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Glucocorticoid regulation of the mTORC1 pathway modulates CD4+ T cell responses during infection
Huihui Chen1,2, Zhiwen Liu3,4, Jie Zha3,4
1Department of Ophthalmology the Second Xiangya Hospital of Central South University Changsha China.
Objectives:
Conventional glucocorticoid (GC) treatment poses significant risks for opportunistic infections due to its suppressive impact on CD4+ T cells. This study aimed to explore the mechanisms by which GCs modulate the functionality of CD4+ T cells during infection.
Methods:
We consistently measured FOXP3, inflammatory cytokines and phospho-S6 ribosomal protein levels in CD4+ T cells from patients undergoing conventional GC treatment. Using Foxp3EGFP animals, we investigated the dynamic activation of the mechanistic target of rapamycin complex 1 (mTORC1) pathway and its correlation with the immunoregulatory function of CD4+ T cells under the influence of GCs.
Results:
GCs dynamically altered the expression pattern of FOXP3 in CD4+ T cells, promoting their acquisition of an active T regulatory (Treg) cell phenotype upon stimulation. Mechanistically, GCs undermined the kinetics of the mTORC1 pathway, which was closely correlated with phenotype conversion and functional properties of CD4+ T cells. Dynamic activation of the mTORC1 signaling modified the GC-dampened immunoregulatory capacity of CD4+ T cells by phenotypically and functionally bolstering the FOXP3+ Treg cells. Interventions targeting the mTORC1 pathway effectively modulated the GC-dampened immunoregulatory capacity of CD4+ T cells.
Conclusion:
These findings highlight a novel mTORC1-mediated mechanism underlying CD4+ T cell immunity in the context of conventional GC treatment.
Insights
Glucocorticoids (GCs) impact CD4+ T cells, increasing infection risk. This study reveals GCs alter T regulatory cells via the mTORC1 pathway, offering a target to restore immune function during GC therapy.
Area of Science:
- Immunology
- Cellular Biology
- Pharmacology
Background:
- Conventional glucocorticoid (GC) therapy can suppress CD4+ T cell function, increasing susceptibility to opportunistic infections.
- Understanding the precise mechanisms of GC-induced immunomodulation in CD4+ T cells is crucial for mitigating adverse effects.
Purpose of the Study:
- To investigate how GCs modulate CD4+ T cell functionality during infection.
- To elucidate the role of the mechanistic target of rapamycin complex 1 (mTORC1) pathway in GC-mediated effects on CD4+ T cells.
Main Methods:
- Measurement of FOXP3, inflammatory cytokines, and phospho-S6 ribosomal protein in CD4+ T cells from patients on GC treatment.
- Utilizing Foxp3EGFP reporter mice to dynamically assess mTORC1 pathway activation and its correlation with CD4+ T cell function under GC influence.
Main Results:
- GCs induced a T regulatory (Treg) cell phenotype in CD4+ T cells by altering FOXP3 expression.
- GCs impaired the kinetics of the mTORC1 pathway, which correlated with changes in CD4+ T cell phenotype and function.
- Targeting the mTORC1 pathway modulated the GC-impaired immunoregulatory capacity of CD4+ T cells, enhancing Treg cell function.
Conclusions:
- A novel mTORC1-mediated mechanism contributes to CD4+ T cell immune responses during conventional GC treatment.
- Modulation of the mTORC1 pathway represents a potential therapeutic strategy to restore immune function compromised by GC therapy.
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