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Fanconi anemia signaling and Mus81 cooperate to safeguard development and crosslink repair
Author(s) -
Meghan Larin,
David Gallo,
Laura Tamblyn,
Jay Yang,
Hudson Liao,
Nestor Sabat,
Grant W. Brown,
J. Peter McPherson
Publication year - 2014
Publication title -
nucleic acids research
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 9.008
H-Index - 537
eISSN - 1362-4954
pISSN - 0305-1048
DOI - 10.1093/nar/gku676
Subject(s) - fanconi anemia , biology , dna damage , bone marrow failure , dna repair , fancd2 , cancer research , genome instability , chromosome instability , microbiology and biotechnology , genetics , apoptosis , immunology , dna , gene , haematopoiesis , stem cell , chromosome
Individuals with Fanconi anemia (FA) are susceptible to bone marrow failure, congenital abnormalities, cancer predisposition and exhibit defective DNA crosslink repair. The relationship of this repair defect to disease traits remains unclear, given that crosslink sensitivity is recapitulated in FA mouse models without most of the other disease-related features. Mice deficient in Mus81 are also defective in crosslink repair, yet MUS81 mutations have not been linked to FA. Using mice deficient in both Mus81 and the FA pathway protein FancC, we show both proteins cooperate in parallel pathways, as concomitant loss of FancC and Mus81 triggered cell-type-specific proliferation arrest, apoptosis and DNA damage accumulation in utero. Mice deficient in both FancC and Mus81 that survived to birth exhibited growth defects and an increased incidence of congenital abnormalities. This cooperativity of FancC and Mus81 in developmental outcome was also mirrored in response to crosslink damage and chromosomal integrity. Thus, our findings reveal that both pathways safeguard against DNA damage from exceeding a critical threshold that triggers proliferation arrest and apoptosis, leading to compromised in utero development.

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