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Updated: May 8, 2026

Intracranial Implantation with Subsequent 3D In Vivo Bioluminescent Imaging of Murine Gliomas
Published on: November 6, 2011
Engineered knottin peptide enables noninvasive optical imaging of intracranial medulloblastoma
Sarah J Moore1, Melanie G Hayden Gephart, Jamie M Bergen
1Department of Bioengineering, Stanford University, Stanford, CA 94305, USA.
Abstract:
Central nervous system tumors carry grave clinical prognoses due to limited effectiveness of surgical resection, radiation, and chemotherapy. Thus, improved strategies for brain tumor visualization and targeted treatment are critically needed. We demonstrate that mouse cerebellar medulloblastoma (MB) can be targeted and illuminated with a fluorescent, engineered cystine knot (knottin) peptide that binds with high affinity to αvβ3, αvβ5, and α5β1 integrin receptors. This integrin-binding knottin peptide, denoted EETI 2.5F, was evaluated as a molecular imaging probe in both orthotopic and genetic models of MB. Following tail vein injection, fluorescence arising from dye-conjugated EETI 2.5F was localized to the tumor compared with the normal surrounding brain tissue, as measured by optical imaging. The imaging signal intensity correlated with tumor volume. Due to its unique ability to bind to α5β1 integrin, EETI 2.5F showed superior in vivo and ex vivo brain tumor imaging contrast compared with other engineered integrin-binding knottin peptides and with c(RGDfK), a well-studied integrin-binding peptidomimetic. Next, EETI 2.5F was fused to an antibody fragment crystallizable (Fc) domain (EETI 2.5F-Fc) to determine if a larger integrin-binding protein could also target intracranial brain tumors. EETI 2.5F-Fc, conjugated to a fluorescent dye, illuminated MB following i.v. injection and was able to distribute throughout the tumor parenchyma. In contrast, brain tumor imaging signals were not detected in mice injected with EETI 2.5F proteins containing a scrambled integrin-binding sequence, demonstrating the importance of target specificity. These results highlight the potential of using EETI 2.5F and EETI 2.5-Fc as targeted molecular probes for brain tumor imaging.
Insights
Engineered knottin peptides, like EETI 2.5F, effectively target and illuminate brain tumors for improved imaging. These molecular probes show promise for enhanced visualization and potential treatment strategies for central nervous system tumors.
Area of Science:
- Biomedical Engineering
- Molecular Imaging
- Oncology
Background:
- Central nervous system tumors have poor prognoses due to limitations in current treatments.
- Improved methods for brain tumor visualization and targeted therapy are essential.
Purpose of the Study:
- To evaluate an engineered cystine knot (knottin) peptide, EETI 2.5F, as a molecular imaging probe for medulloblastoma (MB).
- To assess the potential of EETI 2.5F and its fusion protein EETI 2.5F-Fc for targeted brain tumor imaging.
Main Methods:
- Dye-conjugated EETI 2.5F was administered intravenously to mouse models of MB.
- Optical imaging was used to assess fluorescence localization and intensity in tumors.
- EETI 2.5F was fused to an Fc domain (EETI 2.5F-Fc) and evaluated similarly.
- Specificity was confirmed using scrambled sequence control proteins.
Main Results:
- Fluorescence from dye-conjugated EETI 2.5F localized to MB tumors, correlating with tumor volume.
- EETI 2.5F demonstrated superior tumor contrast compared to other knottin peptides and c(RGDfK).
- EETI 2.5F-Fc also successfully targeted and illuminated MB tumors.
- No signal was detected with scrambled sequence controls, confirming target specificity.
Conclusions:
- Engineered knottin peptide EETI 2.5F is a promising molecular probe for targeted brain tumor imaging.
- EETI 2.5F and EETI 2.5F-Fc show potential for improved visualization of central nervous system tumors.
- Target specificity is crucial for effective molecular imaging probes.

