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Published on: September 1, 2019
HUS1 regulates in vivo responses to genotoxic chemotherapies
G Balmus1, P X Lim1, A Oswald1
1Department of Biomedical Sciences, Cornell University, Ithaca, NY, USA.
Abstract:
Cells are under constant attack from genotoxins and rely on a multifaceted DNA damage response (DDR) network to maintain genomic integrity. Central to the DDR are the ATM and ATR kinases, which respond primarily to double-strand DNA breaks (DSBs) and replication stress, respectively. Optimal ATR signaling requires the RAD9A-RAD1-HUS1 (9-1-1) complex, a toroidal clamp that is loaded at damage sites and scaffolds signaling and repair factors. Whereas complete ATR pathway inactivation causes embryonic lethality, partial Hus1 impairment has been accomplished in adult mice using hypomorphic (Hus1(neo)) and null (Hus1(Δ1)) Hus1 alleles, and here we use this system to define the tissue- and cell type-specific actions of the HUS1-mediated DDR in vivo. Hus1(neo/Δ1) mice showed hypersensitivity to agents that cause replication stress, including the crosslinking agent mitomycin C (MMC) and the replication inhibitor hydroxyurea, but not the DSB inducer ionizing radiation. Analysis of tissue morphology, genomic instability, cell proliferation and apoptosis revealed that MMC treatment caused severe damage in highly replicating tissues of mice with partial Hus1 inactivation. The role of the 9-1-1 complex in responding to MMC was partially ATR-independent, as a HUS1 mutant that was proficient for ATR-induced checkpoint kinase 1 phosphorylation nevertheless conferred MMC hypersensitivity. To assess the interplay between the ATM and ATR pathways in responding to replication stress in vivo, we used Hus1/Atm double mutant mice. Whereas Hus1(neo/neo) and Atm(-/-) single mutant mice survived low-dose MMC similar to wild-type controls, Hus1(neo/neo)Atm(-/-) double mutants showed striking MMC hypersensitivity, consistent with a model in which MMC exposure in the context of Hus1 dysfunction results in DSBs to which the ATM pathway normally responds. This improved understanding of the inter-dependency between two major DDR mechanisms during the response to a conventional chemotherapeutic illustrates how inhibition of checkpoint factors such as HUS1 may be effective for the treatment of ATM-deficient and other cancers.
Insights
Partial HUS1 inactivation in mice causes hypersensitivity to replication stress, revealing an ATR-independent role for the 9-1-1 complex. This highlights the interdependency of ATM and ATR pathways in DNA damage response and cancer treatment strategies.
Area of Science:
- Cellular biology
- Molecular genetics
- Cancer research
Background:
- Cells possess a DNA damage response (DDR) network to maintain genomic integrity against genotoxins.
- ATM and ATR kinases are central to DDR, responding to double-strand breaks (DSBs) and replication stress, respectively.
- The RAD9A-RAD1-HUS1 (9-1-1) complex is crucial for ATR signaling, acting as a scaffold at damage sites.
Purpose of the Study:
- To investigate the in vivo, tissue-, and cell type-specific functions of HUS1-mediated DDR.
- To elucidate the interplay between ATM and ATR pathways in response to replication stress.
Main Methods:
- Utilized hypomorphic (Hus1(neo)) and null (Hus1(Δ1)) Hus1 alleles in mice.
- Administered replication stress agents like mitomycin C (MMC) and hydroxyurea.
- Analyzed tissue morphology, genomic instability, proliferation, and apoptosis.
- Generated and studied Hus1/Atm double mutant mice.
Main Results:
- Hus1(neo/Δ1) mice exhibited hypersensitivity to replication stress agents (MMC, hydroxyurea) but not ionizing radiation.
- MMC treatment severely damaged highly replicating tissues in partially HUS1-inactivated mice.
- The 9-1-1 complex's role in MMC response was partially ATR-independent.
- Hus1(neo/neo)Atm(-/-) double mutants showed striking MMC hypersensitivity, indicating ATM pathway involvement in response to MMC-induced DSBs in HUS1-dysfunctional cells.
Conclusions:
- Partial HUS1 impairment compromises the DDR, particularly in rapidly replicating tissues.
- The 9-1-1 complex contributes to ATR-independent and ATR-dependent DNA damage responses.
- Interactions between ATM and ATR are critical for managing replication stress.
- Targeting HUS1 could be a therapeutic strategy for ATM-deficient and other cancers.
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