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Updated: Jun 25, 2026

Real-Time Quantitative Measurement of Tumor Cell Migration and Invasion Following Synthetic mRNA Transfection
Published on: June 23, 2023
Downregulation of SPARC expression inhibits cell migration and invasion in malignant gliomas
Toshimoto Seno1, Hironobu Harada, Shohei Kohno
1Department of Neurosurgery, Ehime University School of Medicine, Shitsukawa, Toon, Ehime 791-0295, Japan. tseno@m.ehime-u.ac.jp
Abstract:
The secreted protein acidic and rich in cysteine (SPARC) is a secreted glycoprotein that plays an essential role in promoting the motility of invasive tumor cells. In the present study, we investigated the role of SPARC in the motile and invasive activities of human glioma cells by silencing the SPARC gene. Introduction of SPARC-targeted small interfering RNA (siRNA) into glioma cell lines resulted in downregulation of SPARC expression, and significantly suppressed glioma cell migration in vitro. Furthermore, invasiveness was significantly reduced in the cells transfected with SPARC siRNA compared with those transfected with control siRNA. In an organotypic brain slice model, co-culture of glioma spheroids and rat brain slices showed that SPARC siRNA-transfected glioma cells failed to invade the surrounding normal brain tissue. In addition, intracerebral injection of glioma cells transfected with SPARC siRNA in nude mice resulted in the formation of a non-invasive tumor, whereas injection of cells transfected with control siRNA resulted in diffuse invasive tumors. Since SPARC was exclusively expressed in the invasive zone of the tumor margin and the area surrounding tumor necrosis, we investigated the relationship between SPARC expression and hypoxic stress. SPARC expression was upregulated under hypoxic stress of 1% oxygen concentration in glioma cells. Silencing hypoxia-inducible factor-1alpha with siRNA reduced the overexpression of SPARC induced under hypoxic conditions. These results suggest that SPARC plays an essential role in the invasive activity of human glioma cells, under hypoxic conditions. Downregulation of SPARC may be a novel anti-invasion therapeutic strategy for malignant gliomas.
Insights
Secreted protein acidic and rich in cysteine (SPARC) drives glioma cell invasion. Silencing SPARC, particularly under hypoxic conditions, significantly reduced tumor cell motility and invasiveness in preclinical models.
Area of Science:
- Neuro-oncology
- Cancer Biology
- Molecular Medicine
Background:
- Secreted protein acidic and rich in cysteine (SPARC) is a matricellular glycoprotein implicated in tumor cell motility and invasion.
- Gliomas are primary malignant brain tumors characterized by significant invasiveness, necessitating novel therapeutic targets.
Purpose of the Study:
- To investigate the role of SPARC in the invasive and motile activities of human glioma cells.
- To explore the relationship between SPARC expression and hypoxic stress in glioma cells.
- To evaluate SPARC downregulation as a potential anti-invasion strategy for malignant gliomas.
Main Methods:
- SPARC gene silencing using small interfering RNA (siRNA) in human glioma cell lines.
- In vitro migration and invasion assays.
- Organotypic brain slice model and orthotopic xenograft models in nude mice.
- Analysis of SPARC expression under hypoxic conditions and regulation by hypoxia-inducible factor-1alpha (HIF-1α).
Main Results:
- SPARC siRNA significantly suppressed glioma cell migration and invasion in vitro.
- SPARC-silenced glioma cells demonstrated reduced invasiveness in brain slice and mouse models.
- SPARC expression was upregulated under hypoxia and its overexpression was dependent on HIF-1α.
- SPARC was localized to the invasive margin and necrotic areas of tumors.
Conclusions:
- SPARC plays a critical role in mediating glioma cell invasion, particularly under hypoxic conditions.
- Targeting SPARC represents a promising therapeutic strategy to inhibit malignant glioma invasion.
- HIF-1α-mediated upregulation of SPARC under hypoxia contributes to glioma aggressiveness.
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