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Laser Microirradiation to Study In Vivo Cellular Responses to Simple and Complex DNA Damage
Published on: January 31, 2018
Mitigating T cell DNA damage during PARP inhibitor treatment enhances antitumor efficacy
Jiahao Liu1,2, Xiaofei Jiao1,2, Wei Mu3
1Department of Gynecological Oncology, Tongji Hospital, Tongji Medical College, Huazhong University of Science and Technology, Wuhan, 430030, China.
Abstract:
Poly(ADP-ribose) polymerase inhibitors (PARPis) are a class of agents targeting DNA damage repair that have become standard therapy for epithelial ovarian cancer (EOC) and multiple other solid tumors. In addition to targeting DNA damage repair, PARPis actively modulate antitumor immune responses, with efficacy being partially dependent on T cell activity. Here, we found that patient T cells sustain DNA damage during PARPi treatment, which reduces treatment efficacy. Leveraging paired pre- and posttreatment tumor samples from a clinical trial of patients with EOC treated with neoadjuvant niraparib as monotherapy, we showed that the PARPi caused DNA damage, slowed proliferation, and increased apoptosis in T cells, which we validated both in vitro and in mouse models. A genome-wide CRISPR (clustered regularly interspaced short palindromic repeats) knockout screen in primary human T cells identified PARP1 as the principal mediator of PARPi-induced T cell death. T cell-specific deletion of PARP1 or mutating Parp1 at its binding sites in transgenic mice led to reduced T cell DNA damage during PARPi treatment, resulting in improved efficacy of PARPis, alone or in combination with immune checkpoint inhibition. We then engineered PARPi-tolerant CAR T cells using cytosine base editing, which decreased PARPi-induced PARP1 trapping and led to reduced PARPi-induced DNA damage, resulting in superior antitumor efficacy in xenograft models compared with parental CAR T cells. This study highlights the relevance of PARPi-induced DNA damage to T cells and suggests opportunities to improve the efficacy of PARPis as monotherapy or in combination with immunotherapy.
Insights
Poly(ADP-ribose) polymerase inhibitors (PARPis) damage T cells, reducing their effectiveness. Targeting PARP1 in T cells or engineering PARPi-tolerant CAR T cells can improve cancer treatment efficacy with PARPis and immunotherapy.
Area of Science:
- Oncology
- Immunology
- Cancer Therapeutics
Background:
- Poly(ADP-ribose) polymerase inhibitors (PARPis) are standard cancer therapies.
- PARPi efficacy depends partly on T cell activity.
- PARPis can negatively impact T cells, potentially limiting their therapeutic benefit.
Purpose of the Study:
- To investigate the impact of PARPi treatment on T cells.
- To identify mechanisms by which PARPis affect T cells.
- To explore strategies for enhancing PARPi efficacy by improving T cell function.
Main Methods:
- Analysis of patient tumor samples from a neoadjuvant niraparib trial.
- In vitro and mouse model validation of PARPi effects on T cells.
- Genome-wide CRISPR knockout screen to identify PARPi targets in T cells.
- Engineering of PARPi-tolerant CAR T cells using cytosine base editing.
Main Results:
- PARPi treatment caused DNA damage, reduced proliferation, and increased apoptosis in patient T cells.
- PARP1 was identified as a key mediator of PARPi-induced T cell death.
- Genetic modification of PARP1 in T cells or engineering CAR T cells improved PARPi efficacy in preclinical models.
- Reduced T cell DNA damage correlated with improved antitumor responses.
Conclusions:
- PARPi-induced DNA damage in T cells is a critical factor limiting treatment efficacy.
- Targeting PARP1 in T cells or developing PARPi-tolerant immune cells offers a promising strategy to enhance PARPi therapy.
- These findings suggest novel approaches to combine PARPis with immunotherapy for improved cancer treatment outcomes.
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