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Defining the cell intrinsic and tumor immune microenvironment mechanisms of DNA-PKcs in radiotherapy resistance in glioblastoma

NCI - National Cancer Institute

open
OpenLast verified: 2026-07-26

About This Grant

PROJECT SUMMARY The goal of this K08 Career Development Award is to train Dr. S. John Liu, a second year Assistant Professor in Residence at UCSF, in the skills he will need to become an independently funded physician-scientist capable of basic and translational investigation in neuro-oncology. Dr. Liu proposes to investigate the role of DNA-PKcs, a kinase well described in DNA repair but relatively underappreciated in non-canonical functions such as tumorigenesis and tumor-immune signaling. The proposal is an extension of his previous work on developing and implementing single cell functional genomics tools to identify and validate genetic regulators of radiotherapy resistance, which is a major problem in the treatment of patients with glioblastoma (GBM). Dr. Liu has shown through unbiased genome-wide CRISPR screens, in vivo perturb-seq experiments, intracranial xenografts, and spatial transcriptomics of patient tumors that inhibition of DNA-PKcs combined with radiotherapy results in decreased pro-growth gene expression and remodeling of the tumor immune microenvironment in GBM. In Aim 1, Dr. Liu will investigate the tumor cell-intrinsic mechanisms of how DNA-PKcs drives resistance to radiotherapy and cell survival in GBM, focusing on transcriptional regulation through chromatin binding and interactions between DNA repair and interferon signaling. In Aim 2, Dr. Liu will investigate how DNA-PKcs regulates the tumor immune microenvironment in syngeneic animal models of GBM. He will then determine the role of the cGAS/STING pathway in the anti-tumor effects of DNA-PKcs inhibition, followed by therapeutically targeting this pathway through STING agonism. In Aim 3, Dr. Liu will validate tumor immune microenvironment reprogramming using patient tumor biospecimens from a clinical trial of DNA-PKcs inhibition and radiotherapy for GBM. This proposal uses vertebrate animals because understanding glioblastoma, a complex disease that involves tumor, stromal, and immune cells, requires experimentation in mice in which the tumor immune microenvironment cannot yet be entirely recapitulated in vitro. Dr. Liu’s career development and research plans include a combination of formal coursework tailored to fill his specific knowledge gaps, national workshops, international conferences, and intensive hands-on research experience that will take place at UCSF, a leading NCCN Comprehensive Cancer Center with an excellent track record in basic and translational neuro-oncology research. Dr. Liu’s training plan specifically focuses on areas that are underdeveloped in his research skillset, specifically (1) molecular biology and radiobiology research methods, (2) tumor immunology knowledge and research methods, (3) translational research skills in neuro-oncology, and (4) leadership and laboratory management skills to achieve and sustain independence. This project will be mentored by David Raleigh, Associate Professor of Radiation Oncology, Neurological Surgery, and Pathology at UCSF who is an experienced mentor well suited to train Dr. Liu in these key areas. Dr. Liu has a highly distinguished but available advisor committee possessing synergistic expertise spanning basic, translational, and biostatistical sciences to guide his research and career trajectory. Successful completion of this proposal will train Dr. Liu for independence and also provide mechanistic understanding of RT resistance in GBM, while elucidating rationally informed combination therapy strategies that may improve outcomes for patients with GBM.

Grant Summary

Defining the cell intrinsic and tumor immune microenvironment mechanisms of DNA-PKcs in radiotherapy resistance in glioblastoma is a NCI - National Cancer Institute grant providing up to $287K for university, nonprofit, healthcare org. Applications are due 2031-04-30 (open). Check eligibility and apply with FindGrants.

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Focus Areas

health research

Eligibility

universitynonprofithealthcare org

How to Apply

Funding Range

Up to $287K

Deadline

2031-04-30

Complexity
Medium
  1. 1Confirm your organization is eligible for Defining the cell intrinsic and tumor immune microenvironment mechanisms of DNA-PKcs in radiotherapy resistance in glioblastoma from NCI - National Cancer Institute, checking organization type, location, and any population or project requirements.
  2. 2Gather the required documents and information, including your organization details, project plan, and budget figures.
  3. 3Draft your application narrative and budget addressing the funder's priorities and review criteria. FindGrants can draft each section for you to review and edit.
  4. 4Review every section against the requirements checklist, then export a submission-ready application pack and submit it to NCI - National Cancer Institute before the deadline.
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Defining the cell intrinsic and tumor immune microenvironment mechanisms of DNA-PKcs in radiotherapy resistance in glioblastoma: Frequently Asked Questions

Who is eligible for the Defining the cell intrinsic and tumor immune microenvironment mechanisms of DNA-PKcs in radiotherapy resistance in glioblastoma?

Defining the cell intrinsic and tumor immune microenvironment mechanisms of DNA-PKcs in radiotherapy resistance in glioblastoma is offered by NCI - National Cancer Institute and is generally open to university, nonprofit, healthcare org. It is open to organizations nationwide unless the funder specifies otherwise. Review the specific eligibility terms before applying, since funders set their own requirements around organization type, location, and the population or project being served.

How much funding does the Defining the cell intrinsic and tumor immune microenvironment mechanisms of DNA-PKcs in radiotherapy resistance in glioblastoma provide?

Defining the cell intrinsic and tumor immune microenvironment mechanisms of DNA-PKcs in radiotherapy resistance in glioblastoma provides up to $287K per award from NCI - National Cancer Institute. Actual award sizes depend on the scope of your project, available program funds, and the number of applicants, so build a budget that reflects realistic, allowable costs rather than the maximum figure.

When is the Defining the cell intrinsic and tumor immune microenvironment mechanisms of DNA-PKcs in radiotherapy resistance in glioblastoma deadline?

Applications for Defining the cell intrinsic and tumor immune microenvironment mechanisms of DNA-PKcs in radiotherapy resistance in glioblastoma are due 2031-04-30 (open). Because deadlines can change, verify the date with the funder, NCI - National Cancer Institute, and give yourself enough time to prepare a complete, competitive application before the close date.

How do you apply for the Defining the cell intrinsic and tumor immune microenvironment mechanisms of DNA-PKcs in radiotherapy resistance in glioblastoma?

To apply for Defining the cell intrinsic and tumor immune microenvironment mechanisms of DNA-PKcs in radiotherapy resistance in glioblastoma, confirm your eligibility, gather the required documents, and prepare a narrative and budget that address the funder's priorities. FindGrants guides you step by step and can draft each section, then exports a submission-ready application pack for this grant from NCI - National Cancer Institute.