Jonathan D. Curtis
Washington University in St. Louis
Network
Latest external collaboration on country level. Dive into details by clicking on the dots.
Publication
Featured researches published by Jonathan D. Curtis.
Immunity | 2012
Gerritje J.W. van der Windt; Bart Everts; Chih-Hao Chang; Jonathan D. Curtis; Tori C. Freitas; Eyal Amiel; Edward J. Pearce; Erika L. Pearce
CD8(+) T cells undergo major metabolic changes upon activation, but how metabolism influences the establishment of long-lived memory T cells after infection remains a key question. We have shown here that CD8(+) memory T cells, but not CD8(+) T effector (Teff) cells, possessed substantial mitochondrial spare respiratory capacity (SRC). SRC is the extra capacity available in cells to produce energy in response to increased stress or work and as such is associated with cellular survival. We found that interleukin-15 (IL-15), a cytokine critical for CD8(+) memory T cells, regulated SRC and oxidative metabolism by promoting mitochondrial biogenesis and expression of carnitine palmitoyl transferase (CPT1a), a metabolic enzyme that controls the rate-limiting step to mitochondrial fatty acid oxidation (FAO). These results show how cytokines control the bioenergetic stability of memory T cells after infection by regulating mitochondrial metabolism.
Immunity | 2014
David O’Sullivan; Gerritje J.W. van der Windt; Stanley Ching-Cheng Huang; Jonathan D. Curtis; Chih-Hao Chang; Michael D. Buck; Jing Qiu; Amber M. Smith; Wing Y. Lam; Lisa M. DiPlato; Fong-Fu Hsu; Morris J. Birnbaum; Edward J. Pearce; Erika L. Pearce
Generation of CD8(+) memory T cells requires metabolic reprogramming that is characterized by enhanced mitochondrial fatty-acid oxidation (FAO). However, where the fatty acids (FA) that fuel this process come from remains unclear. While CD8(+) memory T cells engage FAO to a greater extent, we found that they acquired substantially fewer long-chain FA from their external environment than CD8(+) effector T (Teff) cells. Rather than using extracellular FA directly, memory T cells used extracellular glucose to support FAO and oxidative phosphorylation (OXPHOS), suggesting that lipids must be synthesized to generate the substrates needed for FAO. We have demonstrated that memory T cells rely on cell intrinsic expression of the lysosomal hydrolase LAL (lysosomal acid lipase) to mobilize FA for FAO and memory T cell development. Our observations link LAL to metabolic reprogramming in lymphocytes and show that cell intrinsic lipolysis is deterministic for memory T cell fate.
Journal of Immunology | 2009
K. Kai McKinstry; Tara M. Strutt; Amanda L. Buck; Jonathan D. Curtis; John P. Dibble; Gail E. Huston; Michael Tighe; Hiromasa Hamada; Stewart Sell; Richard W. Dutton; Susan L. Swain
We examined the expression and influence of IL-10 during influenza infection. We found that IL-10 does not impact sublethal infection, heterosubtypic immunity, or the maintenance of long-lived influenza Ag depots. However, IL-10-deficient mice display dramatically increased survival compared with wild-type mice when challenged with lethal doses of virus, correlating with increased expression of several Th17-associated cytokines in the lungs of IL-10-deficient mice during the peak of infection, but not with unchecked inflammation or with increased cellular responses. Foxp3− CD4 T cell effectors at the site of infection represent the most abundant source of IL-10 in wild-type mice during high-dose influenza infection, and the majority of these cells coproduce IFN-γ. Finally, compared with predominant Th1 responses in wild-type mice, virus-specific T cell responses in the absence of IL-10 display a strong Th17 component in addition to a strong Th1 response and we show that Th17-polarized CD4 T cell effectors can protect naive mice against an otherwise lethal influenza challenge and utilize unique mechanisms to do so. Our results show that IL-10 expression inhibits development of Th17 responses during influenza infection and that this is correlated with compromised protection during high-dose primary, but not secondary, challenge.
Proceedings of the National Academy of Sciences of the United States of America | 2013
Gerritje J.W. van der Windt; David O’Sullivan; Bart Everts; Stanley Ching-Cheng Huang; Michael D. Buck; Jonathan D. Curtis; Chih-Hao Chang; Amber M. Smith; Teresa Ai; Brandon Faubert; Russell G. Jones; Edward J. Pearce; Erika L. Pearce
A characteristic of memory T (TM) cells is their ability to mount faster and stronger responses to reinfection than naïve T (TN) cells do in response to an initial infection. However, the mechanisms that allow this rapid recall are not completely understood. We found that CD8 TM cells have more mitochondrial mass than CD8 TN cells and, that upon activation, the resulting secondary effector T (TE) cells proliferate more quickly, produce more cytokines, and maintain greater ATP levels than primary effector T cells. We also found that after activation, TM cells increase oxidative phosphorylation and aerobic glycolysis and sustain this increase to a greater extent than TN cells, suggesting that greater mitochondrial mass in TM cells not only promotes oxidative capacity, but also glycolytic capacity. We show that mitochondrial ATP is essential for the rapid induction of glycolysis in response to activation and the initiation of proliferation of both TN and TM cells. We also found that fatty acid oxidation is needed for TM cells to rapidly respond upon restimulation. Finally, we show that dissociation of the glycolysis enzyme hexokinase from mitochondria impairs proliferation and blocks the rapid induction of glycolysis upon T-cell receptor stimulation in TM cells. Our results demonstrate that greater mitochondrial mass endows TM cells with a bioenergetic advantage that underlies their ability to rapidly recall in response to reinfection.
