Project Grant R01CA285725
- This Project Grant award of $451,259.00 from the National Institute of General Medical Sciences (NIGMS), under the Biomedical Research and Research Training program (CFDA 93.859), supports research to illuminate the role of chromatin composition and regulation in the repair of double-strand breaks in heterochromatin. The research, conducted by the University of Southern California, aims to: 1) establish the function of "silent" chromatin marks in promoting early heterochromatin repair;...
- This $238,722 federal Project Grant awarded on August 18, 2025 by the National Cancer Institute (CFDA 93.398 - Cancer Research Manpower) to the Sloan-Kettering Institute for Cancer Research supports research to investigate the role of mutagenic DNA repair during the persistence of cancer cells. The research aims to define the specific mechanisms that promote mutagenic DNA repair and drive acquired drug resistance in persister cancer cells, focusing on the role of the microhomology-mediated end...
- The Research Foundation for the State University of New York (SUNY) received a $400,000 Project Grant from the National Science Foundation (NSF) Division of Molecular and Cellular Biosciences under CFDA 47.074 - Biological Sciences. The project aims to improve understanding of the DNA mismatch repair (MMR) pathway and how changes in the behavior of mismatch repair proteins can lead to genome instability, particularly in the presence of specific DNA sequences like repetitive elements. Key project...
- The National Cancer Institute (CFDA 93.393 - Cancer Cause and Prevention Research) awarded a $3,201,530 Project Grant to the Sloan-Kettering Institute for Cancer Research to investigate the mechanisms underlying extrachromosomal DNA (ecDNA) segregation and repair in cancer. The key focus areas include: Exploring how the circular topology of ecDNA affects its function and maintenance, specifically examining the RNA-dependent physical tethering of ecDNA to mitotic chromosomes that facilitates...
- This Project Grant award of $147,486 from the National Institute of Environmental Health Sciences (NIEHS), under the Environmental Health federal grant program (CFDA 93.113), supports research by Thomas Jefferson University (doing business as Sidney Kimmel Medical College) to investigate the impact of oxidative stress on centromere integrity. The key objectives are to: 1) Investigate the DNA damage response at the centromere and the contribution of DNA repair factors in maintaining centromere...
- The Sloan-Kettering Institute for Cancer Research was awarded a $581,381 Project Grant by the National Cancer Institute (CFDA 93.393 Cancer Cause and Prevention Research) to investigate the role of microhomology-mediated end-joining (MMEJ) in mitosis and its impact on drug resistance. The project aims to gain a better understanding of DNA damage repair pathways and how they go awry in cancer, with the goal of informing more effective therapeutic approaches. Specifically, the research will...
- This $292,028 Project Grant awarded by the National Cancer Institute (CFDA 93.398 - Cancer Research Manpower) supports research to investigate the mechanisms by which oncogene amplification leads to genome instability and the development of therapy-resistant cancer clones. The research will be conducted by the Sloan-Kettering Institute for Cancer Research in New York and is scheduled to run from August 1, 2025 to July 31, 2030. Using single-cell genomic sequencing techniques, the project aims...
- This federal Project Grant award of $390,000.00 from the National Institute of General Medical Sciences (NIGMS), under the Biomedical Research and Research Training program (CFDA 93.859), supports research to elucidate the mechanisms underlying DNA double-strand break repair at Thomas Jefferson University, doing business as Sidney Kimmel Medical College. The research aims to determine the regulatory mechanisms of the multi-protein and multi-step process required to coordinate the repair of DNA...
- This Project Grant award of $524,815 was provided by the National Cancer Institute (CFDA 93.393 - Cancer Cause and Prevention Research) to Saint Louis University (SLU) on August 28, 2025. The grant supports research aimed at understanding the mechanisms of homologous recombination (HR), a DNA repair pathway critical for maintaining genomic stability. The key focus is on elucidating how mediator proteins and RAD51 paralogs facilitate the formation and stabilization of the RAD51 nucleoprotein...
- This Project Grant award from the National Cancer Institute (CFDA 93.398 - Cancer Research Manpower program) provides $144,981 to the University of California, San Diego (UC San Diego) to characterize the role of extrachromosomal DNA (ecDNA) in shaping the heterogeneity and plasticity of glioblastoma (GBM) cellular states. The award period runs from September 3, 2025 to August 31, 2027. The project aims to determine how ecDNA, which are large circular DNA elements harboring oncogenes,...
