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Updated: Jan 27, 2026

Observation and Analysis of Blinking Surface-enhanced Raman Scattering
Published on: January 11, 2018
Surface-Enhanced Resonance Raman Scattering-Guided Brain Tumor Surgery Showing Prognostic Benefit in Rat Models
Limei Han1, Wenjia Duan1, Xinwei Li1
1Minhang Hospital and Key Laboratory of Smart Drug Delivery, Ministry of Education, School of Pharmacy , Fudan University , Shanghai 201203 , China.
Abstract:
Glioma is the most frequent form of malignant brain tumors. Surgical debulking is a major strategy for glioma treatment. However, there is a great challenge for the neurosurgeons to intraoperatively identify the true margins of glioma because of its infiltrative nature. Tumor residues or microscopic satellite foci left in the resection bed are the main reasons leading to early recurrence as well as poor prognosis. In this study, a surface-enhanced resonance Raman scattering (SERRS) probe was developed to intraoperatively guide glioma resection. In this probe, molecular reporters with absorptive maxima at the near-infrared wavelength range were covalently functionalized on the surface of gold nanostars. This SERRS probe demonstrated an ultrahigh sensitivity with a detection limit of 5.0 pM in aqueous solution. By the development of glioma xenografts in a mouse dorsal skin window chamber, extravasation of this probe from leaky tumor vasculature as functions of time and distance to tumor boundary was investigated. Importantly, the invasive margin of the tumor xenograft was demarcated by this probe with a high signal-to-background ratio. Preoperative magnetic resonance imaging (MRI) first defined the position of orthotopic glioma xenografts in the brain of rat models, and the craniotomy plan was designed. The brain tumor was then excised intraoperatively step-by-step with the assistance of a handheld Raman scanner till the Raman signals of the probe completely disappeared in the resection bed. Notably, longitudinal MRI showed that SERRS-guided surgery significantly reduced the tumor recurrence rate and improved the overall survival of rat models compared with the white light-guided surgery. Overall, this work demonstrates the prognostic benefit of SERRS-guided glioma surgery in animal models. Because delineation of tumor-invasive margins is a common challenge faced by the surgeons, this SERRS probe with a picomolar detection limit holds the promise in improving the surgical outcome of different types of infiltrated tumors.
Insights
A novel surface-enhanced resonance Raman scattering (SERRS) probe accurately identified glioma margins during surgery. This advanced SERRS probe significantly reduced tumor recurrence and improved survival rates in animal models, offering a promising tool for neurosurgery.
Area of Science:
- Biomedical Engineering
- Oncology
- Nanotechnology
Background:
- Glioma, a frequent malignant brain tumor, presents challenges in surgical resection due to its infiltrative nature.
- Incomplete tumor removal, leaving residual cells, is a primary cause of early recurrence and poor prognosis.
- Accurate intraoperative identification of glioma margins is crucial for improving surgical outcomes.
Purpose of the Study:
- To develop and evaluate a surface-enhanced resonance Raman scattering (SERRS) probe for intraoperative guidance in glioma surgery.
- To assess the probe's sensitivity, specificity, and efficacy in demarcating tumor margins in preclinical models.
- To investigate the potential of SERRS-guided surgery to reduce tumor recurrence and improve survival.
Main Methods:
- A SERRS probe was engineered by functionalizing gold nanostars with molecular reporters for near-infrared absorption.
- The probe's sensitivity was determined, and its extravasation into glioma xenografts was studied in vivo.
- Orthotopic glioma models in rats underwent surgery guided by the SERRS probe and a handheld Raman scanner, with outcomes compared to white light-guided surgery.
Main Results:
- The SERRS probe exhibited ultrahigh sensitivity with a detection limit of 5.0 pM.
- The probe successfully demarcated the invasive margin of glioma xenografts with a high signal-to-background ratio.
- SERRS-guided surgery significantly reduced tumor recurrence and improved overall survival in rat models compared to conventional surgery.
Conclusions:
- The developed SERRS probe is a highly sensitive tool for intraoperative glioma margin delineation.
- SERRS-guided surgery demonstrates significant prognostic benefits in preclinical models by improving tumor resection completeness.
- This SERRS probe holds promise for enhancing surgical outcomes in various infiltrative tumor types.
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