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Published on: March 25, 2019
Non-invasive In Vivo Imaging of Cancer Using Surface-Enhanced Spatially Offset Raman Spectroscopy (SESORS)
Fay Nicolson1, Bohdan Andreiuk1, Chrysafis Andreou2
1Department of Radiology, Memorial Sloan Kettering Cancer Center, New York, New York 10065, United States.
Abstract:
Rationale: The goal of imaging tumors at depth with high sensitivity and specificity represents a significant challenge in the field of biomedical optical imaging. 'Surface enhanced Raman scattering' (SERS) nanoparticles (NPs) have been employed as image contrast agents and can be used to specifically target cells in vivo. By tracking their unique "fingerprint" spectra, it becomes possible to determine their precise location. However, while the detection of SERS NPs is very sensitive and specific, conventional Raman spectroscopy imaging devices are limited in their inability to probe through tissue depths of more than a few millimetres, due to scattering and absorption of photons by biological tissues. Here, we combine the use of "Spatially Offset Raman spectroscopy" (SORS) with that of "surface-enhanced resonance Raman spectroscopy" (SERRS) in a technique known as "surface enhanced spatially offset resonance Raman spectroscopy" (SESO(R)RS) to image deep-seated glioblastoma multiforme (GBM) tumors in vivo in mice through the intact skull. Methods: A SORS imaging system was built in-house. Proof of concept SORS imaging was achieved using a PTFE-skull-tissue phantom. Imaging of GBMs in the RCAS-PDGF/N-tva transgenic mouse model was achieved through the use of gold nanostars functionalized with a resonant Raman reporter to create SERRS nanostars. These were then encapsulated in a thin silica shell and functionalized with a cyclic-RGDyK peptide to yield integrin-targeting SERRS nanostars. Non-invasive in vivo SORS image acquisition of the integrin-targeted nanostars was then performed in living mice under general anesthesia. Conventional non-SORS imaging was used as a direct comparison. Results: Using a low power density laser, GBMs were imaged via SESORRS in mice (n = 5) and confirmed using MRI and histopathology. The results demonstrate that via utilization of the SORS approach, it is possible to acquire clear and distinct Raman spectra from deep-seated GBMs in mice in vivo through the skull. SESORRS images generated using classical least squares outlined the tumors with high precision as confirmed via MRI and histology. Unlike SESORRS, conventional Raman imaging of the same areas did not provide a clear delineation of the tumor. Conclusion: To the best of our knowledge this is the first report of in vivo SESO(R)RS imaging. In a relevant brain tumor mouse model we demonstrate that this technique can overcome the limitations of conventional Raman imaging with regards to penetration depth. This work therefore represents a significant step forward in the potential clinical translation of SERRS nanoparticles for high precision cancer imaging.
Insights
Surface enhanced spatially offset resonance Raman spectroscopy (SESORRS) allows deep brain tumor imaging in mice. This novel technique overcomes conventional Raman imaging
Area of Science:
- Biomedical optical imaging
- Molecular spectroscopy
- Nanotechnology
Background:
- Deep tumor imaging is challenging due to light scattering and absorption.
- Surface-enhanced Raman scattering (SERS) nanoparticles offer sensitive and specific contrast but are limited by penetration depth.
- Conventional Raman spectroscopy struggles to image through several millimeters of tissue.
Purpose of the Study:
- To develop and demonstrate a novel technique, surface enhanced spatially offset resonance Raman spectroscopy (SESORRS), for deep-seated glioblastoma multiforme (GBM) imaging in vivo.
- To overcome the penetration depth limitations of conventional Raman imaging.
- To assess the potential of SESORRS for precise, non-invasive cancer imaging.
Main Methods:
- A custom-built Spatially Offset Raman Spectroscopy (SORS) imaging system was utilized.
- Gold nanostars functionalized for SERRS, encapsulated in silica, and targeted with cyclic-RGDyK peptides were used as contrast agents.
- SESORRS imaging was performed on GBM-bearing mice through the intact skull, with conventional Raman imaging used for comparison.
Main Results:
- SESORRS successfully imaged deep-seated GBMs in mice through the skull with high precision, confirmed by MRI and histopathology.
- Clear and distinct Raman spectra were acquired from tumors, enabling precise delineation.
- Conventional Raman imaging failed to provide clear tumor delineation, highlighting the advantage of SESORRS.
Conclusions:
- This study reports the first in vivo application of SESORRS for brain tumor imaging.
- SESORRS effectively overcomes the depth limitations of conventional Raman imaging in a relevant preclinical model.
- The technique shows significant promise for clinical translation in high-precision cancer imaging.

