Literature DB >> 29399391

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.

Koji Nagaoka1,2, Akihiro Hosoi1,2, Tamaki Iino1,2, Yasuyuki Morishita3, Hirokazu Matsushita1, Kazuhiro Kakimi1.   

Abstract

The success of immune checkpoint blockade has unequivocally demonstrated that anti-tumor immunity plays a pivotal role in cancer therapy. Because endogenous tumor-specific T-cell responsiveness is essential for the success of checkpoint blockade, combination therapy with cancer vaccination may facilitate tumor rejection. To select the best vaccine strategy to combine with checkpoint blockade, we compared dendritic cell-based vaccines (DC-V) with peptide vaccines for induction of anti-tumor immunity that could overcome tumor-induced immunosuppression. Using B16 melanoma and B16-specific TCR-transgenic T-cells (pmel-1), we found that DC-V efficiently primed and expanded pmel-1 cells with an active effector and central memory phenotype that were not exhausted. Vaccine-primed cells were metabolically distinct from naïve cells. DC-V-primed pmel-1 cells contained the population that shifted metabolic pathways away from glycolysis to mitochondrial oxidative phosphorylation. They displayed better effector function and proliferated more than those induced by peptide vaccination. DC-V inhibited tumor growth in prophylactic and therapeutic settings. Only DC-V but not peptide vaccine showed augmented anti-tumor activity when combined with anti-PD-1 therapy. Thus, DC-V combined with PD-1 checkpoint blockade mediates optimal anti-cancer activity in this model.

Entities:  

Keywords:  cancer vaccine; checkpoint blockade; dendritic cell; immunometabolism; peptide vaccine

Year:  2017        PMID: 29399391      PMCID: PMC5790382          DOI: 10.1080/2162402X.2017.1395124

Source DB:  PubMed          Journal:  Oncoimmunology        ISSN: 2162-4011            Impact factor:   8.110


  26 in total

1.  Cancer immunotherapy. A dendritic cell vaccine increases the breadth and diversity of melanoma neoantigen-specific T cells.

Authors:  Beatriz M Carreno; Vincent Magrini; Michelle Becker-Hapak; Saghar Kaabinejadian; Jasreet Hundal; Allegra A Petti; Amy Ly; Wen-Rong Lie; William H Hildebrand; Elaine R Mardis; Gerald P Linette
Journal:  Science       Date:  2015-04-02       Impact factor: 47.728

Review 2.  The future of immune checkpoint therapy.

Authors:  Padmanee Sharma; James P Allison
Journal:  Science       Date:  2015-04-03       Impact factor: 47.728

Review 3.  T cell exhaustion.

Authors:  E John Wherry
Journal:  Nat Immunol       Date:  2011-06       Impact factor: 25.606

Review 4.  Emerging Opportunities and Challenges in Cancer Immunotherapy.

Authors:  Theresa L Whiteside; Sandra Demaria; Maria E Rodriguez-Ruiz; Hassane M Zarour; Ignacio Melero
Journal:  Clin Cancer Res       Date:  2016-04-15       Impact factor: 12.531

Review 5.  Targeting T Cell Co-receptors for Cancer Therapy.

Authors:  Margaret K Callahan; Michael A Postow; Jedd D Wolchok
Journal:  Immunity       Date:  2016-05-17       Impact factor: 31.745

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

Authors:  Erika L Pearce; Matthew C Walsh; Pedro J Cejas; Gretchen M Harms; Hao Shen; Li-San Wang; Russell G Jones; Yongwon Choi
Journal:  Nature       Date:  2009-06-03       Impact factor: 49.962

7.  The nitric oxide radical scavenger carboxy-PTIO reduces the immunosuppressive activity of myeloid-derived suppressor cells and potentiates the antitumor activity of adoptive cytotoxic T lymphocyte immunotherapy.

Authors:  Kosuke Hirano; Akihiro Hosoi; Hirokazu Matsushita; Tamaki Iino; Satoshi Ueha; Kouji Matsushima; Yasuyuki Seto; Kazuhiro Kakimi
Journal:  Oncoimmunology       Date:  2015-04-01       Impact factor: 8.110

8.  Mitochondrial Membrane Potential Identifies Cells with Enhanced Stemness for Cellular Therapy.

Authors:  Madhusudhanan Sukumar; Jie Liu; Gautam U Mehta; Shashank J Patel; Rahul Roychoudhuri; Joseph G Crompton; Christopher A Klebanoff; Yun Ji; Peng Li; Zhiya Yu; Greg D Whitehill; David Clever; Robert L Eil; Douglas C Palmer; Suman Mitra; Mahadev Rao; Keyvan Keyvanfar; David S Schrump; Ena Wang; Francesco M Marincola; Luca Gattinoni; Warren J Leonard; Pawel Muranski; Toren Finkel; Nicholas P Restifo
Journal:  Cell Metab       Date:  2015-12-08       Impact factor: 27.287

9.  Tetanus toxoid and CCL3 improve dendritic cell vaccines in mice and glioblastoma patients.

Authors:  Duane A Mitchell; Kristen A Batich; Michael D Gunn; Min-Nung Huang; Luis Sanchez-Perez; Smita K Nair; Kendra L Congdon; Elizabeth A Reap; Gary E Archer; Annick Desjardins; Allan H Friedman; Henry S Friedman; James E Herndon; April Coan; Roger E McLendon; David A Reardon; James J Vredenburgh; Darell D Bigner; John H Sampson
Journal:  Nature       Date:  2015-03-11       Impact factor: 49.962

Review 10.  T cell metabolism drives immunity.

