TY - JOUR A1 - Duschl, Albert A1 - Jahn, Ute A1 - Bertling, Claudia A1 - Sebald, Walter T1 - A comparison of assays for the response of primary human T-cells upon stimulation with interleukin-2, interleukin-4 and interleukin-7 N2 - The most commonly used assay to quantitate the response of peripheral T~cells upon stimulation with growth factors is determination of incorporated (JH]TdR. We compared thls test to three other methods: 1. direct countlog of cells with a Coulter type counter as reference assay, 2. a colorimetric assay using the tetrazolium dye 3-[ 4,S-dimethylthiazol-l-yl]-2,5diphenyl tetrazolium (MTT), which is a cheap and increasingly popular non-radioactive method and 3. incorporation of the thymidine analog 5-bromo-2'-deoxyuridine detection with a monoclonal antibody on cytospins. Primary human PHA-blasts from >30 healthy individuals were stimulated with IL-2, IL-4 aod IL-7 and assayed with up to four different methods. We discuss the advantages and disadvantages of the assays used and tbe effects of differences between cell preparations. We observed no significant variations between individuals for the dose dependence, but the relative emctency of IL4 compared to IL-2 and IL-7 was variable. This was probably due to the slower response observed upon stimulation with this factor. KW - T-Lymphozyt KW - Interleukin 2 KW - Interleukin 4 KW - Interleukin 7 KW - T-cells KW - proliferation assays KW - IL-2 KW - IL-4 KW - IL-7 Y1 - 1992 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-86750 ER - TY - JOUR A1 - Karulin, Alexey Y. A1 - Karacsony, Kinga A1 - Zhang, Wenji A1 - Targoni, Oleg S. A1 - Moldova, Ioana A1 - Dittrich, Marcus A1 - Sundararaman, Srividya A1 - Lehmann, Paul V. T1 - ELISPOTs produced by CD8 and CD4 cells follow Log Normal size distribution permitting objective counting JF - Cells N2 - Each positive well in ELISPOT assays contains spots of variable sizes that can range from tens of micrometers up to a millimeter in diameter. Therefore, when it comes to counting these spots the decision on setting the lower and the upper spot size thresholds to discriminate between non-specific background noise, spots produced by individual T cells, and spots formed by T cell clusters is critical. If the spot sizes follow a known statistical distribution, precise predictions on minimal and maximal spot sizes, belonging to a given T cell population, can be made. We studied the size distributional properties of IFN-γ, IL-2, IL-4, IL-5 and IL-17 spots elicited in ELISPOT assays with PBMC from 172 healthy donors, upon stimulation with 32 individual viral peptides representing defined HLA Class I-restricted epitopes for CD8 cells, and with protein antigens of CMV and EBV activating CD4 cells. A total of 334 CD8 and 80 CD4 positive T cell responses were analyzed. In 99.7% of the test cases, spot size distributions followed Log Normal function. These data formally demonstrate that it is possible to establish objective, statistically validated parameters for counting T cell ELISPOTs. KW - ELISPOT KW - software KW - IFN-γ KW - IL-17 KW - T cells KW - Normal Distribution KW - spot size KW - gating KW - cytokines KW - IL-2 KW - IL-4 KW - IL-5 KW - CD8 KW - CD4 Y1 - 2015 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-149648 VL - 4 IS - 1 ER - TY - JOUR A1 - Giampaolo, Sabrina A1 - Wójcik, Gabriela A1 - Serfling, Edgar A1 - Patra, Amiya K. T1 - Interleukin-2-regulatory T cell axis critically regulates maintenance of hematopoietic stem cells JF - Oncotarget N2 - The role of IL-2 in HSC maintenance is unknown. Here we show that Il2\(^{−/-}\) mice develop severe anomalies in HSC maintenance leading to defective hematopoiesis. Whereas, lack of IL-2 signaling was detrimental for lympho- and erythropoiesis, myelopoiesis was enhanced in Il2\(^{−/-}\) mice. Investigation of the underlying mechanisms of dysregulated hematopoiesis in Il2\(^{−/-}\) mice shows that the IL-2-T\(_{reg}\) cell axis is indispensable for HSC maintenance and normal hematopoiesis. Lack of T\(_{reg}\) activity resulted in increased IFN-γ production by activated T cells and an expansion of the HSCs in the bone marrow (BM). Though, restoring T\(_{reg}\) population successfully rescued HSC maintenance in Il2\(^{-/-}\) mice, preventing IFN-γ activity could do the same even in the absence of T\(_{reg}\) cells. Our study suggests that equilibrium in IL-2 and IFN-γ activity is critical for steady state hematopoiesis, and in clinical conditions of BM failure, IL-2 or anti-IFN-γ treatment might help to restore hematopoiesis. KW - immunity KW - hematopoietic stem cells KW - IL-2 KW - treg cells KW - IL-10 KW - IFN-γ KW - immunology and microbiology section KW - immune response Y1 - 2017 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-170947 