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Alterations in thymocyte populations under conditions of endotoxin tolerance. Chin Med J (Engl) 2021; 134:1855-1865. [PMID: 34133355 PMCID: PMC8367067 DOI: 10.1097/cm9.0000000000001598] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 11/25/2022] Open
Abstract
Background: Endotoxin tolerance (ET) is a protective phenomenon in which pre-treatment with a tolerance dose of lipopolysaccharide (LPS) leads to dramatically elevated survival. Accumulating evidence has shown that peripheral T cells contribute to the induction of ET. However, what happens to T cell development in the thymus under ET conditions remains unclear. The purpose of this study was to analyze the alterations in thymocyte populations (double-positive [DP] and single-positive [SP] cells) under ET conditions. Methods: Mice were intraperitoneally injected with LPS at a concentration of 5 mg/kg to establish an LPS tolerance model and were divided into two groups: a group examined 72 h after LPS injection (72-h group) and a group examined 8 days after LPS injection (8-day group). Injection of phosphate-buffered saline was used as a control (control group). Changes in thymus weight, cell counts, and morphology were detected in the three groups. Moreover, surface molecules such as CD4, CD8, CD44, CD69, and CD62L were analyzed using flow cytometry. Furthermore, proliferation, apoptosis, cytokine production, and extracellular signal-regulated kinase (ERK) pathway signaling were analyzed in thymocyte populations. The polymorphism and length of the T-cell receptor (TCR) β chain complementarity-determining region 3 (CDR3) were analyzed using capillary electrophoresis DNA laser scanning analysis (ABI 3730). Results: Thymus weight and cell counts were decreased in the early stage but recovered by the late stage in a murine model of LPS-induced ET. Moreover, the proportions of DP cells (control: 72.130 ± 4.074, 72-h: 10.600 ± 3.517, 8-day: 84.770 ± 2.228), CD4+ SP cells (control: 15.770 ± 4.419, 72-h: 44.670 ± 3.089, 8-day: 6.367 ± 0.513), and CD8+ SP cells (control: 7.000 ± 1.916, 72-h: 34.030 ± 3.850, 8-day: 5.133 ± 0.647) were obviously different at different stages of ET. The polymorphism and length of TCR β chain CDR3 also changed obviously, indicating the occurrence of TCR rearrangement and thymocyte diversification. Further analysis showed that the expression of surface molecules, including CD44, CD69, and CD62L, on thymocyte populations (DP and SP cells) were changed to different degrees. Finally, the proliferation, apoptosis, cytokine production, and ERK pathway signaling of thymocyte populations were changed significantly. Conclusion: These data reveal that alterations in thymocyte populations might contribute to the establishment of ET.
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Köhler M, Röring M, Schorch B, Heilmann K, Stickel N, Fiala GJ, Schmitt LC, Braun S, Ehrenfeld S, Uhl FM, Kaltenbacher T, Weinberg F, Herzog S, Zeiser R, Schamel WW, Jumaa H, Brummer T. Activation loop phosphorylation regulates B-Raf in vivo and transformation by B-Raf mutants. EMBO J 2015; 35:143-61. [PMID: 26657898 DOI: 10.15252/embj.201592097] [Citation(s) in RCA: 25] [Impact Index Per Article: 2.5] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 05/19/2015] [Accepted: 10/28/2015] [Indexed: 12/19/2022] Open
Abstract
Despite being mutated in cancer and RASopathies, the role of the activation segment (AS) has not been addressed for B-Raf signaling in vivo. Here, we generated a conditional knock-in mouse allowing the expression of the B-Raf(AVKA) mutant in which the AS phosphoacceptor sites T599 and S602 are replaced by alanine residues. Surprisingly, despite producing a kinase-impaired protein, the Braf(AVKA) allele does not phenocopy the lethality of Braf-knockout or paradoxically acting knock-in alleles. However, Braf(AVKA) mice display abnormalities in the hematopoietic system, a distinct facial morphology, reduced ERK pathway activity in the brain, and an abnormal gait. This phenotype suggests that maximum B-Raf activity is required for the proper development, function, and maintenance of certain cell populations. By establishing conditional murine embryonic fibroblast cultures, we further show that MEK/ERK phosphorylation and the immediate early gene response toward growth factors are impaired in the presence of B-Raf(AVKA). Importantly, alanine substitution of T599/S602 impairs the transformation potential of oncogenic non-V600E B-Raf mutants and a fusion protein, suggesting that blocking their phosphorylation could represent an alternative strategy to ATP-competitive inhibitors.
