Literature DB >> 19494812

Enhancing CD8 T-cell memory by modulating fatty acid metabolism.

Erika L Pearce1, Matthew C Walsh, Pedro J Cejas, Gretchen M Harms, Hao Shen, Li-San Wang, Russell G Jones, Yongwon Choi.   

Abstract

CD8 T cells, which have a crucial role in immunity to infection and cancer, are maintained in constant numbers, but on antigen stimulation undergo a developmental program characterized by distinct phases encompassing the expansion and then contraction of antigen-specific effector (T(E)) populations, followed by the persistence of long-lived memory (T(M)) cells. Although this predictable pattern of CD8 T-cell responses is well established, the underlying cellular mechanisms regulating the transition to T(M) cells remain undefined. Here we show that tumour necrosis factor (TNF) receptor-associated factor 6 (TRAF6), an adaptor protein in the TNF-receptor and interleukin-1R/Toll-like receptor superfamily, regulates CD8 T(M)-cell development after infection by modulating fatty acid metabolism. We show that mice with a T-cell-specific deletion of TRAF6 mount robust CD8 T(E)-cell responses, but have a profound defect in their ability to generate T(M) cells that is characterized by the disappearance of antigen-specific cells in the weeks after primary immunization. Microarray analyses revealed that TRAF6-deficient CD8 T cells exhibit altered expression of genes that regulate fatty acid metabolism. Consistent with this, activated CD8 T cells lacking TRAF6 display defective AMP-activated kinase activation and mitochondrial fatty acid oxidation (FAO) in response to growth factor withdrawal. Administration of the anti-diabetic drug metformin restored FAO and CD8 T(M)-cell generation in the absence of TRAF6. This treatment also increased CD8 T(M) cells in wild-type mice, and consequently was able to considerably improve the efficacy of an experimental anti-cancer vaccine.

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Year:  2009        PMID: 19494812      PMCID: PMC2803086          DOI: 10.1038/nature08097

Source DB:  PubMed          Journal:  Nature        ISSN: 0028-0836            Impact factor:   49.962


  38 in total

1.  CD4+ T cells are required for secondary expansion and memory in CD8+ T lymphocytes.

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Journal:  Nature       Date:  2003-02-09       Impact factor: 49.962

Review 2.  Progressive differentiation and selection of the fittest in the immune response.

Authors:  Antonio Lanzavecchia; Federica Sallusto
Journal:  Nat Rev Immunol       Date:  2002-12       Impact factor: 53.106

3.  Distinct effects of STAT5 activation on CD4+ and CD8+ T cell homeostasis: development of CD4+CD25+ regulatory T cells versus CD8+ memory T cells.

Authors:  Matthew A Burchill; Christine A Goetz; Martin Prlic; Jennifer J O'Neil; Ian R Harmon; Steven J Bensinger; Laurence A Turka; Paul Brennan; Stephen C Jameson; Michael A Farrar
Journal:  J Immunol       Date:  2003-12-01       Impact factor: 5.422

4.  The CD28 signaling pathway regulates glucose metabolism.

Authors:  Kenneth A Frauwirth; James L Riley; Marian H Harris; Richard V Parry; Jeffrey C Rathmell; David R Plas; Rebecca L Elstrom; Carl H June; Craig B Thompson
Journal:  Immunity       Date:  2002-06       Impact factor: 31.745

5.  Requirement for CD4 T cell help in generating functional CD8 T cell memory.

Authors:  Devon J Shedlock; Hao Shen
Journal:  Science       Date:  2003-04-11       Impact factor: 47.728

6.  TRAF6 is a critical factor for dendritic cell maturation and development.

Authors:  Takashi Kobayashi; Patrick T Walsh; Matthew C Walsh; Kendra M Speirs; Elise Chiffoleau; Carolyn G King; Wayne W Hancock; Jorge H Caamano; Christopher A Hunter; Phillip Scott; Laurence A Turka; Yongwon Choi
Journal:  Immunity       Date:  2003-09       Impact factor: 31.745