Nature Medicine | 2010
Tara M. Strutt; K. Kai McKinstry; John P. Dibble; Caylin Winchell; Yi Kuang; Jonathan D. Curtis; Gail E. Huston; Richard W. Dutton; Susan L. Swain
Inflammation induced by recognition of pathogen-associated molecular patterns markedly affects subsequent adaptive responses. We asked whether the adaptive immune system can also affect the character and magnitude of innate inflammatory responses. We found that the response of memory, but not naive, CD4+ T cells enhances production of multiple innate inflammatory cytokines and chemokines (IICs) in the lung and that, during influenza infection, this leads to early control of virus. Memory CD4+ T cell–induced IICs and viral control require cognate antigen recognition and are optimal when memory cells are either T helper type 1 (TH1) or TH17 polarized but are independent of interferon-γ (IFN-γ) and tumor necrosis factor-α (TNF-α) production and do not require activation of conserved pathogen recognition pathways. This represents a previously undescribed mechanism by which memory CD4+ T cells induce an early innate response that enhances immune protection against pathogens.
Journal of Immunology | 2012
Eyal Amiel; Bart Everts; Tori C. Freitas; Irah L. King; Jonathan D. Curtis; Erika L. Pearce; Edward J. Pearce
Dendritic cells (DCs) are potent inducers of T cell immunity, and autologous DC vaccination holds promise for the treatment of cancers and chronic infectious diseases. In practice, however, therapeutic vaccines of this type have had mixed success. In this article, we show that brief exposure to inhibitors of mechanistic target of rapamycin (mTOR) in DCs during the period that they are responding to TLR agonists makes them particularly potent activators of naive CD8+ T cells and able to enhance control of B16 melanoma in a therapeutic autologous vaccination model in the mouse. The improved performance of DCs in which mTOR has been inhibited is correlated with an extended life span after activation and prolonged, increased expression of costimulatory molecules. Therapeutic autologous vaccination with DCs treated with TLR agonists plus the mTOR inhibitor rapamycin results in improved generation of Ag-specific CD8+ T cells in vivo and improved antitumor immunity compared with that observed with DCs treated with TLR agonists alone. These findings define mTOR as a molecular target for augmenting DC survival and activation, and document a novel pharmacologic approach for enhancing the efficacy of therapeutic autologous DC vaccination.
Nature Immunology | 2014
Chun Chou; Amelia K. Pinto; Jonathan D. Curtis; Stephen P. Persaud; Marina Cella; Chih-Chung Lin; Brian T. Edelson; Paul M. Allen; Marco Colonna; Erika L. Pearce; Michael S. Diamond; Takeshi Egawa
Although the transcription factor c-Myc is essential for the establishment of a metabolically active and proliferative state in T cells after priming, its expression is transient. It remains unknown how T cell activation is maintained after c-Myc expression is downregulated. Here we identified AP4 as the transcription factor that was induced by c-Myc and sustained activation of antigen-specific CD8+ T cells. Despite normal priming, AP4-deficient CD8+ T cells failed to continue transcription of a broad range of c-Myc-dependent targets. Mice lacking AP4 specifically in CD8+ T cells showed enhanced susceptibility to infection with West Nile virus. Genome-wide analysis suggested that many activation-induced genes encoding molecules involved in metabolism were shared targets of c-Myc and AP4. Thus, AP4 maintains c-Myc-initiated cellular activation programs in CD8+ T cells to control microbial infection.
Nature Communications | 2018
Indre Piragyte; Thomas Clapes; Aikaterini Polyzou; Ramon I. Klein Geltink; Stylianos Lefkopoulos; Na Yin; Pierre Cauchy; Jonathan D. Curtis; Lhéanna Klaeylé; Xavier Langa; Cora Beckmann; Marcin W. Wlodarski; Patrick Müller; Dominic Van Essen; Angelika S. Rambold; Friedrich Kapp; Marina Mione; Joerg M. Buescher; Erika L. Pearce; Alexander Polyzos; Eirini Trompouki
The H2.0-like homeobox transcription factor (HLX) regulates hematopoietic differentiation and is overexpressed in Acute Myeloid Leukemia (AML), but the mechanisms underlying these functions remain unclear. We demonstrate here that HLX overexpression leads to a myeloid differentiation block both in zebrafish and human hematopoietic stem and progenitor cells (HSPCs). We show that HLX overexpression leads to downregulation of genes encoding electron transport chain (ETC) components and upregulation of PPARδ gene expression in zebrafish and human HSPCs. HLX overexpression also results in AMPK activation. Pharmacological modulation of PPARδ signaling relieves the HLX-induced myeloid differentiation block and rescues HSPC loss upon HLX knockdown but it has no effect on AML cell lines. In contrast, AMPK inhibition results in reduced viability of AML cell lines, but minimally affects myeloid progenitors. This newly described role of HLX in regulating the metabolic state of hematopoietic cells may have important therapeutic implications.HLX transcription factor regulates haematopoietic stem and progenitor cell (HSPC) differentiation and is overexpressed in acute myeloid leukemia. Here the authors show that HLX overexpression leads to myeloid differentiation block in zebrafish and human HSPCs by direct regulation of metabolic pathways.
Cell | 2013
Chih-Hao Chang; Jonathan D. Curtis; Leonard B. Maggi; Brandon Faubert; Alejandro V. Villarino; David O’Sullivan; Stanley Ching-Cheng Huang; Gerritje J.W. van der Windt; Julianna Blagih; Jing Qiu; Jason D. Weber; Edward J. Pearce; Russell G. Jones; Erika L. Pearce
Cell | 2015
Chih-Hao Chang; Jing Qiu; David O’Sullivan; Michael D. Buck; Takuro Noguchi; Jonathan D. Curtis; Qiongyu Chen; Mariel Gindin; Matthew M. Gubin; Gerritje J.W. van der Windt; Elena Tonc; Robert D. Schreiber; Edward J. Pearce; Erika L. Pearce