VL - 8 IS - 18 ER - TY - JOUR A1 - Döhler, Anja A1 - Schneider, Theresa A1 - Eckert, Ina A1 - Ribechini, Eliana A1 - Andreas, Nico A1 - Riemann, Marc A1 - Reizis, Boris A1 - Weih, Falk A1 - Lutz, Manfred B. T1 - RelB\(^{+}\) Steady-State Migratory Dendritic Cells Control the Peripheral Pool of the Natural Foxp3\(^{+}\) Regulatory T Cells JF - Frontiers in Immunology N2 - Thymus-derived natural Foxp3\(^{+}\) CD4\(^{+}\) regulatory T cells (nTregs) play a key role in maintaining immune tolerance and preventing autoimmune disease. Several studies indicate that dendritic cells (DCs) are critically involved in the maintenance and proliferation of nTregs. However, the mechanisms how DCs manage to keep the peripheral pool at constant levels remain poorly understood. Here, we describe that the NF-κB/Rel family transcription factor RelB controls the frequencies of steady-state migratory DCs (ssmDCs) in peripheral lymph nodes and their numbers control peripheral nTreg homeostasis. DC-specific RelB depletion was investigated in CD11c-Cre × RelB\(^{fl/fl}\) mice (RelB\(^{DCko}\)), which showed normal frequencies of resident DCs in lymph nodes and spleen while the subsets of CD103\(^{-}\) Langerin\(^{-}\) dermal DCs (dDCs) and Langerhans cells but not CD103\(^{+}\) Langerin\(^{+}\) dDC of the ssmDCs in skin-draining lymph nodes were increased. Enhanced frequencies and proliferation rates were also observed for nTregs and a small population of CD4\(^{+}\) CD44\(^{high}\) CD25\(^{low}\) memory-like T cells (Tml). Interestingly, only the Tml but not DCs showed an increase in IL-2-producing capacity in lymph nodes of RelB\(^{DCko}\) mice. Blocking of IL-2 in vivo reduced the frequency of nTregs but increased the Tml frequencies, followed by a recovery of nTregs. Taken together, by employing RelB\(^{DCko}\) mice with increased frequencies of ssmDCs our data indicate a critical role for specific ssmDC subsets for the peripheral nTreg and IL-2\(^{+}\) Tml frequencies during homeostasis. KW - lymph nodes KW - dendritic cells KW - RelB KW - regulatory T cells KW - IL-2 Y1 - 2017 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-158121 VL - 8 IS - 726 ER - TY - THES A1 - Rüttger, Lennart T1 - Regulatory T cells limit antiviral CD8 T cell responses through IL-2 competition T1 - Regulatorische T-Zellen limitieren antivirale CD8 T-Zellantworten durch IL-2 Konkurrenz N2 - Regulatory T cells (Treg) are critical immune cells to ensure immune homeostasis. Treg do so by establishing tolerance to self-antigens as well as food-derived antigens. Additionally, they fine-tune immune responses to limit the damage caused by inevitable inflammation during the resolution of an ongoing infection or anti-tumor response. Despite countless efforts to gain a detailed understanding of the mechanisms Treg utilize to regulate adaptive immune responses, in vivo evidence is rather limited. We were interested in the cell-cell interactions of Treg and their spatio-temporal dynamics during a viral infection. We sought to address Interleukin-2 (IL-2) competition as a viable mechanism to control anti-viral CD8 T cell responses. We used intra-vital 2-photon imaging to analyze the interactions between Treg and activated T cells during viral infection. Additionally, we performed multiple loss- and gain-of-function experiments, addressing the IL-2 active signaling of CD8, CD4, and regulatory T cells to understand the competitive sensing of IL-2. Finally, we performed single-cell RNA sequencing to understand the cell-intrinsic differences in Treg caused by infection. We found that IL-2 competition by Treg limits the CD8 T cell response and can alter the differentiation of CD8 T cells. Furthermore, we show that Treg do not arrest in proximity to CD8 T cells for prolonged periods and therefore are unlikely to regulate CD8 T cells via contact-dependent mechanisms previously proposed. Our data support an area control model in which Treg scavenge IL-2 while actively migrating through the LN, constantly limiting access to IL-2. Establishing CD4 T cells as the major source of IL-2 during the later phases of infection, we provide direct evidence that Treg compete with CD8 T cells for CD4-derived IL-2. Finally, we show that IL-2 limitation is in correlation with CD25 expression levels and has an impact on the differentiation of CD8 T cells. Altering the differentiation of CD8 T cells to increase effector or memory functions has huge implications in clinical treatments, e.g ’checkpoint immunotherapy’. Especially in scenarios like checkpoint immunotherapy, where an efficient expansion of CD8 T cells is vital to the success of the treatment, it is invaluable to understand the spatio-temporal dynamics of Treg. Not only can the expansion