EPIGENETIC MECHANISMS CONTROLLING SINGLE-STRANDED DNA LESION SENSITIVITY AND MUTAGENESIS - PROJECT SUMMARY: OUR LONG-TERM OBJECTIVE IS TO DEFINE THE EPIGENETIC MECHANISMS THAT ENSURE ACCURATE GENOME MAINTENANCE, AND TO EXPLOIT THESE FINDINGS TO IMPROVE HUMAN HEALTH. SINGE-STRANDED DNA LESIONS (SSLS) ARE AMONG THE MOST ABUNDANT GENOMIC ABERRATIONS AND ARE THE PRIMARY SOURCE OF POLY-(ADP-RIBOSE) POLYMERASE (PARP) ACTIVATION, WHICH ORCHESTRATES DOWNSTREAM REPAIR EVENTS. IN SOMATIC CELLS, ABERRANT SSL REPAIR PROMOTES MUTAGENIC EVENTS THAT ARE RELEVANT TO TUMORIGENESIS. IN CANCER, SSL-INDUCING AGENTS, INCLUDING TOPOISOMERASE 1 INHIBITORS (TOP1I) AND ALKYLATING DRUGS, ARE MAINSTAY THERAPIES, WHICH CAN BE POTENTIATED IN THE PRESENCE OF PARP INHIBITORS. SSL REPAIR IS THUS FUNDAMENTALLY IMPORTANT NOT ONLY FOR NORMAL GENOME MAINTENANCE BUT ALSO AS A POTENTIAL CANCER VULNERABILITY. IN THIS PROPOSAL, WE WILL INVESTIGATE THE EPIGENETIC CONTROL OF SSL REPAIR, A FEATURE THAT REMAINS POORLY UNDERSTOOD TO DATE. IN RECENT UNPUBLISHED WORK, WE HAVE IDENTIFIED MACROH2A1, AN ABUNDANT HISTONE H2A VARIANT IN MAMMALIAN CHROMATIN, AS AN EFFECTOR OF THIS PROCESS. MACROH2A1 EXISTS AS TWO ALTERNATIVE SPLICE ISOFORMS, MACROH2A1.1 AND MACROH2A1.2, AND ABERRANT MACROH2A1 SPLICING IS A SHARED ALBEIT POORLY UNDERSTOOD FEATURE OF MANY CANCERS. MACROH2A1.1, BUT NOT THE OTHER ISOFORM, BINDS POLY-(ADP-RIBOSE) DERIVATIVES, AND OUR PRELIMINARY DATA POINT TO A MACROH2A1.1-SPECIFIC ROLE IN SSL REMOVAL. WE FURTHER FIND THAT MACROH2A1.1 LEVELS ARE INVERSELY CORRELATED WITH SENSITIVITY TO SSL-INDUCING AGENTS IN CANCER CELL LINES. WE HYPOTHESIZE THAT CHANGES IN SSL REPAIR PROFICIENCY DUE TO ALTERED MACROH2A1 SPLICING HAVE A DIRECT IMPACT ON MUTATION BURDEN, TUMOR DEVELOPMENT AND CANCER TREATMENT RESPONSE. IN AIM 1, WE WILL INVESTIGATE THE ROLE OF ALTERNATIVELY SPLICED MACROH2A1 ISOFORMS IN SSL REPAIR, IDENTIFY SPECIFIC REPAIR EFFECTORS AND ASSESS THE ROLE OF THE DAMAGE-PROXIMAL CHROMATIN ENVIRONMENT ON REPAIR KINETICS USING INNOVATIVE CELL-BASED REPORTERS. WE WILL THEN INVESTIGATE HOW MACROH2A1 ISOFORM MANIPULATION AFFECTS CANCER CELL SENSITIVITY TO SSL-INDUCING AGENTS. AIM 2 WILL DETERMINE THE IMPACT OF MACROH2A1 ON GENOME INTEGRITY SPECIFICALLY IN THE CONTEXT OF TOP1-RELATED LESIONS, WHICH RESULT IN INCREASED MUTATION BURDEN THAT IS RELEVANT TO HUMAN CANCER. WHAT PROTECTS THE GENOME FROM EXCESSIVE TOP1 ACTIVITY REMAINS UNKNOWN. WE HYPOTHESIZE THAT MACROH2A1 ISOFORMS CONTROL TOP1-ASSOCIATED DNA DAMAGE AND MUTAGENESIS. WE WILL TEST THESE PREDICTIONS USING GENOMIC APPROACHES AND CELL-BASED MODELS. AIM 3 WILL ESTABLISH A PROOF OF PRINCIPLE FOR MACROH2A1 FUNCTION IN CANCER IN THE CONTEXT OF IMPAIRED SSL REPAIR. FIRST, WE WILL DETERMINE THE DEPENDENCY OF TOP1-ASSOCIATED TUMORIGENESIS ON MACROH2A1.1 IN A MOUSE MODEL. THEN, WE WILL TEST WHETHER MACROH2A1 SPLICING IMBALANCE IN HUMAN TUMOR ORGANOIDS PREDICTS SENSITIVITY TO SSL- INDUCING DRUGS AND PARP INHIBITORS. COLLECTIVELY, THESE STUDIES PROMISE TO TRANSFORM CURRENT MODELS OF SSL REPAIR AND ADVANCE OUR UNDERSTANDING OF THE EPIGENETIC PATHWAYS THAT CONTROL MUTATION BURDEN AND SSL SENSITIVITY IN CANCER.
Mod # | Description | ReasonForModification | Federal Obligation | Date |
|---|---|---|---|---|
| Not listed | $526.5k | 8/1/25 | ||
| Not listed | $19.5k | 2/14/25 | ||
| Not listed | $19.5k | 2/14/25 | ||
| Not listed | $522.1k | 7/16/24 | ||
| Not listed | $522.1k | 7/16/24 |