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Updated: May 10, 2025

Author Spotlight: Multimodal Imaging Strategies for Optimizing Drug Delivery and Early Detection in Glioblastoma Treatment
Published on: March 1, 2024
Dual-enzyme activated theranostic nanoparticles for image-guided glioblastoma therapy
Zahra Shokri Varniab1, Edwin Chang1,2, Jie Wang1
1Department of Radiology, Molecular Imaging Program at Stanford (MIPS), Stanford University, 725 Welch Rd, Stanford, CA, 94305-5614, USA.
Abstract:
Matrix metalloproteinase-14 (MMP-14) and Cathepsin-B (Cat-B) are overexpressed in glioblastoma (GBM) and not normal brain, making them promising targets for prodrug activation. We investigated a novel combination therapy using two tumor-enzyme activatable theranostic nanoprobes (TNP): TNP-MMP-14, which disrupts the blood tumor barrier via MMP-14 activation, and TNP-Cat-B, which selectively targets GBM cells through Cat-B activation. We hypothesized that combining TNP-MMP-14 and TNP-Cat-B would enhance TNP tumor accumulation and therapeutic efficacy compared to TNP-Cat-B monotherapy. Thirty NSG mice with luciferase-expressing GBM39 tumors received either TNP-MMP-14 plus TNP-Cat-B, TNP-Cat-B only, or saline. Magnetic resonance imaging (MRI) was conducted pre- and post-treatment, with T2* relaxation times analyzed using a generalized linear model. Histopathological differences were assessed using Kruskal-Wallis and Mann-Whitney tests. A Bonferroni correction was applied to account for multiple comparisons. Combination therapy significantly reduced tumor T2* relaxation times (12.98 ± 4.20 ms) compared to TNP-Cat-B monotherapy (22.49 ± 3.95 ms, p < 0.001). The apoptotic marker caspase-3 was also significantly higher in the combination group (64.46 ± 23.43 vs. 15.93 ± 5.81, p < 0.001). These findings demonstrate the potential of dual-enzyme activatable nanoparticles to enhance GBM treatment by overcoming drug delivery barriers and improving therapeutic efficacy over monotherapy.
Insights
Combination therapy using dual-enzyme activatable nanoprobes significantly enhanced glioblastoma (GBM) treatment by improving tumor accumulation and efficacy. This novel approach overcomes drug delivery barriers, outperforming monotherapy for improved therapeutic outcomes in GBM.
Area of Science:
- Oncology
- Nanomedicine
- Biochemistry
Background:
- Matrix metalloproteinase-14 (MMP-14) and Cathepsin-B (Cat-B) are overexpressed in glioblastoma (GBM), presenting therapeutic targets.
- Current therapies face challenges due to the blood-tumor barrier and selective GBM cell targeting.
Purpose of the Study:
- To investigate a novel combination therapy using two tumor-enzyme activatable theranostic nanoprobes (TNP): TNP-MMP-14 and TNP-Cat-B.
- To evaluate if combining TNP-MMP-14 and TNP-Cat-B enhances TNP tumor accumulation and therapeutic efficacy compared to TNP-Cat-B monotherapy.
Main Methods:
- Thirty NSG mice with luciferase-expressing GBM39 tumors were treated with either combination therapy, TNP-Cat-B monotherapy, or saline.
- Magnetic resonance imaging (MRI) assessed tumor changes via T2* relaxation times.
- Histopathological analysis evaluated apoptotic markers, including caspase-3.
Main Results:
- Combination therapy significantly reduced tumor T2* relaxation times (12.98 ± 4.20 ms) compared to TNP-Cat-B monotherapy (22.49 ± 3.95 ms, p < 0.001).
- The apoptotic marker caspase-3 was significantly higher in the combination group (64.46 ± 23.43) versus monotherapy (15.93 ± 5.81, p < 0.001).
Conclusions:
- Dual-enzyme activatable nanoparticles show potential for enhanced GBM treatment.
- This combination strategy effectively overcomes drug delivery barriers and improves therapeutic efficacy over monotherapy.
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