Fanconi Anemia (FA) is a rare autosomal recessive genetic disease characterized by congenital defects, bone marrow failure, cancer predisposition, and cellular hypersensitivity to DNA crosslinking agents (ICLs). FA is caused by mutations in one of 23 genes whose protein products collaborate in a pathway required for removing cytotoxic interstrand crosslinks (ICLs) from DNA. The D'Andrea laboratory has identified many of the molecular players and processes in the FA/BRCA pathway. In collaboration with the Soulier laboratory, we recently identified REV7 as the FA gene, FANCV. This was a key finding, since REV7/FANCV is emerging as a critical protein affecting several different DNA repair processes, by engaging with different binding partners through its C-terminal ?seatbelt? domain. When the seatbelt of REV7 is bound to SHLD3, it functions upstream in NHEJ. When the seatbelt of REV7 is bound to REV3, it functions as a translesion (TLS) polymerase, Pol?, required for bypassing an unhooked DNA crosslink, generated by the upstream FA proteins. Thus, REV7 deficiency, like the deficiency of other FA proteins, causes sensitivity to Mitomycin C (MMC), an ICL-inducing agent. Through preliminary studies for this grant, we identified novel REV7 interactors by IP-MS. Interestingly, we identified the binding partner, TRIP13, a novel ATPase which flips REV7 into an open conformation and releases REV3 and inactivates the FA/BRCA pathway. We also identified the REV7-binding protein SHLD2/FAM35A. Knockdown of this protein, like REV7 knockdown, disrupts the FA/BRCA pathway.
The Specific Aims for the next five years of this grant are 1) to determine the role of the ATPase TRIP13 in the suppression of the FA/BRCA Pathway 2) to determine the role of the REV7/FANCV protein and its binding partner SHLD2/FAM35A in the activation of the FA/BRCA pathway 3) to employ knockout mouse models for REV7/FANCV and TRIP13 to evaluate the regulation of the FA/BRCA pathway.

Public Health Relevance

Patients with the genetic disease, Fanconi Anemia (FA), develop anemia, myelodysplastic syndrome (MDS), and acute myelogenous leukemia (AML). Twenty-three FA proteins cooperate in a novel DNA repair pathway. The purpose of this application is to elucidate novel regulatory features of this pathway.

Agency
National Institute of Health (NIH)
Institute
National Heart, Lung, and Blood Institute (NHLBI)
Type
Research Project (R01)
Project #
2R01HL052725-25
Application #
9886762
Study Section
Molecular and Cellular Hematology Study Section (MCH)
Program Officer
Qasba, Pankaj
Project Start
1994-08-01
Project End
2023-12-31
Budget Start
2020-01-15
Budget End
2020-12-31
Support Year
25
Fiscal Year
2020
Total Cost
Indirect Cost
Name
Dana-Farber Cancer Institute
Department
Type
DUNS #
076580745
City
Boston
State
MA
Country
United States
Zip Code
02215
Karras, Georgios I; Yi, Song; Sahni, Nidhi et al. (2017) HSP90 Shapes the Consequences of Human Genetic Variation. Cell 168:856-866.e12
Mouw, Kent W; Goldberg, Michael S; Konstantinopoulos, Panagiotis A et al. (2017) DNA Damage and Repair Biomarkers of Immunotherapy Response. Cancer Discov 7:675-693
Kais, Zeina; Rondinelli, Beatrice; Holmes, Amie et al. (2016) FANCD2 Maintains Fork Stability in BRCA1/2-Deficient Tumors and Promotes Alternative End-Joining DNA Repair. Cell Rep 15:2488-99
Bluteau, Dominique; Masliah-Planchon, Julien; Clairmont, Connor et al. (2016) Biallelic inactivation of REV7 is associated with Fanconi anemia. J Clin Invest 126:3580-4
Ceccaldi, Raphael; Rondinelli, Beatrice; D'Andrea, Alan D (2016) Repair Pathway Choices and Consequences at the Double-Strand Break. Trends Cell Biol 26:52-64
Ceccaldi, Raphael; Liu, Jessica C; Amunugama, Ravindra et al. (2015) Homologous-recombination-deficient tumours are dependent on Pol?-mediated repair. Nature 518:258-62
Xie, Jenny; Kim, Hyungjin; Moreau, Lisa A et al. (2015) RNF4-mediated polyubiquitination regulates the Fanconi anemia/BRCA pathway. J Clin Invest 125:1523-32
Kim, Hyungjin; Dejsuphong, Donniphat; Adelmant, Guillaume et al. (2014) Transcriptional repressor ZBTB1 promotes chromatin remodeling and translesion DNA synthesis. Mol Cell 54:107-118
Choi, Young Eun; Pan, Yunfeng; Park, Eunmi et al. (2014) MicroRNAs down-regulate homologous recombination in the G1 phase of cycling cells to maintain genomic stability. Elife 3:e02445
Polito, David; Cukras, Scott; Wang, Xiaozhe et al. (2014) The carboxyl terminus of FANCE recruits FANCD2 to the Fanconi Anemia (FA) E3 ligase complex to promote the FA DNA repair pathway. J Biol Chem 289:7003-10

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