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Published on: April 6, 2022
Distinct deregulation trends of transcriptional protein complexes in aging naive T cells
Emel Kökrek1,2, Pınar Pir2
1Department of Molecular Biology and Genetics, Kadir Has University, Cibali, Kadir Has Cd., 34083 Fatih/Istanbul, Turkey.
Abstract:
The impact of aging on T cell subsets, specifically CD4+ and CD8+ T cells, leading to immune system dysfunction has been the focus of scientific investigation due to its potential to reverse age-associated deterioration. Transcriptomic and epigenomic studies have identified the primary regulators in T cell aging. However, comprehending the underlying dynamic mechanisms requires studying these proteins with their interactors. Here, we integrated single-cell RNA sequencing data of naive CD4+ and CD8+ T cells obtained from 3 different age groups with protein-protein and domain-domain interaction networks to predict and compare the transcriptional protein complexes and identify their capacity to explain age-associated variances. Our novel approach revealed significant effects of aging on the repertoire of complexes, which remains unchanged in naive CD4+ T cells, while in naive CD8+ T cells, it diminishes. In both cell types, there was major deregulation of complexes with the same composition, involving a range of transcription factors. This aging-associated deregulation is characterized by a specific set of protein complexes in naive CD4+ T cells, but this pattern is not observed in naive CD8+ T cells. SMAD3 and BCL11A complexes emerge as key markers in defining a trajectory in aging naive CD4+ T cells. These complexes can accurately distinguish between 3 different age groups, indicating their potential as targets. The direct link between SMAD3 and FOS complexes whose regulatory role has been previously implicated in aging and MBD3 as the novel key link between SMAD3 and BCL11A complexes implicates a coordinated mechanism in age-associated deregulation.
Insights
Aging significantly alters protein complexes in T cells, particularly CD8+ T cells, impacting immune function. SMAD3 and BCL11A complexes in CD4+ T cells show promise as biomarkers for age-related immune changes.
Area of Science:
- Immunology
- Gerontology
- Systems Biology
Background:
- Aging impairs T cell function, contributing to immune system decline.
- Transcriptomic and epigenomic studies identified key regulators of T cell aging.
- Understanding dynamic mechanisms requires studying protein interactions.
Purpose of the Study:
- To investigate age-associated changes in protein complexes within naive CD4+ and CD8+ T cells.
- To identify key protein complexes that characterize T cell aging and immune dysfunction.
- To explore potential therapeutic targets for reversing age-related immune deterioration.
Main Methods:
- Integration of single-cell RNA sequencing data from three age groups.
- Analysis of protein-protein and domain-domain interaction networks.
- Prediction and comparison of transcriptional protein complexes.
Main Results:
- Aging significantly affects protein complex composition in naive CD8+ T cells, leading to a decrease.
- Both CD4+ and CD8+ T cells show deregulation of complexes involving transcription factors.
- SMAD3 and BCL11A complexes in CD4+ T cells serve as key markers distinguishing age groups.
Conclusions:
- Protein complex alterations are a hallmark of T cell aging.
- SMAD3, BCL11A, FOS, and MBD3 complexes are implicated in age-associated immune deregulation.
- These complexes represent potential targets for interventions against age-related immune decline.
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