibiting apoptosis, and regulating the immune microenvironment. They represent promising molecular targets for cataract prevention and treatment.
Insights
ATM serine/threonine kinase (ATM) and CNOT6L are key genes protecting against cataract progression. They reduce oxidative stress and apoptosis, offering new therapeutic targets for this common age-related eye disease.
Area of Science:
- Ophthalmology
- Molecular Biology
- Immunology
Background:
- Cataract is a leading cause of age-related vision loss with complex underlying mechanisms.
- Identifying key genetic factors and pathways is crucial for developing effective interventions.
Purpose of the Study:
- To identify key genes and molecular mechanisms involved in cataract pathogenesis.
- To explore the roles of identified genes in oxidative stress, apoptosis, and the immune microenvironment.
- To evaluate ATM and CNOT6L as potential therapeutic targets for cataract.
Main Methods:
- Transcriptomic data analysis and machine learning to identify differential genes.
- Overexpression experiments in a cataract cell model to validate gene function.
- Immune-related and KEGG pathway analyses to elucidate mechanisms.
- In vitro assays to assess effects on cell proliferation, oxidative stress, and apoptosis.
Main Results:
- ATM serine/threonine kinase (ATM) and CNOT6L were identified as key genes associated with cataract.
- These genes are involved in base excision repair, ERBB signaling, and fatty acid metabolism.
- ATM and CNOT6L influence immune cell populations, including CD8 T cells, B cells, Tregs, NK cells, and M1 macrophages.
- Overexpression of ATM and CNOT6L promoted cell proliferation, inhibited apoptosis, and reduced oxidative stress markers in vitro.
Conclusions:
- ATM and CNOT6L exhibit protective effects in cataract progression.
- These genes mitigate oxidative stress and apoptosis while modulating the immune microenvironment.
- ATM and CNOT6L represent promising molecular targets for cataract prevention and treatment strategies.
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