Authors:  Michael D Buck; David O'Sullivan; Erika L Pearce
Journal:  J Exp Med       Date:  2015-08-10       Impact factor: 14.307

View more
  11 in total

Review 1.  Trial watch: dendritic cell vaccination for cancer immunotherapy.

Authors:  Jenny Sprooten; Jolien Ceusters; An Coosemans; Patrizia Agostinis; Steven De Vleeschouwer; Laurence Zitvogel; Guido Kroemer; Lorenzo Galluzzi; Abhishek D Garg
Journal:  Oncoimmunology       Date:  2019-07-18       Impact factor: 8.110

Review 2.  Tumor microenvironmental influences on dendritic cell and T cell function: A focus on clinically relevant immunologic and metabolic checkpoints.

Authors:  Kristian M Hargadon
Journal:  Clin Transl Med       Date:  2020-01

Review 3.  Trial watch: Peptide-based vaccines in anticancer therapy.

Authors:  Lucillia Bezu; Oliver Kepp; Giulia Cerrato; Jonathan Pol; Jitka Fucikova; Radek Spisek; Laurence Zitvogel; Guido Kroemer; Lorenzo Galluzzi
Journal:  Oncoimmunology       Date:  2018-09-06       Impact factor: 8.110

Review 4.  Combination Strategies to Optimize Efficacy of Dendritic Cell-Based Immunotherapy.

Authors:  Mandy van Gulijk; Floris Dammeijer; Joachim G J V Aerts; Heleen Vroman
Journal:  Front Immunol       Date:  2018-12-05       Impact factor: 7.561

Review 5.  Innate Immune Cells: A Potential and Promising Cell Population for Treating Osteosarcoma.

Authors:  Zenan Wang; Zhan Wang; Binghao Li; Shengdong Wang; Tao Chen; Zhaoming Ye
Journal:  Front Immunol       Date:  2019-05-16       Impact factor: 7.561

6.  Combination therapy with dendritic cell vaccine and programmed death ligand 1 immune checkpoint inhibitor for hepatocellular carcinoma in an orthotopic mouse model.

Authors:  Chiao-Fang Teng; Ting Wang; Tzu-Hua Wu; Jia-Hui Lin; Fu-Ying Shih; Woei-Cherng Shyu; Long-Bin Jeng
Journal:  Ther Adv Med Oncol       Date:  2020-06-10       Impact factor: 8.168

Review 7.  Trial watch: chemotherapy-induced immunogenic cell death in immuno-oncology.

Authors:  Isaure Vanmeerbeek; Jenny Sprooten; Dirk De Ruysscher; Sabine Tejpar; Peter Vandenberghe; Jitka Fucikova; Radek Spisek; Laurence Zitvogel; Guido Kroemer; Lorenzo Galluzzi; Abhishek D Garg
Journal:  Oncoimmunology       Date:  2020-01-09       Impact factor: 8.110

8.  Dendritic cell vaccine immunotherapy; the beginning of the end of cancer and COVID-19. A hypothesis.

Authors:  Mona Kamal Saadeldin; Amal Kamal Abdel-Aziz; Ahmed Abdellatif
Journal:  Med Hypotheses       Date:  2020-11-09       Impact factor: 1.538

9.  Identification of Neoantigens in Two Murine Gastric Cancer Cell Lines Leading to the Neoantigen-Based Immunotherapy.

Authors:  Koji Nagaoka; Changbo Sun; Yukari Kobayashi; Takayuki Kanaseki; Serina Tokita; Toshihiro Komatsu; Kazuhiro Maejima; Junichiro Futami; Sachiyo Nomura; Keiko Udaka; Hidewaki Nakagawa; Toshihiko Torigoe; Kazuhiro Kakimi
Journal:  Cancers (Basel)       Date:  2021-12-27       Impact factor: 6.639

10.  Combination of immune checkpoint blockade with DNA cancer vaccine induces potent antitumor immunity against P815 mastocytoma.

Authors:  Alessandra Lopes; Kevin Vanvarenberg; Špela Kos; Sophie Lucas; Didier Colau; Benoît Van den Eynde; Véronique Préat; Gaëlle Vandermeulen
Journal:  Sci Rep       Date:  2018-10-24       Impact factor: 4.379

View more

北京卡尤迪生物科技股份有限公司 © 2022-2023.