1,721,046 research outputs found
FoxO3a Signaling Promotes the Inflammatory Response During Salmonella Typhimurium Infection
FoxO3a is a transcription factor that regulates various cellular functions such as cell cycle or cell death. However, its role in the innate immune response is not clear. I investigated the impact of FoxO3a signaling on the immune response during infection with Salmonella Typhimurium (ST). My results revealed that FoxO3a regulated the homeostasis of myeloid cells in the spleen and blood of mice during steady-state. Following infection of macrophages with ST, FoxO3a signaling promoted the expression of pro-inflammatory cytokines such as IL12 and TNFα, but inhibited the expression of the anti-inflammatory cytokine IL10. Phenotypic analysis revealed that FoxO3a signaling had no effect on classical macrophage polarization into M1 vs M2 phenotypes, although it appeared to regulate mitochondrial function during infection with ST. Inflammatory responses are critical during infection with virulent intracellular pathogens, and these results provide new insights into the role of FoxO3a signaling in inflammatory responses
Investigating the Role of Leucine-Rich Repeat Kinase 2 (LRRK2) in the Innate Immune System
Myeloid cells, such as monocytes and neutrophils, are generated in the bone marrow (BM) and are an important part of the innate immune system. Leucine-rich repeat kinase 2 (LRRK2) is a large, multi-domain protein that is expressed at high levels in the BM and myeloid cells. Agonistic mutations in the gene coding for LRRK2 promote better clearance of pathogens but have been identified as risk factors for inflammatory diseases, suggesting that LRRK2 may play a role in modulating the cell biology of innate immune cells. We aimed to decipher the cellular and molecular mechanisms impacted by enhanced LRRK2 kinase activity in a mouse typhoid model. Our results indicate that the agonistic p.G2019S mutation of Lrrk2 results in better clearance of Salmonella typhimurium (ST) in the BM, in comparison to wildtype mice. We also demonstrated that the p.G2019S mutation promotes maintenance of BM cell numbers following infection with ST. To further determine which BM cell types were most involved in the enhanced clearance of ST, we isolated bone marrow-derived macrophages (BMDMs) and dendritic cells (BMDCs), monocytes, and neutrophils from adult mice. Following in vitro infection with ST, neutrophils, but not BMDMs, BMDCs, or monocytes harbouring the Lrrk2ᴳ²⁰¹⁹ˢ mutation, demonstrated a significant reduction in the bacterial burden of ST, relative to wildtype cells. Furthermore, our results indicate that neutrophils from Lrrk2ᴳ²⁰¹⁹ˢ mice demonstrate increased transcription of genes involved in the production of reactive oxygen species (ROS), along with higher levels of ROS following infection with ST, compared to wildtype neutrophils. Principally, the results of this project will provide new insights into the understanding of the impact of the agonistic Lrrk2ᴳ²⁰¹⁹ˢ mutation on the innate immune response to infection with ST
Dissection of TLR4-Induced Necroptosis Using Specific Inhibitors of Endocytosis and P38 MAPK
Necroptosis is a pathway of inflammatory cell death that is associated with several pathologies and is induced by ligation of surface TLR or cytokine receptors in macrophages. Many signaling pathways depend on endocytosis, a process mediated by GTPases such as dynamin. We evaluated the role of dynamin-dependent endocytosis in the necroptosis of macrophages using various dynamin inhibitors. Using flow cytometry, we confirmed that during necrosome signaling, various dynamin inhibitors (e.g. Dyngo 4a and Dynasore) blocked the internalization of TLR4, which also resulted in the inhibition of cytokine production. Despite the similar impact of Dynasore and Dyngo 4a on TLR4 endocytosis and cytokine production, only Dyngo 4a prevented TLR4-induced necroptosis of macrophages. Further studies indicated that Dyngo 4a was a potent stimulator of the p38 MAPK pathway, and activation of this pathway by Dyngo 4a was responsible for the inhibition of necroptosis of macrophages following TLR4 signaling. Thus, these studies reveal the previously unknown role of the p38 MAPK pathway in regulating the activation of necrosome signaling
FoxO3a Modulates the Activation of Innate and Adaptive Immune Cells