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Affiliation(s)
- Martin Köhler
- Faculty of Medicine, Institute of Molecular Medicine and Cell Research, Albert-Ludwigs-University (ALU), Freiburg, Germany Centre for Biological Systems Analysis ZBSA, ALU, Freiburg, Germany Spemann Graduate School for Biology and Medicine, ALU, Freiburg, Germany Faculty of Biology, ALU, Freiburg, Germany
| | - Michael Röring
- Faculty of Medicine, Institute of Molecular Medicine and Cell Research, Albert-Ludwigs-University (ALU), Freiburg, Germany Centre for Biological Systems Analysis ZBSA, ALU, Freiburg, Germany Spemann Graduate School for Biology and Medicine, ALU, Freiburg, Germany Faculty of Biology, ALU, Freiburg, Germany
| | - Björn Schorch
- Centre for Biological Systems Analysis ZBSA, ALU, Freiburg, Germany Spemann Graduate School for Biology and Medicine, ALU, Freiburg, Germany Faculty of Biology, ALU, Freiburg, Germany
| | - Katharina Heilmann
- Centre for Biological Systems Analysis ZBSA, ALU, Freiburg, Germany Faculty of Biology, ALU, Freiburg, Germany
| | - Natalie Stickel
- Spemann Graduate School for Biology and Medicine, ALU, Freiburg, Germany Faculty of Biology, ALU, Freiburg, Germany Department of Hematology and Oncology, University Medical Center ALU, Freiburg, Germany
| | - Gina J Fiala
- Spemann Graduate School for Biology and Medicine, ALU, Freiburg, Germany Faculty of Biology, ALU, Freiburg, Germany Centre for Biological Signalling Studies BIOSS, ALU, Freiburg, Germany Department of Molecular Immunology, Faculty of Biology, University of Freiburg, Freiburg, Germany
| | - Lisa C Schmitt
- Faculty of Medicine, Institute of Molecular Medicine and Cell Research, Albert-Ludwigs-University (ALU), Freiburg, Germany Centre for Biological Systems Analysis ZBSA, ALU, Freiburg, Germany Faculty of Biology, ALU, Freiburg, Germany
| | - Sandra Braun
- Faculty of Medicine, Institute of Molecular Medicine and Cell Research, Albert-Ludwigs-University (ALU), Freiburg, Germany Centre for Biological Systems Analysis ZBSA, ALU, Freiburg, Germany Centre for Biological Signalling Studies BIOSS, ALU, Freiburg, Germany
| | - Sophia Ehrenfeld
- Faculty of Medicine, Institute of Molecular Medicine and Cell Research, Albert-Ludwigs-University (ALU), Freiburg, Germany Faculty of Biology, ALU, Freiburg, Germany
| | - Franziska M Uhl
- Faculty of Medicine, Institute of Molecular Medicine and Cell Research, Albert-Ludwigs-University (ALU), Freiburg, Germany Faculty of Biology, ALU, Freiburg, Germany
| | - Thorsten Kaltenbacher
- Faculty of Medicine, Institute of Molecular Medicine and Cell Research, Albert-Ludwigs-University (ALU), Freiburg, Germany Faculty of Biology, ALU, Freiburg, Germany
| | - Florian Weinberg
- Faculty of Medicine, Institute of Molecular Medicine and Cell Research, Albert-Ludwigs-University (ALU), Freiburg, Germany Centre for Biological Systems Analysis ZBSA, ALU, Freiburg, Germany Faculty of Biology, ALU, Freiburg, Germany
| | - Sebastian Herzog
- Centre for Biological Systems Analysis ZBSA, ALU, Freiburg, Germany Centre for Biological Signalling Studies BIOSS, ALU, Freiburg, Germany Department of Molecular Immunology, Faculty of Biology, University of Freiburg, Freiburg, Germany
| | - Robert Zeiser
- Department of Hematology and Oncology, University Medical Center ALU, Freiburg, Germany Centre for Biological Signalling Studies BIOSS, ALU, Freiburg, Germany Comprehensive Cancer Centre, Freiburg, Germany German Consortium for Translational Cancer Research DKTK, Standort Freiburg, Germany
| | - Wolfgang W Schamel
- Centre for Biological Signalling Studies BIOSS, ALU, Freiburg, Germany Department of Molecular Immunology, Faculty of Biology, University of Freiburg, Freiburg, Germany Center for Chronic Immunodeficiency CCI, University Medical Center, Freiburg, Germany
| | - Hassan Jumaa
- Centre for Biological Signalling Studies BIOSS, ALU, Freiburg, Germany Department of Molecular Immunology, Faculty of Biology, University of Freiburg, Freiburg, Germany Institute of Immunology, University Hospital Ulm, Ulm, Germany
| | - Tilman Brummer
- Faculty of Medicine, Institute of Molecular Medicine and Cell Research, Albert-Ludwigs-University (ALU), Freiburg, Germany Centre for Biological Systems Analysis ZBSA, ALU, Freiburg, Germany Faculty of Biology, ALU, Freiburg, Germany Centre for Biological Signalling Studies BIOSS, ALU, Freiburg, Germany Comprehensive Cancer Centre, Freiburg, Germany German Consortium for Translational Cancer Research DKTK, Standort Freiburg, Germany
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Zou Q, Jin J, Xiao Y, Hu H, Zhou X, Jie Z, Xie X, Li JYH, Cheng X, Sun SC. T cell development involves TRAF3IP3-mediated ERK signaling in the Golgi. ACTA ACUST UNITED AC 2015. [PMID: 26195727 PMCID: PMC4516800 DOI: 10.1084/jem.20150110] [Citation(s) in RCA: 27] [Impact Index Per Article: 2.7] [Reference Citation Analysis] [Abstract] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 12/23/2022]
Abstract
Zou et al. identify a Golgi-associated factor, TRAF3-interacting protein 3 (TRAF3IP3), as a crucial mediator of thymocyte development regulating TCR-stimulated ERK signaling in the Golgi. Generation of T lymphocytes in the thymus is guided by signal transduction from the T cell receptor (TCR), but the underlying mechanism is incompletely understood. Here we have identified a Golgi-associated factor, TRAF3-interacting protein 3 (TRAF3IP3), as a crucial mediator of thymocyte development. TRAF3IP3 deficiency in mice attenuates the generation of mature thymocytes caused by impaired thymocyte-positive selection. TRAF3IP3 mediates TCR-stimulated activation of the mitogen-activated protein kinase (MAPK) extracellular signal-regulated kinase (ERK) and its upstream kinase mitogen/extracellular signal-regulated kinase (MEK). Interestingly, TRAF3IP3 exerts this signaling function through recruiting MEK to the Golgi and, thereby, facilitating the interaction of MEK with its activator BRAF. Transgenic expression of a constitutively active MEK rescues the T cell development block in Traf3ip3 knockout mice. These findings establish TRAF3IP3 as a novel regulator of T cell development and suggest a Golgi-specific ERK signaling mechanism that regulates thymocyte development.
