Project Grant R35GM155148
- This Project Grant award, valued at $1,843,775.00 and provided by the National Institute of General Medical Sciences (NIGMS) under the Biomedical Research and Research Training program (CFDA 93.859), supports research to identify and characterize DNA-protein cross-links (DPCs) and their associated repair pathways. The principal investigator at the University of Kansas Center for Research Inc. will use advanced mass spectrometry techniques to profile the molecular signatures of DPCs across...
- This Project Grant award from the National Science Foundation's Biological Sciences program (CFDA 47.074) provides $495,594.00 to the University of California, Santa Barbara to conduct research on the mechanisms underlying DNA double-strand break repair through homologous recombination. The objectives of this 5-year project are to 1) define the steps in recombination altered by DNA interstrand crosslinks, 2) explore how the DNA repair regulatory kinase ATR is activated during double-strand break...
- 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 $393,263 National Science Foundation Division of Chemistry Project Grant will support collaborative research between the University of California, Davis and the University of Utah to study DNA repair mechanisms. The research aims to apply a chemical biology approach to reveal insights into base excision repair glycosylases that identify and initiate repair of rare DNA bases with subtle damage. Specifically, the team will develop transition state mimics to test the idea that evolutionarily...
- 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...
- This $900,000 federal Project Grant awarded by the National Science Foundation (NSF) Biological Sciences program (CFDA 47.074) supports a collaborative research project led by North Carolina State University to unravel the mechanisms behind the workings of the DNA mismatch repair systems. The research aims to elucidate the role of atypical nucleic acid structures, such as three-way junctions and R-loops, in driving the expansion of simple sequence repeats (SSRs) within the genome, which is a...
- This Project Grant award, provided by the National Institute on Aging under CFDA Program 93.866 - Aging Research, supports a $2,516,316 research initiative led by Harvard Medical School to investigate neuronal activity-responsive DNA repair mechanisms and their contribution to cognitive aging and Alzheimer's disease. The key products and services to be delivered under this 3-year grant include: Mapping the landscape of activity-induced DNA double-strand breaks (DSBs) in wild-type mice and...
- The U.S. National Institute of General Medical Sciences (NIGMS) awarded a $125,000 Project Grant under CFDA 93.859 (Biomedical Research and Research Training) to the University of California, Davis to investigate the role of the mismatch repair proteins MSH2 and MSH6 in maintaining genome stability. The 2-year project aims to delineate the mechanisms by which MSH2-MSH6 rejects mismatched recombination intermediates and determine the clinical significance of losing this activity in...
- 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...
- This federal Project Grant award of $3,101,237.00 was provided by the National Institute on Aging (NIA), part of the U.S. Department of Health and Human Services, under the Aging Research federal grant program (CFDA 93.866). The funding supports a research project investigating the mechanisms linking persistent DNA damage to immune responses and hematopoietic stem and progenitor cell function in the context of aging and DNA repair deficiency. Key objectives of the project include: 1) elucidating...