The innate immune response mediates immediate control of the pathogen and is followed by the acquired immune response which is slower but ensures comprehensive elimination of the pathogen. Dendritic cells are unique innate immune cells that can phagocytose the pathogen and generate pathogen-associated antigenic peptides for presentation to T cells in order to initiate the acquired immune response. Dendritic cells also express cytokines which facilitate pathogen control and development of acquired immune responses, thus acting as a bridge between innate and acquired immune responses. CD8+ T cells are important cells of the adaptive immune system that play a key role in mediating clearance and protection against intracellular pathogens. Upon engagement by antigen-presenting cells, CD8+ T cells undergo massive expansion followed by a swift, extensive contraction to restore homeostasis. The mechanisms behind the expansion and contraction of CD8+ T cells are yet to be completely elucidated. FoxO3a is a transcription factor that is involved in the regulation of various vital cellular processes ranging from cell proliferation and cell metabolism to stress resistance and cell death. I have, therefore, investigated the role of FoxO3a signaling in the activation of dendritic cells and CD8+ T cells. My initial experiments indicated that FoxO3a regulates the homeostasis of various immune cells including CD8+ T cells and dendritic cells. CD8+ T cells lacking FoxO3a displayed enhanced proliferation, as evaluated by cell imaging, CFSE dilution and Ki67 staining, upon polyclonal stimulation in vitro. The modulation of cell proliferation by FoxO3a seemed to be p27kip-independent, as evaluated by western blotting. At later stages of stimulation, FoxO3a-deficient CD8+ T cells underwent reduced cell death, as assessed by cell counting and 7-AAD staining, and this seemed to be independent of Bim, Caspase 8 or Caspase 3 activation. In addition, FoxO3a regulated cytokine expression by CD8+ T cells while displaying similar NFκB activation in comparison to WT CD8+ T cells. Similar results were observed in dendritic cells upon LPS stimulation in vitro, wherein cytokine expression was higher in the FoxO3a-deficient dendritic cells and they also displayed enhanced antigen presentation to CD8+ T cells, as evaluated by CFSE dilution. Taken together, these results indicate that FoxO3a acts as a negative regulator of CD8+ T cell and dendritic cell activation
Modulation of Inflammasome Signaling During Chronic Bacterial Infections
Inflammasome signaling during infections results in cell death and processing and secretion of cytokines from the IL-1 family, which facilitates control over an infection. Pseudomonas aeruginosa and Salmonella Typhimurium are opportunistic bacterial pathogens which may induce acute infections and activate various innate immune signaling pathways, including inflammasomes. However, under favourable conditions these pathogens may evade immune clearance resulting in the establishment of a chronic infection. In this study, I evaluated the modulation of host inflammasome signaling induced by P. aeruginosa and S. Typhimurium during chronic infections. I used a collection of P. aeruginosa clinical isolates obtained from the sputum of cystic fibrosis patients collected during stable and exacerbation periods of disease. I demonstrated that the majority of isolates displayed poor inflammasome signaling and only a small proportion of isolates retained their ability to induce inflammasome activation, which may be associated with pulmonary exacerbations in cystic fibrosis. Sequencing and bioinformatics revealed genetic variations within the type III and type VI secretion systems of P. aeruginosa. While an inactivation of the type III secretion system is expected to impair inflammasome signaling, my results indicate that the type VI secretion system inhibits inflammasome signaling in eukaryotic cells. Due to the lack of chronic animal models for P. aeruginosa, I utilized a murine model of chronic S. Typhimurium infection to assess the modulation of inflammasome signaling throughout the course of a chronic infection. I observed that S. Typhimurium isolated during the acute phase of infection displayed an increased potential to activate inflammasome signaling and this ability progressively declined during the chronic phase of infection. This reduction in inflammasome activation was associated with reduced expression of bacterial virulence factors, such as flagella and the type III secretion system, and was dependent on the NLRP3 inflammasome. Overall, these results reveal that the expression of virulence factors is modulated during chronic bacterial infections, which results in a reduction of inflammasome activation leading to co-survival of the pathogen and host
