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Golgi Phosphoprotein 3 Confers Radioresistance via Stabilizing EGFR in Lung Adenocarcinoma
Guodong Chen1, Peizhong Kong1, Miaomiao Yang2
1Anhui Province Key Laboratory of Medical Physics and Technology, Institute of Health and Medical Technology, Hefei Institutes of Physical Science, Chinese Academy of Sciences, Hefei, PR China; Hefei Cancer Hospital, Chinese Academy of Sciences, Hefei, PR China.
Purpose:
Radioresistance is a major cause of treatment failure in tumor radiation therapy, and the underlying mechanisms of radioresistance are still elusive. Golgi phosphoprotein 3 (GOLPH3) has been reported to associate tightly with cancer progression and chemoresistance. Herein, we explored whether GOLPH3 mediated radioresistance of lung adenocarcinoma (LUAD) and whether targeted suppression of GOLPH3 sensitized LUAD to radiation therapy.
Methods And Materials:
The aberrant expression of GOLPH3 was evaluated by immunohistochemistry in LUAD clinical samples. To evaluate the association between GOLPH3 and radioresistance, colony formation and apoptosis were assessed in control and GOLPH3 knockdown cells. γ-H2AX foci and level determination and micronucleus test were used to analyze DNA damage production and repair. The rescue of GOLPH3 knockdown was then performed by exogenous expression of small interfering RNA-resistant mutant GOLPH3 to confirm the role of GOLPH3 in DNA damage repair. Mechanistically, the effect of GOLPH3 on regulating stability and nuclear accumulation of epidermal growth factor receptor (EGFR) and the activation of DNA-dependent protein kinase (DNA-PK) were investigated by quantitative real-time polymerase chain reaction, western blot, immunofluorescence, and coimmunoprecipitation. The role of GOLPH3 in vivo in radioresistance was determined in a xenograft model.
Results:
In tumor tissues of 33 patients with LUAD, the expression of GOLPH3 showed significant increases compared with those in matched normal tissues. Knocking down GOLPH3 reduced the clonogenic capacity, impaired double-strand break (DSB) repair, and enhanced apoptosis after irradiation. In contrast, reversal of GOLPH3 depletion rescued the impaired repair of radiation-induced DSBs. Mechanistically, loss of GOLPH3 accelerated the degradation of EGFR in lysosome, causing the reduction in EGFR levels, thereby weakening nuclear accumulation of EGFR and attenuating the activation of DNA-PK. Furthermore, adenovirus-mediated GOLPH3 knockdown could enhance the ionizing radiation response in the LUAD xenograft model.
Conclusions:
GOLPH3 conferred resistance of LUAD to ionizing radiation via stabilizing EGFR, and targeted suppression of GOLPH3 might be considered as a potential therapeutic strategy for sensitizing LUAD to radiation therapy.
Insights
Golgi phosphoprotein 3 (GOLPH3) promotes lung adenocarcinoma radioresistance by stabilizing epidermal growth factor receptor (EGFR). Suppressing GOLPH3 may sensitize lung adenocarcinoma to radiation therapy.
Area of Science:
- Oncology
- Molecular Biology
- Radiation Oncology
Background:
- Radioresistance is a significant challenge in lung adenocarcinoma (LUAD) treatment, leading to therapy failure.
- The molecular mechanisms underlying radioresistance remain largely unknown.
- Golgi phosphoprotein 3 (GOLPH3) is implicated in cancer progression and chemoresistance.
Purpose of the Study:
- To investigate the role of GOLPH3 in mediating radioresistance in LUAD.
- To determine if targeting GOLPH3 can sensitize LUAD to radiation therapy.
Main Methods:
- Immunohistochemistry to assess GOLPH3 expression in LUAD tissues.
- In vitro assays (colony formation, apoptosis, DNA damage assessment) in GOLPH3 knockdown cells.
- Rescue experiments with mutant GOLPH3.
- Molecular analyses of EGFR stability, nuclear translocation, and DNA-PK activation.
- In vivo xenograft model to evaluate GOLPH3's role in radioresistance.
Main Results:
- GOLPH3 expression was significantly elevated in LUAD tissues.
- GOLPH3 knockdown reduced clonogenic survival, impaired DNA double-strand break (DSB) repair, and increased apoptosis post-irradiation.
- GOLPH3 depletion led to accelerated EGFR degradation, reduced EGFR nuclear accumulation, and attenuated DNA-dependent protein kinase (DNA-PK) activation.
- GOLPH3 knockdown enhanced the response to ionizing radiation in a LUAD xenograft model.
Conclusions:
- GOLPH3 confers radioresistance in LUAD by stabilizing EGFR, thereby influencing DNA repair pathways.
- Targeting GOLPH3 presents a potential therapeutic strategy to enhance LUAD sensitivity to radiation therapy.
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