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Affiliation(s)
- Qiang Zou
- Department of Immunology, The University of Texas MD Anderson Cancer Center, Houston, TX 77030
| | - Jin Jin
- Department of Immunology, The University of Texas MD Anderson Cancer Center, Houston, TX 77030
| | - Yichuan Xiao
- Department of Immunology, The University of Texas MD Anderson Cancer Center, Houston, TX 77030
| | - Hongbo Hu
- Department of Immunology, The University of Texas MD Anderson Cancer Center, Houston, TX 77030
| | - Xiaofei Zhou
- Department of Immunology, The University of Texas MD Anderson Cancer Center, Houston, TX 77030
| | - Zuliang Jie
- Department of Immunology, The University of Texas MD Anderson Cancer Center, Houston, TX 77030
| | - Xiaoping Xie
- Department of Immunology, The University of Texas MD Anderson Cancer Center, Houston, TX 77030
| | - James Y H Li
- Department of Genetics and Developmental Biology, University of Connecticut Health Center, Farmington, CT 06030
| | - Xuhong Cheng
- Department of Immunology, The University of Texas MD Anderson Cancer Center, Houston, TX 77030
| | - Shao-Cong Sun
- Department of Immunology, The University of Texas MD Anderson Cancer Center, Houston, TX 77030 The University of Texas Graduate School of Biomedical Sciences, Houston, TX 77030
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Li Y, Takahashi M, Stork PJS. Ras-mutant cancer cells display B-Raf binding to Ras that activates extracellular signal-regulated kinase and is inhibited by protein kinase A phosphorylation. J Biol Chem 2013; 288:27646-27657. [PMID: 23893412 DOI: 10.1074/jbc.m113.463067] [Citation(s) in RCA: 23] [Impact Index Per Article: 1.9] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 01/07/2023] Open
Abstract
The small G protein Ras regulates proliferation through activation of the mitogen-activated protein (MAP) kinase (ERK) cascade. The first step of Ras-dependent activation of ERK signaling is Ras binding to members of the Raf family of MAP kinase kinase kinases, C-Raf and B-Raf. Recently, it has been reported that in melanoma cells harboring oncogenic Ras mutations, B-Raf does not bind to Ras and does not contribute to basal ERK activation. For other types of Ras-mutant tumors, the relative contributions of C-Raf and B-Raf are not known. We examined non-melanoma cancer cell lines containing oncogenic Ras mutations and express both C-Raf and B-Raf isoforms, including the lung cancer cell line H1299 cells. Both B-Raf and C-Raf were constitutively bound to oncogenic Ras and contributed to Ras-dependent ERK activation. Ras binding to B-Raf and C-Raf were both subject to inhibition by the cAMP-dependent protein kinase PKA. cAMP inhibited the growth of H1299 cells and Ras-dependent ERK activation via PKA. PKA inhibited the binding of Ras to both C-Raf and B-Raf through phosphorylations of C-Raf at Ser-259 and B-Raf at Ser-365, respectively. These studies demonstrate that in non-melanocytic Ras-mutant cancer cells, Ras signaling to B-Raf is a significant contributor to ERK activation and that the B-Raf pathway, like that of C-Raf, is a target for inhibition by PKA. We suggest that cAMP and hormones coupled to cAMP may prove useful in dampening the effects of oncogenic Ras in non-melanocytic cancer cells through PKA-dependent actions on B-Raf as well as C-Raf.
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Affiliation(s)
- Yanping Li
- Vollum Institute, Oregon Health and Science University, Portland, Oregon 97239
| | - Maho Takahashi
- Vollum Institute, Oregon Health and Science University, Portland, Oregon 97239
| | - Philip J S Stork
- Vollum Institute, Oregon Health and Science University, Portland, Oregon 97239.
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