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Nose-to-brain co-delivery of drugs for glioblastoma treatment using nanostructured system
Natália N Ferreira1, Edilson de Oliveira Junior2, Sara Granja3
1School of Pharmaceutical Science, São Paulo State University, UNESP, Rodovia Araraquara/Jaú Km 01, Araraquara, São Paulo, Brazil.
Abstract:
Mutations on the epidermal growth factor receptor (EGFR), induction of angiogenesis, and reprogramming cellular energetics are all biological features acquired by tumor cells during tumor development, and also known as the hallmarks of cancer. Targeted therapies that combine drugs that are capable of acting against such concepts are of great interest, since they can potentially improve the therapeutic efficacy of treatments of complex pathologies, such as glioblastoma (GBM). However, the anatomical location and biological behavior of this neoplasm imposes great challenges for targeted therapies. A novel strategy that combines alpha-cyano-4-hydroxycinnamic acid (CHC) with the monoclonal antibody cetuximab (CTX), both carried onto a nanotechnology-based delivery system, is herein proposed for GBM treatment via nose-to-brain delivery. The biological performance of Poly (D,L-lactic-co-glycolic acid)/chitosan nanoparticles (NP), loaded with CHC, and conjugated with CTX by covalent bonds (conjugated NP) were extensively investigated. The NP platforms were able to control CHC release, indicating that drug release was driven by the Weibull model. An ex vivo study with nasal porcine mucosa demonstrated the capability of these systems to promote CHC and CTX permeation. Blot analysis confirmed that CTX, covalently associated to NP, impairs EGRF activation. The chicken chorioallantoic membrane assay demonstrated a trend of tumor reduction when conjugated NP were employed. Finally, images acquired by fluorescence tomography evidenced that the developed nanoplatform was effective in enabling nose-to-brain transport upon nasal administration. In conclusion, the developed delivery system exhibited suitability as an effective novel co-delivery approaches for GBM treatment upon intranasal administration.
Insights
This study introduces a novel nanotechnology delivery system for treating glioblastoma (GBM). The system effectively delivers alpha-cyano-4-hydroxycinnamic acid (CHC) and cetuximab (CTX) via nose-to-brain administration, showing potential for tumor reduction.
Area of Science:
- Oncology
- Nanotechnology
- Pharmacology
Background:
- Glioblastoma (GBM) presents significant treatment challenges due to its location and biology.
- Hallmarks of cancer include EGFR mutations, angiogenesis, and altered energetics, necessitating targeted therapies.
- Current targeted therapies face limitations in effectively reaching GBM tumors.
Purpose of the Study:
- To develop and evaluate a novel nanotechnology-based co-delivery system for glioblastoma (GBM) treatment.
- To combine alpha-cyano-4-hydroxycinnamic acid (CHC) and cetuximab (CTX) for enhanced therapeutic efficacy.
- To enable targeted nose-to-brain delivery of therapeutic agents for GBM.
Main Methods:
- Formulation of Poly (D,L-lactic-co-glycolic acid)/chitosan nanoparticles (NP) loaded with CHC and conjugated with CTX.
- Investigation of CHC release kinetics using the Weibull model.
- Ex vivo studies on nasal porcine mucosa for drug permeation assessment.
- In vivo efficacy evaluation using the chicken chorioallantoic membrane assay.
- Fluorescence tomography for tracking nose-to-brain transport.
Main Results:
- Nanoparticles demonstrated controlled release of CHC, following the Weibull model.
- Ex vivo studies confirmed successful permeation of CHC and CTX across nasal mucosa.
- Conjugated CTX effectively inhibited EGFR activation.
- A trend of tumor reduction was observed with conjugated nanoparticles in vivo.
- Fluorescence imaging confirmed efficient nose-to-brain transport of the nanoplatform.
Conclusions:
- The developed nanotechnology delivery system is suitable for co-delivery of CHC and CTX.
- Intranasal administration facilitates effective nose-to-brain transport for GBM treatment.
- This novel approach shows promise as an effective therapeutic strategy for glioblastoma.
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