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Updated: Sep 9, 2025

Evaluation of Substrate Ubiquitylation by E3 Ubiquitin-ligase in Mammalian Cell Lysates
Published on: May 10, 2022
FBXO9 mediated the ubiquitination and degradation of YAP in a GSK-3β-dependent manner
Yili Jin1, Xue Yun2, Jiatao Yao3
1Department of Urology, Affiliated Dongyang Hospital, Wenzhou Medical University, Dongyang, Zhejiang, China; Department of Biochemistry and Molecular Biology, School of Basic Medical Medicine, Health Science Center, Ningbo University, Ningbo, Zhejiang, China.
Abstract:
The Hippo signaling pathway effector YAP (Yes-associated protein) serves as a critical transcriptional regulator involved in a wide range of biological processes, including oncogenesis. Despite its potential as a therapeutic target, pharmacologically targeting the Hippo/YAP axis remains challenging, necessitating further exploration of the mechanisms governing YAP regulation. In this study, we identify the Cullin-RING E3 ligase complex SCF-FBXO9-CRL1 as a novel posttranslational regulator of YAP stability. Mechanistically, FBXO9 recognizes YAP through a conserved degron motif and facilitates its K48-linked polyubiquitination at lysine 76 (K76), thereby promoting proteasomal degradation. Notably, we demonstrate that phosphorylation of YAP at Ser338 and Thr342 by GSK-3β primes YAP for FBXO9 recognition, leading to subsequent ubiquitination. Furthermore, our analysis of the signaling cascade reveals that Akt kinase activity modulates this regulatory axis by influencing the phosphorylation status of GSK-3β. Pharmacological inhibition of Akt signaling leads to YAP degradation in a GSK-3β/FBXO9-dependent manner, significantly enhancing chemosensitivity in cancer models. These findings establish a previously unrecognized regulatory axis involving Akt, GSK-3β, FBXO9, and YAP that controls YAP protein turnover, providing a mechanistic basis for therapeutic strategies that combine Akt inhibitors with conventional chemotherapeutics. Our work advances the understanding of posttranslational YAP regulation and identifies several potential therapeutic targets for YAP-driven malignancies.
Insights
Researchers discovered a new way to control YAP protein levels using the Akt/GSK-3β/FBXO9 pathway. This finding offers new therapeutic strategies for cancers driven by Yes-associated protein (YAP).
Area of Science:
- Molecular Biology
- Cell Signaling
- Cancer Research
Background:
- Yes-associated protein (YAP) is a key regulator in the Hippo signaling pathway, influencing cell growth and oncogenesis.
- Targeting the Hippo/YAP axis for cancer therapy is challenging due to incomplete understanding of YAP regulation.
Purpose of the Study:
- To identify novel posttranslational regulators of YAP stability.
- To elucidate the molecular mechanisms controlling YAP protein turnover.
- To explore therapeutic strategies targeting the identified regulatory axis in cancer models.
Main Methods:
- Identification of the SCF-FBXO9-CRL1 E3 ligase complex as a YAP regulator.
- Investigation of YAP ubiquitination at K76 and subsequent proteasomal degradation.
- Analysis of the role of GSK-3β and Akt kinases in YAP phosphorylation and stability.
- Assessment of therapeutic potential using Akt inhibitors and cancer models.
Main Results:
- The SCF-FBXO9-CRL1 complex targets YAP for degradation via K48-linked polyubiquitination at K76.
- GSK-3β phosphorylation of YAP at Ser338/Thr342 primes it for FBXO9 recognition.
- Akt kinase activity modulates GSK-3β phosphorylation, influencing YAP stability.
- Akt inhibition promotes YAP degradation, enhancing chemosensitivity in cancer models.
Conclusions:
- A novel regulatory axis (Akt/GSK-3β/FBXO9/YAP) controlling YAP protein turnover has been identified.
- This axis provides a mechanistic basis for combining Akt inhibitors with chemotherapeutics.
- The study identifies potential therapeutic targets for YAP-driven malignancies.
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