Mechanistic Insights into Necroptosis of Macrophages
Cell death is an imperative mechanism for the development, homeostasis and survival of an organism. Various forms of cell death have been documented and recent reports indicate that the mode of cell death elicited can have a profound influence on the development and perpetuation of inflammation. Apoptosis is the predominant, programmed pathway of cell death, which ensures physiological elimination of unwanted cells. On the other hand, another cell death pathway described as programmed necrosis (necroptosis), has recently been revealed. The induction of necroptosis and its impact in host biology is not clear. Herein I have evaluated the mechanisms of necroptosis in macrophages, an important cell type of the immune system. My experiments indicate that type I interferon (IFN-I) signaling through transcription factors STAT1, STAT2 and IRF9, collectively described as the ISGF3 complex, is indispensable for necroptosis of macrophages. Furthermore, my results indicate that IFN-I signaling promotes the sustained phosphorylation of receptor interacting protein kinase 3 (Rip3), a key protein required for the execution of necroptosis. My findings also reveal that dynamin-dependent endocytosis following IFNβ stimulation and caspase inhibition is necessary for the induction of necroptosis. The results presented in this thesis provide new insights into the molecular mechanisms of necroptosis and therefore contribute to a deeper understanding of multiple inflammatory pathologies
T Cell Intrinsic and Extrinsic Role of XIAP, During CD8 T Cell Response Against Intracellular Pathogens
The magnitude and effectiveness of CD8 response against intracellular pathogens is
directed by survival and apoptotic signals that govern the fate of T cells. XIAP is a bona fide endogenous inhibitor of apoptotic signals. In this thesis, I have investigated the role of XIAP at various stages of CD8 T cell response. I used both in vivo and in vitro models to show that XIAP acts in a CD8 T cell extrinsic and intrinsic manner to regulate the expansion and contraction phases of the CD8 T cell response, respectively. During the expansion phase, XIAP prevents the cell death of APCs to promote APC-T cell interaction and cytokine release, which facilitates the proliferation and survival of activated T cells. During the contraction phase, XIAP functions in a cell-intrinsic fashion to inhibit the proapoptotic signals in the activated CD8 T cells to prolong the immune response. Finally, I also demonstrate that the expression of XIAP in T cells is critical for their differentiation in to memory subsets. Overall, I present that XIAP plays a critical role in generating an effective CD8 T cell immune response
Evaluation of the Role of Type-1 Interferon Signaling in the Pathogenesis of Salmonella Typhimurium
Innate immunity operates independently of prior exposure to pathogens. There are several signal transduction pathways that play a key role in inflammatory and immune responses. Critical signaling cascade in the interest of my research is type-1 interferon (IFN) signaling pathway in response to infection with Salmonella Typhimurium (ST). The role of type-I interferons is well established in the context of a viral infection; however, their role in bacterial infections is not clear. In my thesis I aimed to understand the role of type-1 IFNs in bacterial pathogenesis, and scrutinize the mechanism adopted by various components of type-1 IFN signaling, especially ISGF3 complex in response to Salmonella Typhimurium. My results indicate that type-I IFN signaling is detrimental to host survival. I further investigated the mechanism through which type-1 IFN signaling results in host susceptibility against Salmonella. My results indicated that the three transcription factors downstream of IFNAR1 have different impacts in mounting an innate immune response against ST. IRF9 and STAT2 promote susceptibility against ST whereas STAT1 through IFNAR1-signaling, promotes enhanced expression of pro inflammatory cytokines and protection against ST. I also observed that the monocytes/macrophages lineage in Ifnar1⁻ᐟ⁻ mice is responsible for conferring the enhanced resistance against ST. Furthermore, my work determined that expression of type-I IFN signaling compromises the fitness of macrophages by reducing mitochondrial respiration, glycolysis and myelopoiesis
Impact of Parkinson’s Disease- Linked- Lrrk2 Mutation (Lrrk2G2019S) on the Innate Immune Response During Infection with Listeria Monocytogenes.
