Evento
Bioinformatic profiling of tumor immunity from patient biopsies to predict survival and response to immunotherapy
Mahmoud, Yamil Damián
; Veigas, Florencia
; Merlo, Joaquín Pedro
; Balzarini, Monica Graciela
; Rocha, Darío Gastón; Rabinovich, Gabriel Adrián
; Fernandez, Elmer Andres
; Girotti, Maria Romina







Tipo del evento:
Congreso
Nombre del evento:
2020 ASCO Annual Meeting I: Virtual Scientific Program
Fecha del evento:
29/05/2020
Institución Organizadora:
American Society of Clinical Oncology;
Título de la revista:
Journal Of Clinical Oncology
Editorial:
Journal of Clinical Oncology
ISSN:
0732-183x
e-ISSN:
1527-7755
Idioma:
Inglés
Clasificación temática:
Resumen
Immunotherapies have revolutionized cancer treatment, but responses are not universal and patients who initially respond to therapy develop resistance. The accurate quantification of tumor-infiltrating immune cells holds the promise to reveal the role of the immune system in human cancers and its involvement in tumor escape mechanisms and response to therapy. We present MIXTURE, a new algorithm for tumor immune cell-type proportions deconvolution from transcriptomic data that overcomes competitive methods and revealed novel associations of immune cell types with patient survival and immunotherapy response.
Palabras clave:
IMMUNE SYSTEM
,
IMMUNOTHERAPY
,
CANCER
,
PREDICTION
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Eventos(IBYME)
Eventos de INST.DE BIOLOGIA Y MEDICINA EXPERIMENTAL (I)
Eventos de INST.DE BIOLOGIA Y MEDICINA EXPERIMENTAL (I)
Citación
Bioinformatic profiling of tumor immunity from patient biopsies to predict survival and response to immunotherapy; 2020 ASCO Annual Meeting I: Virtual Scientific Program; en línea; Estados Unidos; 2020; e15198-e15198
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