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Updated: Jun 23, 2025

A Syngeneic Orthotopic Osteosarcoma Sprague Dawley Rat Model with Amputation to Control Metastasis Rate
Published on: May 3, 2021
PRKDC Induces Chemoresistance in Osteosarcoma by Recruiting GDE2 to Stabilize GNAS and Activate AKT
Wenchao Zhang1,2, Wei Li3, Chi Yin1,2
1Department of Orthopedics, The Second Xiangya Hospital, Central South University, Changsha, China.
Abstract:
Chemoresistance is one of the major causes of poor prognosis in osteosarcoma. Alternative therapeutic strategies for osteosarcoma are limited, indicating that increasing sensitivity to currently used chemotherapies could be an effective approach to improve patient outcomes. Using a kinome-wide CRISPR screen, we identified PRKDC as a critical determinant of doxorubicin (DOX) sensitivity in osteosarcoma. The analysis of clinical samples demonstrated that PRKDC was hyperactivated in osteosarcoma, and functional experiments showed that the loss of PRKDC significantly increased sensitivity of osteosarcoma to DOX. Mechanistically, PRKDC recruited and bound GDE2 to enhance the stability of protein GNAS. The elevated GNAS protein levels subsequently activated AKT phosphorylation and conferred resistance to DOX. The PRKDC inhibitor AZD7648 and DOX synergized and strongly suppressed the growth of osteosarcoma in mouse xenograft models and human organoids. In conclusion, the PRKDC-GDE2-GNAS-AKT regulatory axis suppresses DOX sensitivity and comprises targetable candidates for improving the efficacy of chemotherapy in osteosarcoma. Significance: Targeting PRKDC suppresses AKT activation and increases sensitivity to doxorubicin in osteosarcoma, which provides a therapeutic strategy for overcoming chemoresistance.
Insights
Chemoresistance in osteosarcoma can be overcome by targeting PRKDC. Inhibiting PRKDC increases sensitivity to doxorubicin chemotherapy, offering a new therapeutic strategy for osteosarcoma patients.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Chemoresistance significantly worsens osteosarcoma prognosis.
- Developing new therapeutic strategies for osteosarcoma is crucial.
Purpose of the Study:
- To identify novel targets for overcoming doxorubicin resistance in osteosarcoma.
- To investigate the role of PRKDC in chemoresistance.
Main Methods:
- Kinome-wide CRISPR screen to identify drug sensitivity determinants.
- Analysis of clinical osteosarcoma samples.
- Functional experiments and mechanistic studies.
- In vivo (mouse xenograft) and in vitro (human organoid) models.
Main Results:
- PRKDC was identified as a key regulator of doxorubicin sensitivity.
- PRKDC is hyperactivated in osteosarcoma and confers doxorubicin resistance.
- PRKDC promotes GNAS stability via GDE2, leading to AKT activation.
- Combined inhibition of PRKDC (AZD7648) and doxorubicin suppressed tumor growth.
Conclusions:
- The PRKDC-GDE2-GNAS-AKT pathway is a critical mechanism of doxorubicin resistance in osteosarcoma.
- Targeting PRKDC offers a promising strategy to enhance chemotherapy efficacy.
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