Nonhomologous end joining (NHEJ) is a major pathway for resolving chromosome double strand breaks. NHEJ deficiency results in a wide variety of phenotypes including premature cellular senescence, immunodeficiency, defective neurogenesis, dwarfism, accelerated aging, and cancer predisposition. Notably, NHEJ is mostly dispensable in resolving the """"""""clean"""""""" chromosome breaks used in many experimental models. Why, then, are the phenotypes of NHEJ deficiency so severe? We will address here if NHEJ's pivotal role in maintaining genome stability is at least in part due to a unique ability to flexibly cope with the complex end structures expected in biologically relevant contexts. Of particular interest to this proposal, broken ends generated by ionizing radiation, radiomimetic drugs, or chronic oxidative stress possess associated damage to flanking DNA, including oxidized and missing bases. The ability of ionizing radiation and radiomimetic drugs to introduce such complex damage is a major factor in the biological impact of these agents, and thus critical in the effectiveness of these agents in tumor therapy.
In Aim 1, we will determine how associated radiomimetic damage effects how NHEJ joins ends, both in vitro and in cells. Ku is a key factor in repair of breaks by NHEJ.
In Aim 2 we will address the extent to which Ku's recently described ability to excise damaged nucleotides from ends contributes to its role in NHEJ.
In Aim 3 we will determine how NHEJ regulates the fidelity of the ligation step, and what impact regulation of fidelity has on resolution of complex end structures.

Public Health Relevance

This work represents a systematic study addressing how our cells resolve chromosome breaks caused by chronic stress or acute radiation exposure. Our work will provide insights into aging and how radiation kills cells, and will be used to generate safer and more effective ways to use radiation as a tool for therapy.

Agency
National Institute of Health (NIH)
Institute
National Cancer Institute (NCI)
Type
Research Project (R01)
Project #
2R01CA084442-10
Application #
7729818
Study Section
Cancer Etiology Study Section (CE)
Program Officer
Pelroy, Richard
Project Start
2000-01-04
Project End
2014-04-30
Budget Start
2009-06-01
Budget End
2010-04-30
Support Year
10
Fiscal Year
2009
Total Cost
$258,899
Indirect Cost
Name
University of North Carolina Chapel Hill
Department
Biochemistry
Type
Schools of Medicine
DUNS #
608195277
City
Chapel Hill
State
NC
Country
United States
Zip Code
27599
Brown, Alexander J; Al-Soodani, Aneesa T; Saul, Miles et al. (2018) High-Throughput Analysis of DNA Break-Induced Chromosome Rearrangements by Amplicon Sequencing. Methods Enzymol 601:111-144
Reid, Dylan A; Conlin, Michael P; Yin, Yandong et al. (2017) Bridging of double-stranded breaks by the nonhomologous end-joining ligation complex is modulated by DNA end chemistry. Nucleic Acids Res 45:1872-1878
Conlin, Michael P; Reid, Dylan A; Small, George W et al. (2017) DNA Ligase IV Guides End-Processing Choice during Nonhomologous End Joining. Cell Rep 20:2810-2819
Schellenberg, Matthew J; Perera, Lalith; Strom, Christina N et al. (2016) Reversal of DNA damage induced Topoisomerase 2 DNA-protein crosslinks by Tdp2. Nucleic Acids Res 44:3829-44
Almohaini, Mohammed; Chalasani, Sri Lakshmi; Bafail, Duaa et al. (2016) Nonhomologous end joining of complex DNA double-strand breaks with proximal thymine glycol and interplay with base excision repair. DNA Repair (Amst) 41:16-26
Wilson, Justin E; Petrucelli, Alex S; Chen, Liang et al. (2015) Inflammasome-independent role of AIM2 in suppressing colon tumorigenesis via DNA-PK and Akt. Nat Med 21:906-13
Reid, Dylan A; Keegan, Sarah; Leo-Macias, Alejandra et al. (2015) Organization and dynamics of the nonhomologous end-joining machinery during DNA double-strand break repair. Proc Natl Acad Sci U S A 112:E2575-84
Strande, Natasha T; Carvajal-Garcia, Juan; Hallett, Ryan A et al. (2014) Requirements for 5'dRP/AP lyase activity in Ku. Nucleic Acids Res 42:11136-43
Waters, Crystal A; Strande, Natasha T; Wyatt, David W et al. (2014) Nonhomologous end joining: a good solution for bad ends. DNA Repair (Amst) 17:39-51
Williams, Gareth J; Hammel, Michal; Radhakrishnan, Sarvan Kumar et al. (2014) Structural insights into NHEJ: building up an integrated picture of the dynamic DSB repair super complex, one component and interaction at a time. DNA Repair (Amst) 17:110-20

Showing the most recent 10 out of 35 publications