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Updated: Feb 13, 2026

Zebrafish Model of Neuroblastoma Metastasis
Published on: March 14, 2021
Cross-Cohort Analysis Identifies a TEAD4-MYCN Positive Feedback Loop as the Core Regulatory Element of High-Risk
Presha Rajbhandari1,2, Gonzalo Lopez1,3, Claudia Capdevila1
1Department of Systems Biology, Columbia University, New York, New York.
Abstract:
High-risk neuroblastomas show a paucity of recurrent somatic mutations at diagnosis. As a result, the molecular basis for this aggressive phenotype remains elusive. Recent progress in regulatory network analysis helped us elucidate disease-driving mechanisms downstream of genomic alterations, including recurrent chromosomal alterations. Our analysis identified three molecular subtypes of high-risk neuroblastomas, consistent with chromosomal alterations, and identified subtype-specific master regulator proteins that were conserved across independent cohorts. A 10-protein transcriptional module-centered around a TEAD4-MYCN positive feedback loop-emerged as the regulatory driver of the high-risk subtype associated with MYCN amplification. Silencing of either gene collapsed MYCN-amplified (MYCNAmp) neuroblastoma transcriptional hallmarks and abrogated viability in vitro and in vivo Consistently, TEAD4 emerged as a robust prognostic marker of poor survival, with activity independent of the canonical Hippo pathway transcriptional coactivators YAP and TAZ. These results suggest novel therapeutic strategies for the large subset of MYCN-deregulated neuroblastomas.Significance: Despite progress in understanding of neuroblastoma genetics, little progress has been made toward personalized treatment. Here, we present a framework to determine the downstream effectors of the genetic alterations sustaining neuroblastoma subtypes, which can be easily extended to other tumor types. We show the critical effect of disrupting a 10-protein module centered around a YAP/TAZ-independent TEAD4-MYCN positive feedback loop in MYCNAmp neuroblastomas, nominating TEAD4 as a novel candidate for therapeutic intervention. Cancer Discov; 8(5); 582-99. ©2018 AACR.This article is highlighted in the In This Issue feature, p. 517.
Insights
High-risk neuroblastomas are driven by a TEAD4-MYCN feedback loop, not typical mutations. Targeting this module offers new therapeutic strategies for aggressive neuroblastoma. This discovery aids personalized treatment approaches.
Area of Science:
- Oncology
- Molecular Biology
- Systems Biology
Background:
- High-risk neuroblastomas lack recurrent somatic mutations, obscuring their aggressive nature.
- Understanding the molecular drivers of neuroblastoma subtypes is crucial for developing targeted therapies.
Purpose of the Study:
- To identify molecular subtypes and regulatory mechanisms driving high-risk neuroblastomas.
- To investigate the role of a TEAD4-MYCN feedback loop in MYCN-amplified neuroblastomas.
- To evaluate TEAD4 as a prognostic marker and therapeutic target.
Main Methods:
- Regulatory network analysis of genomic and transcriptomic data.
- Identification of master regulator proteins and transcriptional modules.
- In vitro and in vivo functional studies involving gene silencing.
- Prognostic analysis of TEAD4 expression.
Main Results:
- Three molecular subtypes of high-risk neuroblastomas were identified, linked to chromosomal alterations.
- A 10-protein module, centered on a TEAD4-MYCN positive feedback loop, drives the MYCN-amplified subtype.
- Silencing TEAD4 or MYCN impaired neuroblastoma cell viability and transcriptional hallmarks.
- TEAD4 is a prognostic marker for poor survival, independent of YAP/TAZ.
Conclusions:
- A YAP/TAZ-independent TEAD4-MYCN feedback loop is critical for MYCN-amplified neuroblastomas.
- TEAD4 represents a potential therapeutic target for a significant subset of neuroblastoma.
- This framework can be extended to analyze other cancer types.
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