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Surface-enhanced Resonance Raman Scattering Nanoprobe Ratiometry for Detecting Microscopic Ovarian Cancer via Folate Receptor Targeting
Published on: March 25, 2019
Therapeutic Potential of Glucose Oxidase-Loaded Biogenic Mesoporous Silica Nanoparticles in Ovarian Cancer
Andrea G Uriostegui-Pena1, Padmavati Sahare2, Gabriel Luna-Bárcenas2
1School of Engineering and Sciences, Tecnologico de Monterrey, Campus Queretaro, Querétaro 76130, Mexico.
Abstract:
Background/Objectives: Ovarian cancer (OC) remains one of the most lethal malignancies of the female reproductive system. Glucose oxidase (GOx) has emerged as a potential therapeutic agent in cancer treatment by inducing tumor starvation through glucose depletion. Nonetheless, its clinical application is constrained due to its systemic toxicity, immunogenicity, poor in vivo stability, and short half-life. These challenges can be addressed through nanotechnology; in particular, biogenic mesoporous silica nanoparticles (MSNs) offer promise as drug delivery systems (DDSs) that enhance therapeutic efficacy while minimizing side effects. Methods: Biogenic MSNs were extracted from the Equisetum myriochaetum plant via acid digestion, functionalized with 3-aminopropiltrietoxysilane (APTES) and glutaraldehyde (GTA), and loaded with GOx. The free and immobilized MSNs were characterized using FTIR, DLS, XRD, SEM/EDX, and BET techniques. A colorimetric approach was employed to quantify the enzymatic activity of both the free and immobilized GOx. The MTT assay was employed to assess the viability of SKOV3 cells. The obtained IC50 concentration of the nanoformulation was administered to SKOV3 cells to analyze the expression of cancer-related genes using RT-qPCR. Results: IC50 values of 60.77 ng/mL and 111.6 µg/mL were ascertained for the free and immobilized GOx, respectively. Moreover, a significant downregulation of the oncogene β-catenin (CTNNB1) was detected after 24 h with the nanoformulation. Conclusions: Our findings indicate that GOx-loaded biogenic MSNs may serve as a potential therapeutic agent for ovarian cancer. This is, to the best of our knowledge, the first report exploring the effect of GOx-loaded biogenic MSNs on SKOV3 cells.
Insights
Biogenic mesoporous silica nanoparticles loaded with glucose oxidase show potential for treating ovarian cancer by depleting glucose and downregulating the oncogene β-catenin. This nanotechnology approach overcomes limitations of free glucose oxidase for enhanced therapeutic efficacy.
Area of Science:
- Nanotechnology
- Biomaterials
- Oncology
Background:
- Ovarian cancer (OC) is a leading cause of cancer-related deaths in women.
- Glucose oxidase (GOx) shows therapeutic potential by depleting tumor glucose but faces clinical limitations like toxicity and poor stability.
- Biogenic mesoporous silica nanoparticles (MSNs) offer a promising drug delivery system (DDS) to enhance GOx efficacy and reduce side effects.
Purpose of the Study:
- To develop and characterize GOx-loaded biogenic MSNs for ovarian cancer therapy.
- To evaluate the therapeutic potential of this nanoformulation against SKOV3 ovarian cancer cells.
Main Methods:
- Biogenic MSNs were extracted from *Equisetum myriochaetum* and functionalized.
- GOx was loaded into MSNs, and both free and immobilized forms were characterized (FTIR, DLS, XRD, SEM/EDX, BET).
- Cell viability (MTT assay) and gene expression (RT-qPCR) of SKOV3 cells treated with the nanoformulation were assessed.
Main Results:
- The IC50 values for free and immobilized GOx were 60.77 ng/mL and 111.6 µg/mL, respectively.
- GOx-loaded biogenic MSNs significantly downregulated the oncogene β-catenin (*CTNNB1*) in SKOV3 cells after 24 hours.
- This study represents the first report on GOx-loaded biogenic MSNs effects on SKOV3 cells.
Conclusions:
- GOx-loaded biogenic MSNs demonstrate potential as a therapeutic agent for ovarian cancer.
- The nanoformulation effectively reduced cancer cell viability and downregulated a key oncogene.
- This nanotechnology approach offers a promising strategy to overcome the limitations of free GOx in cancer therapy.
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