phase be optimized, but also side effects can be better controlled by ensuring the adequate timing of treatments and boosting the anti-inflammatory response after the initial establishment of CD8 T cells. On top of this, the gained understanding of the regulatory mechanism of Treg can help to enhance the efficacy of autoimmune disorder treatments. Overall, this study addressed highly relevant questions in the Treg field and answered aspects of Treg regulation, refining their mode of action and the spatio-temporal dynamics during viral infection, providing evidence for IL-2 competition as a major regulatory mechanism controlling antiviral CD8 T cell responses. N2 - Regulatorische T Zellen (Treg) sind wichtige Immunzellen die der Aufrechterhaltung der Homöostase dienen. Sie induzieren tolerogene Immunantworten gegenüber Antigenen des eigenen Körpers und erlauben uns die Aufnahme von harmlosen ’Fremdantigenen’ aus unserer Nahrung, indem Sie unerwünschte Immunantworten unterdrücken. Zusätzlich ermöglichen Treg eine Feinabstimmung der adaptiven Immunantwort, indem sie die Entzündungsreaktion und die damit einhergehende Gewebeschädigung minimieren, zeitgleich aber die Expansion von Effektorzellen angepasst an das Infektionsgeschehen erlauben. So kann der Erreger schnellstmöglich bekämpft werden, ohne dass die Integrität des Gewebes beeinträchtigt wird und die Gewebefunktion aufrechterhalten werden kann. Viele wissenschaftliche Studien haben sich bereits mit den Regulationsmechanismen von Treg beschäftigt. Es werden heutzutage unzählige Mechanismen beschrieben, die in den meisten Fällen jedoch auf Ergebnissen aus Zellkulturexperimenten beruhen und somit häufig unzureichend belegt sind. Aus diesem Grund wollten wir sowohl das zeitliche als auch räumliche Verhalten von regulatorischen T Zellen im Laufe einer viralen Infektion genauer untersuchen und dabei vor allem Zell-Zell Interaktionen analysieren. Besonderes Augenmerk lag dabei auf dem zuvor beschriebenen Mechanismus der Interleukin-2 (IL-2) Konkurrenz. Dieser zeichnet sich dadurch aus, dass regulatorische T Zellen IL-2, ein wichtiges Zytokin für das Überleben von Effektorzellen, aufnehmen und somit die vorhandene Menge an IL-2 beeinflussen können. Dies geschieht in ständiger Konkurrenz zu Zellen der adaptiven Immunantwort. Wir haben Zell-Zell Interaktionen von Treg mit ihren potenziellen Konkurrenten mithilfe von intravitaler Mikroskopie, im Laufe einer viralen Infektion untersucht. Außerdem haben wir verschiedene ’gain’-und ’loss-of-function’ Experimente durchgeführt, um die IL-2 Konkurrenz zwischen CD8, CD4 und regulatorischen T Zellen besser verstehen zu können. Zusätzlich haben wir das Transkriptom von Treg in zwei verschiedenen Kontexten, Infektion und Homöostase, mittels einer Einzelzellanalyse miteinander verglichen. Wir konnten zeigen, dass Treg dazu in der Lage sind antivirale T Zellantworten allein durch IL-2 Konkurrenz zu modulieren. Hierbei wird nicht nur die Anzahl, sondern auch die Differenzierung von zytotoxischen T Zellen beeinflusst. Dabei haben wir festgestellt, dass Treg während der Immunantwort in Lymphknoten migratorisch aktiv bleiben und keine langen (> 15 min) Zell-Zell Interaktionen mit aktivierten CD8 T Zellen oder dendritischen Zellen eingehen. Dies deutet auf einen primär kontaktunabhängigen Regulationsmechanismus bei der Steuerung von antiviralen T Zellantworten hin. Abschließend konnten wir zeigen, dass CD8 T Zellen während ihrer Expansionsphase stark auf von CD4 T Zellen produziertes IL-2 angewiesen sind. CD4 T Zellen stellen in dieser Phase der Infektion die Hauptquelle von IL-2 dar. So können Treg den Zugang von CD8 T Zellen zu der Hauptquelle von IL-2 räumlich soweit begrenzen, dass dies die Expansion und Differenzierung der CD8 T Zellpopulation nachhaltig beeinflusst. Diese Studie beantwortet relevante Fragen zur Funktionsweise von regulatorischen T Zellen während einer viralen Infektion und zeigt vor allem die räumlichen und zeitlichen Komponenten der Regulation im Detail auf. Diese Studie zeigt, dass IL-2 Konkurrenz einen Hauptregulationsmechanismus von regulatorischen T Zellen darstellen und CD8 T Zellantworten unabhängig regulieren kann. Dies ermöglicht die (Weiter-)Entwicklung und Präzisierung von klinischen Anwendungen und Therapieansätzen zur Bekämpfung von Krebs- und Autoimmunerkrankungen. Besonders für die Expansion von zytotoxischen T Zellen, welche bei der ’Checkpoint’ Immuntherapie zur Behandlung von soliden Tumoren von besonderer Bedeutung ist, ist das Verständnis der Funktionsweise von regulatorischen T Zellen für den Erfolg der Behandlung entscheidend. KW - Regulatorischer T-Lymphozyt KW - Interleukin 2 KW - Treg KW - IL-2 Y1 - 2023 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-296747 ER -