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Combinatorial depletions of G-protein coupled receptor kinases in immune cells identify pleiotropic and cell
Katharina M Glaser1,2,3, Teresa K Tarrant4, Tim Lämmermann1
1Max Planck Institute of Immunobiology and Epigenetics, Freiburg, Germany.
Abstract:
G-protein coupled receptor kinases (GRKs) participate in the regulation of chemokine receptors by mediating receptor desensitization. They can be recruited to agonist-activated G-protein coupled receptors (GPCRs) and phosphorylate their intracellular parts, which eventually blocks signal propagation and often induces receptor internalization. However, there is growing evidence that GRKs can also control cellular functions beyond GPCR regulation. Immune cells commonly express two to four members of the GRK family (GRK2, GRK3, GRK5, GRK6) simultaneously, but we have very limited knowledge about their interplay in primary immune cells. In particular, we are missing comprehensive studies comparing the role of this GRK interplay for (a) multiple GPCRs within one leukocyte type, and (b) one specific GPCR between several immune cell subsets. To address this issue, we generated mouse models of single, combinatorial and complete GRK knockouts in four primary immune cell types (neutrophils, T cells, B cells and dendritic cells) and systematically addressed the functional consequences on GPCR-controlled cell migration and tissue localization. Our study shows that combinatorial depletions of GRKs have pleiotropic and cell-type specific effects in leukocytes, many of which could not be predicted. Neutrophils lacking all four GRK family members show increased chemotactic migration responses to a wide range of GPCR ligands, whereas combinatorial GRK depletions in other immune cell types lead to pro- and anti-migratory responses. Combined depletion of GRK2 and GRK6 in T cells and B cells shows distinct functional outcomes for (a) one GPCR type in different cell types, and (b) different GPCRs in one cell type. These GPCR-type and cell-type specific effects reflect in altered lymphocyte chemotaxis in vitro and localization in vivo. Lastly, we provide evidence that complete GRK deficiency impairs dendritic cell homeostasis, which unexpectedly results from defective dendritic cell differentiation and maturation in vitro and in vivo. Together, our findings demonstrate the complexity of GRK functions in immune cells, which go beyond GPCR desensitization in specific leukocyte types. Furthermore, they highlight the need for studying GRK functions in primary immune cells to address their specific roles in each leukocyte subset.
Insights
G-protein coupled receptor kinases (GRKs) regulate immune cell migration and function. Their complex interplay in leukocytes has pleiotropic and cell-type specific effects beyond GPCR desensitization, impacting immune cell homeostasis.
Area of Science:
- Immunology
- Cell Biology
- Molecular Biology
Background:
- G-protein coupled receptor kinases (GRKs) are known to regulate G-protein coupled receptors (GPCRs) through desensitization and internalization.
- Immune cells express multiple GRK family members (GRK2, GRK3, GRK5, GRK6), but their interplay and specific roles in primary immune cells are poorly understood.
- Existing research lacks comprehensive studies on GRK interplay across different GPCRs within a single leukocyte type and across various immune cell subsets for a single GPCR.
Purpose of the Study:
- To investigate the complex interplay of GRKs in primary immune cells and their functional consequences on GPCR-mediated cell migration and tissue localization.
- To compare the role of GRK interplay for multiple GPCRs within one leukocyte type and for one specific GPCR across several immune cell subsets.
- To elucidate the non-GPCR regulatory functions of GRKs in immune cell homeostasis, differentiation, and maturation.
Main Methods:
- Generation of mouse models with single, combinatorial, and complete knockouts of GRK family members in neutrophils, T cells, B cells, and dendritic cells.
- Systematic assessment of functional consequences on GPCR-controlled cell migration and tissue localization.
- In vitro and in vivo analyses of immune cell differentiation, maturation, and chemotaxis.
Main Results:
- Combinatorial GRK depletions exhibit pleiotropic and cell-type specific effects in leukocytes, many of which were unpredictable.
- Neutrophils lacking all four GRKs showed enhanced chemotactic migration to various GPCR ligands.
- Combined depletion of GRK2 and GRK6 in T and B cells resulted in distinct outcomes for specific GPCRs and cell types, impacting lymphocyte chemotaxis and localization.
- Complete GRK deficiency impaired dendritic cell homeostasis due to defective differentiation and maturation.
Conclusions:
- GRK functions in immune cells extend beyond GPCR desensitization, demonstrating complexity and cell-type specificity.
- The interplay of GRKs significantly influences immune cell migration, localization, and homeostasis.
- Studying GRK functions within specific leukocyte subsets is crucial for understanding their distinct roles in immunity.
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