Modeling the Dynamics of T-Cell Development in the Thymus

被引:19
作者
Robert, Philippe A. [1 ]
Kunze-Schumacher, Heike [2 ]
Greiff, Victor [1 ]
Krueger, Andreas [2 ]
机构
[1] Univ Oslo, Dept Immunol, N-0372 Oslo, Norway
[2] Goethe Univ, Inst Mol Med, D-60590 Frankfurt, Germany
关键词
thymic selection; T-cell development; T-cell receptor (TCR); mathematical modeling; multi-scale models; complex systems; ordinary differential equations (ODE); agent-based models; POSITIVE SELECTION; NEGATIVE SELECTION; HEMATOPOIETIC PROGENITORS; CLONAL DELETION; MOUSE THYMUS; THYMOCYTES; PROLIFERATION; SELF; KINETICS; CYCLE;
D O I
10.3390/e23040437
中图分类号
O4 [物理学];
学科分类号
0702 ;
摘要
The thymus hosts the development of a specific type of adaptive immune cells called T cells. T cells orchestrate the adaptive immune response through recognition of antigen by the highly variable T-cell receptor (TCR). T-cell development is a tightly coordinated process comprising lineage commitment, somatic recombination of Tcr gene loci and selection for functional, but non-self-reactive TCRs, all interspersed with massive proliferation and cell death. Thus, the thymus produces a pool of T cells throughout life capable of responding to virtually any exogenous attack while preserving the body through self-tolerance. The thymus has been of considerable interest to both immunologists and theoretical biologists due to its multi-scale quantitative properties, bridging molecular binding, population dynamics and polyclonal repertoire specificity. Here, we review experimental strategies aimed at revealing quantitative and dynamic properties of T-cell development and how they have been implemented in mathematical modeling strategies that were reported to help understand the flexible dynamics of the highly dividing and dying thymic cell populations. Furthermore, we summarize the current challenges to estimating in vivo cellular dynamics and to reaching a next-generation multi-scale picture of T-cell development.
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页数:36
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共 160 条
[1]   Eosinophils interact with thymocytes and proliferate in the human thymus [J].
Albinsson, Sofie ;
Lingblom, Christine ;
Lundqvist, Christina ;
Telemo, Esbjorn ;
Ekwall, Olov ;
Wenneras, Christine .
EUROPEAN JOURNAL OF IMMUNOLOGY, 2021, 51 (06) :1539-1541
[2]   Thymopoiesis independent of common lymphoid progenitors [J].
Allman, D ;
Sambandam, A ;
Kim, S ;
Miller, JP ;
Pagan, A ;
Well, D ;
Meraz, A ;
Bhandoola, A .
NATURE IMMUNOLOGY, 2003, 4 (02) :168-174
[3]   T cell homeostasis: Thymus regeneration and peripheral T cell restoration in mice with a reduced fraction of competent precursors [J].
Almeida, ARM ;
Borghans, JAM ;
Freitas, AA .
JOURNAL OF EXPERIMENTAL MEDICINE, 2001, 194 (05) :591-599
[4]   Modeling T cell antigen discrimination based on feedback control of digital ERK responses [J].
Altan-Bonnet, G ;
Germain, RN .
PLOS BIOLOGY, 2005, 3 (11) :1925-1938
[5]  
Anderson G, 1998, J IMMUNOL, V161, P6599
[6]   Acute Thymic Involution and Mechanisms for Recovery [J].
Ansari, Abdur Rahman ;
Liu, Huazhen .
ARCHIVUM IMMUNOLOGIAE ET THERAPIAE EXPERIMENTALIS, 2017, 65 (05) :401-420
[7]   IL-2 and IL-15 dependent thymic development of Foxp3-expressing regulatory T lymphocytes [J].
Apert, Cecile ;
Romagnoli, Paola ;
van Meerwijk, Joost P. M. .
PROTEIN & CELL, 2018, 9 (04) :322-332
[8]   Quantitative and temporal requirements revealed for Zap70 catalytic activity during T cell development [J].
Au-Yeung, Byron B. ;
Melichar, Heather J. ;
Ross, Jenny O. ;
Cheng, Debra A. ;
Zikherman, Julie ;
Shokat, Kevan M. ;
Robey, Ellen A. ;
Weiss, Arthur .
NATURE IMMUNOLOGY, 2014, 15 (07) :687-694
[9]   Quantifying Thymic Export: Combining Models of Naive T Cell Proliferation and TCR Excision Circle Dynamics Gives an Explicit Measure of Thymic Output [J].
Bains, Iren ;
Thiebaut, Rodolphe ;
Yates, Andrew J. ;
Callard, Robin .
JOURNAL OF IMMUNOLOGY, 2009, 183 (07) :4329-4336
[10]   Optimal Experimental Design for Parameter Estimation of a Cell Signaling Model [J].
Bandara, Samuel ;
Schloeder, Johannes P. ;
Eils, Roland ;
Bock, Hans Georg ;
Meyer, Tobias .
PLOS COMPUTATIONAL BIOLOGY, 2009, 5 (11)