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Mesenchymal Stem Cell Regulation of Macrophage Phagocytosis; Quantitation and Imaging
Published on: July 16, 2021
Small Heterodimer Partner Regulates Dichotomous T Cell Expansion by Macrophages
Sayyed Hamed Shahoei1, Young-Chae Kim1, Samuel J Cler1
1Department of Molecular and Integrative Physiology, University of Illinois at Urbana-Champaign, Urbana, Illinois.
Abstract:
The involvement of small heterodimer partner (SHP) in the inhibition of hepatic bile acid synthesis from cholesterol has been established. However, extrahepatic expression of SHP implies that SHP may have regulatory functions other than those in the liver. Here, we find that SHP mRNA expression is high in murine bone marrow cells, suggesting a physiological role within macrophages. Indeed, expression of SHP in macrophages decreases the transcriptional activity and nuclear localization of nuclear factor κB, whereas downregulation of SHP has the opposite effects. Expression of genes associated with macrophage-T cell crosstalk were altered by overexpression or downregulation of SHP. Intriguingly, increasing SHP expression in macrophages resulted in decreased T cell expansion, a hallmark of T cell activation, whereas knockdown of SHP resulted in increased expansion. Analyses of the expanded T cells revealed a dichotomous skewing between effector T cells and regulatory T cells (Tregs), with SHP overexpression reducing Tregs and downregulation of SHP increasing their expansion. The expanded Tregs were confirmed to be suppressive via adoptive transfers. IL-2 and TGF-β, known inducers of Treg differentiation, were found to be regulated by SHP. Furthermore, SHP occupancy at the promoter region of IL-2 was increased after macrophages were challenged with lipopolysaccharide. Neutralizing antibodies to IL-2 and TGF-β inhibited the expansion of Tregs mediated by downregulation of SHP. This study demonstrates that expression and activity of SHP within macrophages can alter T cell fate and identifies SHP as a potential therapeutic target for autoimmune diseases or solid cancers.
Insights
Small heterodimer partner (SHP) regulates macrophage function and influences T cell fate. SHP impacts T cell expansion and differentiation, suggesting its potential as a therapeutic target for immune disorders.
Area of Science:
- Immunology
- Molecular Biology
- Cell Biology
Background:
- Small heterodimer partner (SHP) is known to inhibit hepatic bile acid synthesis.
- Extrahepatic expression of SHP suggests broader regulatory roles beyond the liver.
Purpose of the Study:
- To investigate the role of SHP in macrophages and its influence on T cell responses.
- To explore SHP as a potential therapeutic target in immune-related diseases.
Main Methods:
- Assessed SHP mRNA expression in murine bone marrow cells and macrophages.
- Manipulated SHP expression in macrophages and analyzed its effects on nuclear factor κB (NF-κB) activity.
- Studied the impact of SHP on macrophage-T cell crosstalk, including T cell expansion and differentiation.
- Investigated the regulation of IL-2 and TGF-β by SHP in macrophages.
Main Results:
- SHP expression is high in murine bone marrow cells, indicating a role in macrophages.
- SHP in macrophages suppresses NF-κB transcriptional activity and nuclear localization.
- Altered SHP levels in macrophages modulated T cell expansion and skewed differentiation towards or away from regulatory T cells (Tregs).
- SHP regulates IL-2 and TGF-β, key cytokines in Treg differentiation, and its occupancy at the IL-2 promoter increases upon LPS challenge.
Conclusions:
- SHP plays a critical role in regulating macrophage function and immune cell crosstalk.
- SHP expression in macrophages significantly impacts T cell fate, including expansion and Treg differentiation.
- SHP emerges as a promising therapeutic target for autoimmune diseases and solid cancers.
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