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Prolyl isomerization of FAAP20 catalyzed by PIN1 regulates the Fanconi anemia pathway
Jingming Wang1, Bryan Chan1, Michael Tong1
1Department of Pharmacological Sciences, Stony Brook University, Stony Brook, New York, United States of America.
Abstract:
The Fanconi Anemia (FA) pathway is a multi-step DNA repair process at stalled replication forks in response to DNA interstrand cross-links (ICLs). Pathological mutation of key FA genes leads to the inherited disorder FA, characterized by progressive bone marrow failure and cancer predisposition. The study of FA is of great importance not only to children suffering from FA but also as a model to study cancer pathogenesis in light of genome instability among the general population. FANCD2 monoubiquitination by the FA core complex is an essential gateway that connects upstream DNA damage signaling to enzymatic steps of repair. FAAP20 is a key component of the FA core complex, and regulated proteolysis of FAAP20 mediated by the ubiquitin E3 ligase SCFFBW7 is critical for maintaining the integrity of the FA complex and FA pathway signaling. However, upstream regulatory mechanisms that govern this signaling remain unclear. Here, we show that PIN1, a phosphorylation-specific prolyl isomerase, regulates the integrity of the FA core complex, thus FA pathway activation. We demonstrate that PIN1 catalyzes cis-trans isomerization of the FAAP20 pSer48-Pro49 motif and promotes FAAP20 stability. Mechanistically, PIN1-induced conformational change of FAAP20 enhances its interaction with the PP2A phosphatase to counteract SCFFBW7-dependent proteolytic signaling at the phosphorylated degron motif. Accordingly, PIN1 deficiency impairs FANCD2 activation and the DNA ICL repair process. Together, our study establishes PIN1-dependent prolyl isomerization as a new regulator of the FA pathway and genomic integrity.
Insights
PIN1 stabilizes the Fanconi Anemia (FA) core complex protein FAAP20 through prolyl isomerization, enhancing DNA repair signaling. This discovery reveals PIN1 as a crucial regulator of genomic integrity and the FA pathway.
Area of Science:
- Molecular Biology
- Genetics
- Biochemistry
Background:
- The Fanconi Anemia (FA) pathway is crucial for repairing DNA interstrand cross-links (ICLs) and maintaining genomic stability.
- Dysfunctional FA pathway due to gene mutations causes FA, leading to bone marrow failure and cancer.
- FAAP20 proteolysis by SCFFBW7 is vital for FA pathway signaling, but upstream regulators are unknown.
Purpose of the Study:
- To investigate upstream regulatory mechanisms controlling the FA core complex integrity and FA pathway activation.
- To elucidate the role of PIN1, a phosphorylation-specific prolyl isomerase, in the FA pathway.
Main Methods:
- Investigated the interaction between PIN1 and FAAP20.
- Analyzed the effect of PIN1 on FAAP20 stability and FA core complex integrity.
- Assessed the impact of PIN1 deficiency on FANCD2 activation and DNA ICL repair.
Main Results:
- PIN1 catalyzes cis-trans isomerization of FAAP20 at the pSer48-Pro49 motif, stabilizing the protein.
- PIN1 promotes FAAP20 interaction with PP2A phosphatase, counteracting SCFFBW7-mediated degradation.
- PIN1 deficiency impairs FANCD2 monoubiquitination and DNA ICL repair.
Conclusions:
- PIN1 is a novel regulator of the FA pathway, controlling FA core complex integrity via prolyl isomerization of FAAP20.
- PIN1-dependent regulation is critical for maintaining genomic integrity and FA pathway function.
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