scholarly journals LAMTOR2 Is Dispensable for T Cell Receptor-Mediated Signaling of Thymocytes but Controls Medullary Thymic Epithelial Cells

Blood ◽  
2018 ◽  
Vol 132 (Supplement 1) ◽  
pp. 1122-1122
Author(s):  
Lina Wendeler ◽  
Lukas A Huber ◽  
Christoph Klein ◽  
Daniel Kotlarz

Abstract Human LAMTOR2 deficiency is characterized by severe congenital neutropenia, growth failure, partial albinism, as well as B and T cell deficiencies (Bohn et al., Nat Med 2007). To determine the role of the endosomal adaptor LAMTOR2 in T cell development and homeostasis we used conditional knockout mouse models. Mx1-Cre-driven knockout of Lamtor2 resulted in reduction of thymus weight and total thymocyte numbers. Immunophenotyping revealed an impaired T cell development characterized by a partial block at the double negative CD4-CD8- T cell precursor stage after 7 and 21 days of poly I:C injection that induced deletion of the Lamtor2 gene. Since Mx1-Cre-driven knockout does not allow a discrimination between T cell intrinsic and extrinsic effects, we next generated pre-TCRα-iCre conditional knockout mice. In contrast to Mx1-Cre-Lamtor2fl/fl mice, mice with T cell-specific knockout of Lamtor2 showed normal frequencies of total thymocytes and T cell progenitor subsets. Furthermore, LAMTOR2-deficient thymocytes exhibited normal TCR signaling (p-ERK, p-LAT, p-LCK, p-PLCγ, Nur77) and internalization of TCRβ upon stimulation with anti-CD3ε +/- anti-CD28, indicating that LAMTOR2 in T cells is dispensable for thymocyte development. To assess whether T cell developmental defects in Mx1-Cre-Lamtor2fl/fl mice are caused by a dysfunctional thymic epithelium, we analyzed thymic epithelial cells (TECs) after 4 days of poly I:C injection by flow cytometry and detected a reduced ratio of CD45-EpCAM+UEA-1+Ly51- medullary TECs (mTECs) to CD45-EpCAM+UEA-1-Ly51+ cortical TECs in LAMTOR2-deficient mice. Further studies are underway to determine the role of LAMTOR2 in mTECs. Taken together, our findings show that LAMTOR2 is not required for TCR-mediated signaling but plays a critical role in controlling mTEC homeostasis. Disclosures No relevant conflicts of interest to declare.

2021 ◽  
Author(s):  
Sayumi Fujimori ◽  
Izumi Ohigashi ◽  
Hayato Abe ◽  
M Mark Taketo ◽  
Yousuke Takahama ◽  
...  

In the thymus, the thymic epithelium provides a microenvironment essential for the development of functionally competent and self-tolerant T cells. Previous findings showed that modulation of Wnt/β-catenin signaling in thymic epithelial cells (TECs) disrupts embryonic thymus organogenesis. However, the role of β-catenin in TECs for postnatal T cell development remains to be elucidated. Here, we analyzed gain-of function (GOF) and loss-of-function (LOF) of β-catenin highly specific in TECs. We found that GOF of β-catenin in TECs results in severe thymic dysplasia and T cell deficiency beginning from the embryonic period. By contrast, LOF of β-catenin in TECs reduces the number of cortical TECs and thymocytes modestly and only postnatally. These results indicate that fine-tuning of β-catenin expression within a permissive range is required for TECs to generate an optimal microenvironment to support postnatal T cell development.


2020 ◽  
Vol 11 ◽  
Author(s):  
Hong-Xia Wang ◽  
Wenrong Pan ◽  
Lei Zheng ◽  
Xiao-Ping Zhong ◽  
Liang Tan ◽  
...  

2012 ◽  
Vol 109 (51) ◽  
pp. 21040-21045 ◽  
Author(s):  
D. Ma ◽  
L. Wang ◽  
S. Wang ◽  
Y. Gao ◽  
Y. Wei ◽  
...  

2005 ◽  
Vol 25 (2) ◽  
pp. 789-796 ◽  
Author(s):  
Saijai Cheunsuk ◽  
Zhe-Xiong Lian ◽  
Guo-Xiang Yang ◽  
M. Eric Gershwin ◽  
Jeffrey R. Gruen ◽  
...  

ABSTRACT PRSS16 is a serine protease expressed exclusively in cortical thymic epithelial cells (cTEC) of the thymus, suggesting that it plays a role in the processing of peptide antigens during the positive selection of T cells. Moreover, the human PRSS16 gene is encoded in a region near the class I major histocompatibility complex (MHC) that has been linked to type 1 diabetes mellitus susceptibility. The mouse orthologue Prss16 is conserved in genetic structure, sequence, and pattern of expression. To study the role of Prss16 in thymic development, we generated a deletion mutant of Prss16 and characterized T-lymphocyte populations and MHC class II expression on cortical thymic epithelial cells. Prss16-deficient mice develop normally, are fertile, and show normal thymic morphology, cellularity, and anatomy. The total numbers and frequencies of thymocytes and splenic T-cell populations did not differ from those of wild-type controls. Surface expression of MHC class II on cTEC was also similar in homozygous mutant and wild-type animals, and invariant chain degradation was not impaired by deletion of Prss16. These findings suggest that Prss16 is not required for quantitatively normal T-cell development.


2019 ◽  
Vol 116 (38) ◽  
pp. 19090-19097 ◽  
Author(s):  
Hong Shen ◽  
Yewei Ji ◽  
Yi Xiong ◽  
Hana Kim ◽  
Xiao Zhong ◽  
...  

Aberrant T cell development is a pivotal risk factor for autoimmune disease; however, the underlying molecular mechanism of T cell overactivation is poorly understood. Here, we identified NF–κB-inducing kinase (NIK) and IkB kinase α (IKKα) in thymic epithelial cells (TECs) as essential regulators of T cell development. Mouse TEC-specific ablation of either NIK or IKKα resulted in severe T cell-mediated inflammation, injury, and fibrosis in the liver and lung, leading to premature death within 18 d of age. NIK or IKKα deficiency abrogated medullary TEC development, and led to breakdown of central tolerance, production of autoreactive T cells, and fatal autoimmune destruction in the liver and lung. TEC-specific ablation of NIK or IKKα also impaired thymic T cell development from the double-negative through the double-positive stages and inhibited peripheral B cell development. These results unravel a hitherto unrecognized essential role of TEC-intrinsic NIK and IKKα pathways in autoimmunity and T cell-instigated chronic liver and lung diseases.


Author(s):  
Rafael Gras-Pena ◽  
Nichole M. Danzl ◽  
Mohsen Khosravi-Maharlooei ◽  
Sean R. Campbell ◽  
Amanda E. Ruiz ◽  
...  

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