Related Experiment Video
Updated: Oct 15, 2025

Identifying DNA Mutations in Purified Hematopoietic Stem/Progenitor Cells
Published on: February 24, 2014
Replication stress response defects are associated with response to immune checkpoint blockade in nonhypermutated
Daniel J McGrail1, Patrick G Pilié2, Hui Dai1
1Department of Systems Biology, The University of Texas MD Anderson Cancer Center, Houston, TX 77030, USA.
Abstract:
Treatment with immune checkpoint blockade (ICB) has resulted in durable responses for a subset of patients with cancer, with predictive biomarkers for ICB response originally identified largely in the context of hypermutated cancers. Although recent clinical data have demonstrated clinical responses to ICB in certain patients with nonhypermutated cancers, previously established ICB response biomarkers have failed to accurately identify which of these patients may benefit from ICB. Here, we demonstrated that a replication stress response (RSR) defect gene expression signature, but not other proposed biomarkers, is associated with ICB response in 12 independent cohorts of patients with nonhypermutated cancer across seven tumor types, including those of the breast, prostate, kidney, and brain. Induction or suppression of RSR deficiencies was sufficient to modulate response to ICB in preclinical models of breast and renal cancers. Mechanistically, we found that despite robust activation of checkpoint kinase 1 signaling in RSR-deficient cancer cells, aberrant replication origin firing caused exhaustion of replication protein A, resulting in accumulation of immunostimulatory cytosolic DNA. We further found that deficient RSR coincided with increased intratumoral dendritic cells in both mouse cancer models and human tumors. Together, this work demonstrates that the RSR defect gene signature can accurately identify patients who may benefit from ICB across numerous nonhypermutated tumor types, and pharmacological induction of RSR defects may further expand the benefits of ICB to more patients.
Insights
A new gene signature identifying replication stress response (RSR) defects accurately predicts immune checkpoint blockade (ICB) response in nonhypermutated cancers. This finding may expand ICB benefits to more patients.
Area of Science:
- Oncology
- Immunotherapy
- Cancer Genomics
Background:
- Immune checkpoint blockade (ICB) offers durable responses in some cancers, but predictive biomarkers are limited, especially for nonhypermutated tumors.
- Existing biomarkers fail to reliably identify nonhypermutated cancer patients who will benefit from ICB therapy.
Purpose of the Study:
- To identify a novel biomarker for predicting ICB response in nonhypermutated cancers.
- To investigate the mechanistic link between replication stress response (RSR) defects and ICB efficacy.
Main Methods:
- Analysis of a replication stress response (RSR) defect gene expression signature across 12 independent patient cohorts with nonhypermutated cancers.
- Modulation of RSR deficiencies in preclinical models of breast and renal cancers to assess ICB response.
- Mechanistic studies investigating DNA replication, protein exhaustion, and immune cell infiltration in RSR-deficient tumors.
Main Results:
- The RSR defect gene signature, unlike other biomarkers, strongly correlated with ICB response in diverse nonhypermutated cancers (breast, prostate, kidney, brain).
- Manipulating RSR deficiencies altered ICB response in preclinical models.
- RSR defects led to cytosolic DNA accumulation and increased intratumoral dendritic cells, suggesting a mechanism for enhanced anti-tumor immunity.
Conclusions:
- The RSR defect gene signature is a robust predictive biomarker for ICB response in nonhypermutated cancers.
- Targeting RSR defects may represent a therapeutic strategy to improve ICB efficacy and broaden its application.
Related Concept Videos
DNA Damage can Stall the Cell Cycle
Mismatch Repair
The Mutator Protein Family Plays a Key Role in DNA Mismatch Repair
The human genome has more than 3 billion base pairs of DNA per cell. Prior to cell division, that vast amount of genetic...
DNA Damage Can Stall the Cell Cycle
Treatment Resistant Cancers
Abnormal Proliferation
The DNA Replication Fork

