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Updated: Apr 5, 2026

An Orthotopic Murine Model of Human Prostate Cancer Metastasis
Published on: September 18, 2013
Androgen-Regulated SPARCL1 in the Tumor Microenvironment Inhibits Metastatic Progression
Paula J Hurley1, Robert M Hughes2, Brian W Simons3
1The James Buchanan Brady Urological Institute, Department of Urology, Johns Hopkins University, Baltimore, Maryland. The Department of Oncology, Johns Hopkins University, Baltimore, Maryland. The Sidney Kimmel Cancer Center, Johns Hopkins University, Baltimore, Maryland. phurley2@jhmi.edu.
Abstract:
Prostate cancer is a leading cause of cancer death in men due to the subset of cancers that progress to metastasis. Prostate cancers are thought to be hardwired to androgen receptor (AR) signaling, but AR-regulated changes in the prostate that facilitate metastasis remain poorly understood. We previously noted a marked reduction in secreted protein, acidic and rich in cysteine-like 1 (SPARCL1) expression during invasive phases of androgen-induced prostate growth, suggesting that this may be a novel invasive program governed by AR. Herein, we show that SPARCL1 loss occurs concurrently with AR amplification or overexpression in patient-based data. Mechanistically, we demonstrate that SPARCL1 expression is directly suppressed by androgen-induced AR activation and binding at the SPARCL1 locus via an epigenetic mechanism, and these events can be pharmacologically attenuated with either AR antagonists or HDAC inhibitors. We establish using the Hi-Myc model of prostate cancer that in Hi-Myc/Sparcl1(-/-) mice, SPARCL1 functions to suppress cancer formation. Moreover, metastatic progression of Myc-CaP orthotopic allografts is restricted by SPARCL1 in the tumor microenvironment. Specifically, we show that SPARCL1 both tethers to collagen in the extracellular matrix (ECM) and binds to the cell's cytoskeleton. SPARCL1 directly inhibits the assembly of focal adhesions, thereby constraining the transmission of cell traction forces. Our findings establish a new insight into AR-regulated prostate epithelial movement and provide a novel framework whereby SPARCL1 in the ECM microenvironment restricts tumor progression by regulating the initiation of the network of physical forces that may be required for metastatic invasion of prostate cancer.
Insights
Loss of SPARCL1 protein, regulated by androgen receptor (AR) signaling, promotes prostate cancer metastasis. Restoring SPARCL1 in the tumor microenvironment may inhibit cancer progression and invasion.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Metastasis
Background:
- Prostate cancer metastasis is a major cause of mortality.
- Androgen receptor (AR) signaling drives prostate cancer, but its role in metastasis is unclear.
- Reduced secreted protein, acidic and rich in cysteine-like 1 (SPARCL1) expression correlates with invasive prostate cancer.
Purpose of the Study:
- Investigate the mechanism of SPARCL1 regulation by AR in prostate cancer.
- Determine the role of SPARCL1 in prostate cancer formation and metastasis.
- Elucidate how SPARCL1 restricts tumor cell movement and invasion.
Main Methods:
- Analysis of patient data for SPARCL1 and AR expression.
- Epigenetic analysis of SPARCL1 locus regulation by AR.
- Pharmacological inhibition of AR and epigenetic modifiers.
- Prostate cancer mouse models (Hi-Myc, Myc-CaP orthotopic allografts).
- Biochemical assays for SPARCL1 interaction with extracellular matrix (ECM) and cytoskeleton.
Main Results:
- SPARCL1 loss is associated with AR amplification/overexpression in patients.
- Androgen-induced AR activation epigenetically suppresses SPARCL1 expression.
- SPARCL1 deficiency accelerates prostate cancer formation and metastasis in mice.
- SPARCL1 tethers to collagen in the ECM and cytoskeleton, inhibiting focal adhesion assembly.
- SPARCL1 constrains cell traction forces, limiting prostate cancer cell invasion.
Conclusions:
- AR signaling directly suppresses SPARCL1 expression via epigenetic mechanisms.
- SPARCL1 acts as a tumor suppressor by limiting prostate cancer cell motility.
- SPARCL1's interaction with the ECM and cytoskeleton provides a novel mechanism to restrict metastatic invasion.
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