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Updated: Feb 19, 2026

Three-Dimensional 3D Tumor Spheroid Invasion Assay
Published on: May 1, 2015
A Novel Signaling Complex between TROY and EGFR Mediates Glioblastoma Cell Invasion
Zonghui Ding1, Alison Roos2, Jean Kloss1
1Department of Biochemistry and Molecular Biology, Mayo Clinic Arizona, Scottsdale, Arizona.
Abstract:
Glioblastoma is the most frequent primary brain tumor in adults and a highly lethal malignancy with a median survival of about 15 months. The aggressive invasion of the surrounding normal brain makes complete surgical resection impossible, increases the resistance to radiation and chemotherapy, and assures tumor recurrence. Thus, there is an urgent need to develop innovative therapeutics to target the invasive tumor cells for improved treatment outcomes of this disease. Expression of TROY (TNFRSF19), a member of the tumor necrosis factor (TNF) receptor family, increases with increasing glial tumor grade and inversely correlates with patient survival. Increased expression of TROY stimulates glioblastoma cell invasion in vitro and in vivo and increases resistance to temozolomide and radiation therapy. Conversely, silencing TROY expression inhibits glioblastoma cell invasion, increases temozolomide sensitivity, and prolongs survival in an intracranial xenograft model. Here, a novel complex is identified between TROY and EGFR, which is mediated predominantly by the cysteine-rich CRD3 domain of TROY. Glioblastoma tumors with elevated TROY expression have a statistically positive correlation with increased EGFR expression. TROY expression significantly increases the capacity of EGF to stimulate glioblastoma cell invasion, whereas depletion of TROY expression blocks EGF stimulation of glioblastoma cell invasion. Mechanistically, TROY expression modulates EGFR signaling by facilitating EGFR activation and delaying EGFR receptor internalization. Moreover, the association of EGFR with TROY increases TROY-induced NF-κB activation. These findings substantiate a critical role for the TROY-EGFR complex in regulation of glioblastoma cell invasion.Implications: The TROY-EGFR signaling complex emerges as a potential therapeutic target to inhibit glioblastoma cell invasion. Mol Cancer Res; 16(2); 322-32. ©2017 AACR.
Insights
Targeting the TROY-EGFR complex may inhibit glioblastoma cell invasion. This study identified a novel TROY-EGFR signaling complex that promotes glioblastoma (GBM) invasion and resistance to therapy.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Research
Background:
- Glioblastoma (GBM) is an aggressive brain tumor with poor prognosis.
- Tumor invasion, therapeutic resistance, and recurrence are major challenges in GBM treatment.
- TROY (TNFRSF19) expression correlates with higher tumor grade and poorer survival in GBM patients.
Purpose of the Study:
- To investigate the role of TROY in glioblastoma invasion and therapeutic resistance.
- To identify molecular mechanisms underlying TROY-mediated glioblastoma cell invasion.
- To explore the TROY-EGFR signaling complex as a potential therapeutic target.
Main Methods:
- Analysis of TROY expression in glioblastoma tissues.
- In vitro and in vivo studies of glioblastoma cell invasion.
- Molecular assays to investigate TROY-EGFR interactions and signaling pathways.
- Evaluation of TROY silencing effects on tumor growth and survival in xenograft models.
Main Results:
- TROY expression is upregulated in high-grade glioblastomas and associated with poor patient survival.
- TROY promotes glioblastoma cell invasion and resistance to temozolomide and radiation.
- A novel complex between TROY and EGFR (Epidermal Growth Factor Receptor) was identified, mediated by TROY's CRD3 domain.
- TROY enhances EGF-stimulated glioblastoma cell invasion by facilitating EGFR activation and delaying receptor internalization.
- The TROY-EGFR complex potentiates TROY-induced NF-κB activation.
Conclusions:
- The TROY-EGFR signaling complex plays a critical role in regulating glioblastoma cell invasion.
- Targeting the TROY-EGFR interaction presents a promising therapeutic strategy to inhibit glioblastoma progression.
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