7.  Important role of the LKB1-AMPK pathway in suppressing tumorigenesis in PTEN-deficient mice.

Authors:  Xu Huang; Stephan Wullschleger; Natalia Shpiro; Victoria A McGuire; Kei Sakamoto; Yvonne L Woods; Wendy McBurnie; Stewart Fleming; Dario R Alessi
Journal:  Biochem J       Date:  2008-06-01       Impact factor: 3.857

8.  The immunosuppressant rapamycin mimics a starvation-like signal distinct from amino acid and glucose deprivation.

Authors:  Tao Peng; Todd R Golub; David M Sabatini
Journal:  Mol Cell Biol       Date:  2002-08       Impact factor: 4.272

9.  A role for Stat5 in CD8+ T cell homeostasis.

Authors:  John Kelly; Rosanne Spolski; Kazunori Imada; Julie Bollenbacher; Stephen Lee; Warren J Leonard
Journal:  J Immunol       Date:  2003-01-01       Impact factor: 5.422

10.  Defective CD8 T cell memory following acute infection without CD4 T cell help.

Authors:  Joseph C Sun; Michael J Bevan
Journal:  Science       Date:  2003-04-11       Impact factor: 47.728

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  693 in total

Review 1.  Molecular regulation of effector and memory T cell differentiation.

Authors:  John T Chang; E John Wherry; Ananda W Goldrath
Journal:  Nat Immunol       Date:  2014-12       Impact factor: 25.606

Review 2.  The role of mTOR in memory CD8 T-cell differentiation.

Authors:  Koichi Araki; Ben Youngblood; Rafi Ahmed
Journal:  Immunol Rev       Date:  2010-05       Impact factor: 12.988

Review 3.  Once a killer, always a killer: from cytotoxic T cell to memory cell.

Authors:  Leo Lefrançois; Joshua J Obar
Journal:  Immunol Rev       Date:  2010-05       Impact factor: 12.988

Review 4.  MenTORing Immunity: mTOR Signaling in the Development and Function of Tissue-Resident Immune Cells.

Authors:  Russell G Jones; Edward J Pearce
Journal:  Immunity       Date:  2017-05-16       Impact factor: 31.745

Review 5.  Metabolic and Epigenetic Coordination of T Cell and Macrophage Immunity.

Authors:  Anthony T Phan; Ananda W Goldrath; Christopher K Glass
Journal:  Immunity       Date:  2017-05-16       Impact factor: 31.745

Review 6.  Uncoupling T-cell expansion from effector differentiation in cell-based immunotherapy.

Authors:  Joseph G Crompton; Madhusudhanan Sukumar; Nicholas P Restifo
Journal:  Immunol Rev       Date:  2014-01       Impact factor: 12.988

Review 7.  Metabolic reprogramming and apoptosis sensitivity: Defining the contours of a T cell response.

Authors:  Kelsey Voss; Sasha E Larsen; Andrew L Snow
Journal:  Cancer Lett       Date:  2017-09-01       Impact factor: 8.679

8.  Tuberous sclerosis 1 (Tsc1)-dependent metabolic checkpoint controls development of dendritic cells.

Authors:  Yanyan Wang; Gonghua Huang; Hu Zeng; Kai Yang; Richard F Lamb; Hongbo Chi
Journal:  Proc Natl Acad Sci U S A       Date:  2013-11-26       Impact factor: 11.205

9.  Dendritic cell vaccine induces antigen-specific CD8+ T cells that are metabolically distinct from those of peptide vaccine and is well-combined with PD-1 checkpoint blockade.

Authors:  Koji Nagaoka; Akihiro Hosoi; Tamaki Iino; Yasuyuki Morishita; Hirokazu Matsushita; Kazuhiro Kakimi
Journal:  Oncoimmunology       Date:  2017-11-20       Impact factor: 8.110

Review 10.  Metabolism of inflammation limited by AMPK and pseudo-starvation.

Authors:  Luke A J O'Neill; D Grahame Hardie
Journal:  Nature       Date:  2013-01-17       Impact factor: 49.962

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