FORMATION AND REPAIR MECHANISMS OF DNA-PROTEIN CROSS-LINKS, AND FUNCTIONS AND REGULATORY MECHANISMS OF TREX1 IN DNA REPAIR - ABSTRACT UNDERSTANDING HOW DNA IS DAMAGED AND HOW THE DAMAGE IS REPAIRED IS CRITICAL. THIS IS BECAUSE DNA DAMAGE CONTRIBUTES TO GENOME INSTABILITY, AGING, AND DISEASES, AND DNA-DAMAGING AGENTS ARE USED IN CHEMOTHERAPY. COVALENT DNA-PROTEIN CROSS-LINKS (DPCS) ARE UBIQUITOUS AND BULKY DNA LESIONS. DESPITE THAT IT HAS BEEN WELL ACCEPTED THAT DPCS ARE HIGHLY TOXIC, COMPARED TO OTHER TYPES OF DNA DAMAGE, DPCS ARE MUCH LESS WELL STUDIED MAINLY DUE TO THE LACK OF APPROACHES TO DETECT, QUANTIFY, AND SYNTHESIZE DPCS. MY RESEARCH PROGRAM STUDIES DPCS AT 3-DNA TERMINI (3-DPCS) WITHIN SINGLE-STRAND BREAKS (SSBS). THEY ARE DERIVED FROM THE APURINIC/APYRIMIDINIC (AP) SITE THAT IS ONE OF THE MOST FREQUENTLY FORMED DNA LESIONS AND INDUCED BY MANY ENDOGENOUS AND EXOGENOUS GENOTOXINS INCLUDING SOME ANTI-CANCER DRUGS. IF LEFT UNREPAIRED, 3-DPCS WILL BLOCK DNA REPLICATION AND TRANSCRIPTION, PREVENT THE SSB REPAIR, CAUSE GENOME INSTABILITY, AND MAY LEAD TO CELL DEATH. WE HYPOTHESIZE THAT 3-DPC FORMATION IS A PREVIOUSLY UNCHARACTERIZED CYTOTOXIC MECHANISM OF THE AP SITE AND ITS INDUCING AGENTS, 3-DPCS ARE NEW BIOMARKERS OF OXIDATIVE STRESS-RELATED DISEASES, AND INHIBITING 3-DPC REPAIR WILL SYNERGIZE DNA METHYLATING AGENTS. OUR GOAL IS TO ELUCIDATE THE FORMATION AND REPAIR MECHANISMS OF 3-DPCS. IN PAST WORK, WE HAVE DETECTED 3-DPCS IN HUMAN CELLS USING A NOVEL MASS SPECTROMETRY PIPELINE, BUT THEIR CELLULAR ABUNDANCE AND TO WHAT EXTENT THEY ARE INDUCED BY GENOTOXINS ARE UNKNOWN. WE HAVE CHEMICALLY SYNTHESIZED 3-DPCS AND DEMONSTRATED THAT THEY CAN BE REPAIRED BY THREE HUMAN NUCLEASES, BUT ONLY WHEN THE CROSS-LINKED PROTEINS ARE INITIALLY DIGESTED BY TRYPSIN. HOW 3-DPCS ARE PROTEOLYZED IN CELLS REMAINS ELUSIVE. WE WILL FILL THESE KNOWLEDGE GAPS. NOTABLY, DURING STUDYING 3-DPC REPAIR, WE DISCOVERED IN VITRO THAT PROTEOLYZED 3- DPCS AND AN AP SITE REPAIR INTERMEDIATE (I.E., 3-PUA) ARE EXCISED BY HUMAN THREE-PRIME REPAIR EXONUCLEASE 1 (TREX1). THIS UNEXPECTED FINDING IS THE FIRST TO REPORT A DIRECT ROLE OF TREX1 IN DNA REPAIR AND CHALLENGES THE PREVIOUS NOTION. IT OPENED A NEW AND EXCITING RESEARCH DIRECTION THAT WE WILL ALSO PURSUE IN THIS MIRA APPLICATION. OUR HYPOTHESIS IS THAT TREX1 IS A 3-DNA LESION PROCESSING ENZYME AND A PROMISING THERAPEUTIC TARGET. OUR GOAL IS TO DELINEATE THE FUNCTIONS AND REGULATORY MECHANISMS OF TREX1 IN DNA REPAIR. WE WILL FOCUS ON SEVERAL IMPORTANT QUESTIONS. FOR INSTANCE, DOES TREX1 PLAY A ROLE IN CELLS IN RESPONSE TO DNA DAMAGE? IF SO, IS THAT DEPENDENT ON ITS EXONUCLEASE ACTIVITY? AND HOW IS TREX1 RECRUITED AND REGULATED? WE WILL ADDRESS THESE QUESTIONS AND STUDY 3-DPC FORMATION AND REPAIR MECHANISMS USING INTERDISCIPLINARY TECHNIQUES INCLUDING ORGANIC SYNTHESIS, QUANTITATIVE MASS SPECTROMETRY, PROTEOMICS, BIOCHEMISTRY, MOLECULAR AND CELL BIOLOGY-BASED APPROACHES. THIS RESEARCH WILL ADVANCE FUNDAMENTAL UNDERSTANDING OF DNA DAMAGE AND REPAIR. SUCH NEW KNOWLEDGE WILL INFORM THE DEVELOPMENT OF NOVEL THERAPEUTIC INTERVENTIONS.
Mod # | Description | ReasonForModification | Federal Obligation | Date |
|---|---|---|---|---|
| Not listed | $383.8k | 5/19/25 | ||
| Not listed | $382.7k | 6/20/24 | ||
| Not listed | $382.7k | 6/20/24 |