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Updated: Jan 10, 2026
Disorders of Erythrocytes
SMAD4-dependent barrier constrains prostate cancer growth and metastatic progression
Zhihu Ding1, Chang-Jiun Wu, Gerald C Chu
1Belfer Institute for Applied Cancer Science, Dana-Farber Cancer Institute, Boston, Massachusetts 02115, USA.
Abstract:
Effective clinical management of prostate cancer (PCA) has been challenged by significant intratumoural heterogeneity on the genomic and pathological levels and limited understanding of the genetic elements governing disease progression. Here, we exploited the experimental merits of the mouse to test the hypothesis that pathways constraining progression might be activated in indolent Pten-null mouse prostate tumours and that inactivation of such progression barriers in mice would engender a metastasis-prone condition. Comparative transcriptomic and canonical pathway analyses, followed by biochemical confirmation, of normal prostate epithelium versus poorly progressive Pten-null prostate cancers revealed robust activation of the TGFβ/BMP-SMAD4 signalling axis. The functional relevance of SMAD4 was further supported by emergence of invasive, metastatic and lethal prostate cancers with 100% penetrance upon genetic deletion of Smad4 in the Pten-null mouse prostate. Pathological and molecular analysis as well as transcriptomic knowledge-based pathway profiling of emerging tumours identified cell proliferation and invasion as two cardinal tumour biological features in the metastatic Smad4/Pten-null PCA model. Follow-on pathological and functional assessment confirmed cyclin D1 and SPP1 as key mediators of these biological processes, which together with PTEN and SMAD4, form a four-gene signature that is prognostic of prostate-specific antigen (PSA) biochemical recurrence and lethal metastasis in human PCA. This model-informed progression analysis, together with genetic, functional and translational studies, establishes SMAD4 as a key regulator of PCA progression in mice and humans.
Insights
Inactivating SMAD4 in mouse prostate tumors accelerates progression and metastasis. A four-gene signature including PTEN and SMAD4 predicts recurrence and lethal metastasis in human prostate cancer.
Area of Science:
- Oncology
- Genetics
- Molecular Biology
Background:
- Prostate cancer (PCA) management is hindered by heterogeneity and poor understanding of progression drivers.
- Mouse models are crucial for investigating genetic elements governing PCA progression.
Purpose of the Study:
- To test if pathways constraining progression are activated in indolent Pten-null mouse prostate tumors.
- To determine if inactivating progression barriers in mice leads to metastasis.
Main Methods:
- Comparative transcriptomic and pathway analyses of normal vs. Pten-null prostate epithelium.
- Genetic deletion of Smad4 in Pten-null mice.
- Pathological, molecular, and transcriptomic profiling of emerging tumors.
Main Results:
- Pten-null prostate cancers showed robust activation of the TGFβ/BMP-SMAD4 signaling axis.
- Genetic deletion of Smad4 in Pten-null mice led to invasive, metastatic, and lethal PCA with 100% penetrance.
- Cell proliferation and invasion were identified as key features in the metastatic Smad4/Pten-null PCA model, mediated by cyclin D1 and SPP1.
Conclusions:
- SMAD4 is a key regulator of PCA progression in mice and humans.
- A four-gene signature (PTEN, SMAD4, cyclin D1, SPP1) is prognostic for PSA recurrence and lethal metastasis in human PCA.
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