Strength in numbers: predicting response to checkpoint inhibitors from large clinical datasets.

Stenzinger, Albrecht; Kazdal, Daniel; Peters, Solange · Cell · 2021

retrospective_cohort · Level III

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Abstract

The advent of immune checkpoint blockers for cancer therapy has spawned great interest in identifying molecular features reflecting the complexity of tumor immunity, which can subsequently be leveraged as predictive biomarkers. In a thorough big-data approach analyzing the largest series of homogenized molecular and clinical datasets, Litchfield et al. identified a set of genomic biomarkers that identifies immunotherapy responders across cancer types.

Medical subject headings