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Seminars in Oncology, ISSN 0093-7754, 08/2015, Volume 42, Issue 4, pp. 663 - 671
Journal Article
The New England Journal of Medicine, ISSN 0028-4793, 05/2018, Volume 378, Issue 21, pp. 2034 - 2035
Immunotherapies that are based on blocking the axis of the programmed death 1 (PD-1) pathway are having a transformational effect in cancer medicine. To date,... 
MEDICINE, GENERAL & INTERNAL | PD-1 BLOCKADE | Neoadjuvant Therapy | Humans | Immunotherapy | Neoplasms | Usage | Drug therapy | Lung cancer | Antigens | Melanoma | T cell receptors | Metastasis | FDA approval | Disclosure | Cancer therapies | Lymphocytes | Drug dosages | Tumors | Cancer | Index Medicus | Abridged Index Medicus
Journal Article
Cancer Research, ISSN 0008-5472, 04/2009, Volume 69, Issue 7, pp. 3077 - 3085
Journal Article
Cancer Research, ISSN 0008-5472, 04/2016, Volume 76, Issue 7 Supplement, pp. IA02 - IA02
Journal Article
Cancer Research, ISSN 0008-5472, 07/2015, Volume 75, Issue 14 Supplement, pp. IA22 - IA22
Journal Article
Journal Article
Journal Article
Nature, ISSN 0028-0836, 07/2015, Volume 523, Issue 7559, p. 231
  Melanoma treatment is being revolutionized by the development of effective immunotherapeutic approaches1,2. These strategies include blockade of... 
Prevention | Oncology, Experimental | Melanoma | Research | Immunity | Tumors | Cancer | Antigens | Genotype & phenotype | Signal transduction | Dendritic cells | Lymphocytes | T cell receptors | Gene expression
Journal Article
Cancer Research, ISSN 0008-5472, 07/2018, Volume 78, Issue 13 Supplement, pp. 5737 - 5737
Journal Article
Immunity, ISSN 1074-7613, 11/2014, Volume 41, Issue 5, pp. 843 - 852
Journal Article
Cancer Cell, ISSN 1535-6108, 05/2017, Volume 31, Issue 5, pp. 711 - 723.e4
Effector T cells have the capability of recognizing and killing cancer cells. However, whether tumors can become immune resistant through exclusion of effector... 
T cell-inflamed tumor microenvironment | non-T cell-inflamed tumor microenvironment | immunotherapy resistance | immune escape | adoptive T cell transfer | METASTATIC MELANOMA | RESPONSES | IMMUNITY | MECHANISM | ONCOLOGY | CANCER REGRESSION | REJECTION | ANTIGENS | MICE | BLOCKADE | EXPRESSION | CELL BIOLOGY | Chemotaxis, Leukocyte | Tumor Escape | Basic-Leucine Zipper Transcription Factors - metabolism | Cell Proliferation | Dendritic Cells - immunology | Tumor Microenvironment | T-Lymphocytes - transplantation | Antigens, CD - metabolism | Repressor Proteins - deficiency | T-Lymphocytes - metabolism | Time Factors | Basic-Leucine Zipper Transcription Factors - deficiency | CD8-Positive T-Lymphocytes - metabolism | Dendritic Cells - metabolism | Repressor Proteins - metabolism | Melanoma - metabolism | Skin Neoplasms - pathology | Immunotherapy, Adoptive - methods | Signal Transduction | Skin Neoplasms - immunology | Skin Neoplasms - therapy | Repressor Proteins - genetics | Genotype | Integrin alpha Chains - metabolism | Basic-Leucine Zipper Transcription Factors - genetics | Melanoma - pathology | Tumor Burden | beta Catenin - metabolism | Mice, Knockout | Skin Neoplasms - metabolism | Phenotype | Animals | Melanoma - immunology | Chemokine CXCL9 - metabolism | Cell Line, Tumor | Immunologic Memory | T-Lymphocytes - immunology | CD8-Positive T-Lymphocytes - immunology | Melanoma - therapy | Chemokine CXCL10 - metabolism | Dendritic cells | T cells | Cancer | Immunotherapy | Index Medicus | Adoptive T cell transfer
Journal Article
Science, ISSN 0036-8075, 01/2018, Volume 359, Issue 6371, pp. 104 - 108
Anti-PD-1-based immunotherapy has had a major impact on cancer treatment but has only benefited a subset of patients. Among the variables that could contribute... 
MULTIDISCIPLINARY SCIENCES | Immunotherapy - methods | Enterococcus faecium - immunology | Skin Neoplasms - immunology | Skin Neoplasms - therapy | Humans | Antibodies, Monoclonal - therapeutic use | Bifidobacterium longum - immunology | Programmed Cell Death 1 Receptor - antagonists & inhibitors | Enterococcus faecium - genetics | Gastrointestinal Microbiome - genetics | Enterococcus faecium - isolation & purification | Bifidobacterium longum - genetics | Enterococcus faecium - classification | Feces - microbiology | Bifidobacterium longum - isolation & purification | Animals | Melanoma - immunology | Bifidobacterium longum - classification | RNA, Ribosomal, 16S - genetics | T-Lymphocytes - immunology | Mice | Gastrointestinal Microbiome - immunology | Melanoma - therapy | Care and treatment | Cell receptors | Microbiota (Symbiotic organisms) | Immunotherapy | Melanoma | Physiological aspects | Metastasis | Health aspects | Methods | Apoptosis | Animal models | rRNA 16S | PD-1 protein | Lung | Microbiomes | Lymphocytes T | Immunity | Metastases | Gene sequencing | Anticancer properties | Microorganisms | Bacteria | Supplementation | Gnotobiotics | Effectiveness | Kidneys | Dietary supplements | Ribonucleic acid--RNA | Patients | Polymerase chain reaction | Antibiotics | Flora | PD-L1 protein | Antitumor activity | Cancer | Kidney transplantation | Index Medicus
Journal Article
PLoS ONE, ISSN 1932-6203, 11/2014, Volume 9, Issue 11, pp. e112831 - e112831
Journal Article
Science, ISSN 0036-8075, 11/2015, Volume 350, Issue 6264, pp. 1084 - 1089
Journal Article