Mutations in the Leucine-rich repeat kinase 2 (Lrrk2) gene are associated with familial and sporadic cases of Parkinson’s disease but are also found in inflammatory-related disorders such as Crohn’s disease, systemic lupus erythematosus, tuberculosis and leprosy. There is also evidence that LRRK2 is highly expressed in immune cells, particularly in macrophages, and has been functionally linked to pathways pertinent to immune cell function such as modulating the course of infections, cytokine release, autophagy and phagocytosis. Indeed, G2019S mutation in Lrrk2 is the most common mutation in Parkinson’s disease. Accordingly, we hypothesized that G2019S mutation in Lrrk2 might enhance the activation of the innate immune system. We tested our hypothesis by performing challenge experiments in a mouse model of Listeria monocytogenes, and by measuring the activation of bone marrow derived macrophages (BMDMs) following in vitro infection with the bacterium.
We found that Lrrk2G2019S mutant mice controlled L. monocytogenes better than WT mice. The mechanism behind the better control of L. monocytogenes by the G2019S mutation of Lrrk2 was investigated in BMDMs following in vitro infection with L. monocytogenes. Interestingly, we found that Lrrk2G2019S mutation enhances the production of TNF-α, IL-1β and IL-10 by infected BMDMs. The impact on TNF-α and IL-1β was specifically due to the G2019S mutation of Lrrk2 since there was no impact on the expression of these cytokines in Lrrk2 knockout macrophages. Western blotting experiments revealed that the G2019S mutation of Lrrk2 enhances MAPK signaling (TAK1, p38 and ERK). Modulation of the expression of the pro-inflammatory cytokines, TNF-α and IL-1β by G2019S mutation of Lrrk2 occurred via p38 MAPK activation. The impact on IL-10 expression occurred through increased ERK activation by the G2019S mutation of Lrrk2. We did not observe any impact of G2019S mutation of Lrrk2 on the activation of NF-κB and JNK MAPK pathways.
Increased expression of IL-1β by G2019S mutation of Lrrk2 revealed increased inflammasome signaling. Inflammasome signaling in response to L. monocytogenes was mainly mediated by the AIM2- and partly by NLRP3- inflammasome and was dependent on activation of caspase-1. We found that Lrrk2G2019S mutation enhanced the expression of NLRP3 and caspase-1.
Finally, we found that the expression of reactive oxygen species (ROS) following infection with L. monocytogenes was augmented by G2019S mutation of Lrrk2, and this can be an important mechanism that promotes the enhanced clearance of the bacterium in vivo.
Overall, these results present new insights into the signaling mechanisms through which the G2019S mutation of Lrrk2 augments innate immune response which leads to better control of infection
The Paradoxical Roles of Cell Death Pathways in Immune Cells
Cell death plays a vital role throughout the immune response, from the onset of inflammation to the elimination of primed T cells. Understanding the regulation of cell death within immune cells is of vital importance to understanding the immune system and developing therapies against various immune-disorders. In this thesis I have investigated the regulation of cell death and its functional role in of the innate and adaptive arms of the immune system.
The mechanisms that govern expansion and contraction of antigen stimulated CD8+ T cells are not well understood. In the first section of this thesis, I show that caspase-3 becomes activated in proliferating CD8+ proliferation, yet this does not result in cell death. I used both in vivo and in vitro models to demonstrate that caspase-3 activation is specifically driven by antigen presentation and not inflammation, and that it likely plays a role in promoting T cell proliferation.
Next, I present novel data regarding the regulation of a newly identified form of programmed cell death via necrosis, known as necroptosis. I show that the cellular inhibitor of apoptosis (cIAP) proteins act to limit activation of key necroptosis proteins in macrophage cells. Furthermore, I show that necroptosis can be exploited by intracellular bacterial pathogens to escape removal by the immune system. I also demonstrate that necroptosis is highly intertwined with the pathway of inflammation, and the autocrine production of type-I interferon constitutes a vital positive feedback loop in the induction of inflammatory cell death. In the final section of my thesis work, I delve into
the specific regulation of Rip1 kinase and demonstrate that in addition to previously demonstrated regulation by caspase-8, cathepsins are also able to cleave Rip1 kinase and limit necroptosis.
This thesis presents a wide variety of novel data regarding the regulation of cell death within immune cells. In total, the results reveal a picture of two divergent forms of programmed cell death, apoptosis and necroptosis. Through improving the understanding of the cross-regulation of these two key cell death pathways this work aims to improve the understanding of the immune function
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