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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
Current Update on Nanotechnology-Based Approaches in Ovarian Cancer Therapy
Boddapati Kalyani Bhardwaj1, Sanu Thankachan1, Priyanila Magesh1
1School of Biotechnology, National Institute of Technology, Calicut-673601, Kerala, India.
Abstract:
Ovarian cancer is one of the leading causes of cancer-related deaths among women. The drawbacks of conventional therapeutic strategies encourage researchers to look for alternative strategies, including nanotechnology. Nanotechnology is one of the upcoming domains of science that is rechanneled towards targeted cancer therapy and diagnosis. Nanocarriers such as dendrimers, liposomes, polymer micelles, and polymer nanoparticles present distinct surface characteristics in morphology, surface chemistry, and mode of action that help differentiate normal and malignant cells, which paves the way for target-specific drug delivery. Similarly, nanoparticles have been strategically utilized as efficacious vehicles to deliver drugs that alter the epigenetic modifications in epigenetic therapy. Some studies suggest that the use of specialized target-modified nanoparticles in siRNA-based nanotherapy prevents internalization and improves the antitumor activity of siRNA by ensuring unrestrained entry of siRNA into the tumor vasculature and efficient intracellular delivery of siRNA. Moreover, research findings highlight the significance of utilizing nanoparticles as depots for photosensitive drugs in photodynamic therapy. The applicability of nanoparticles is further extended to medical imaging. They serve as contrast agents in combination with conventional imaging modalities such as MRI, CT, and fluorescence-based imaging to produce vivid and enhanced images of tumors. Therefore, this review aims to explore and delve deeper into the advent of various nanotechnology-based therapeutic and imaging techniques that provide non-invasive and effective means to tackle ovarian cancers.
Insights
Nanotechnology offers novel therapeutic and diagnostic strategies for ovarian cancer, overcoming limitations of traditional treatments. Nanoparticles enable targeted drug delivery, epigenetic therapy, and enhanced medical imaging for improved patient outcomes.
Area of Science:
- Nanomedicine
- Oncology
- Materials Science
Background:
- Ovarian cancer remains a leading cause of cancer-related deaths in women.
- Conventional therapies have limitations, driving the need for innovative treatment approaches.
- Nanotechnology presents a promising frontier for targeted ovarian cancer therapy and diagnosis.
Purpose of the Study:
- To review the advancements in nanotechnology-based therapeutic strategies for ovarian cancer.
- To explore the application of nanoparticles in targeted drug delivery and epigenetic therapy.
- To discuss the role of nanoparticles in enhancing ovarian cancer imaging modalities.
Main Methods:
- Review of current literature on nanotechnology applications in ovarian cancer.
- Analysis of various nanocarrier systems (dendrimers, liposomes, polymer micelles, nanoparticles).
- Examination of nanoparticle utilization in siRNA-based nanotherapy, photodynamic therapy, and medical imaging.
Main Results:
- Nanocarriers facilitate targeted drug delivery by differentiating between normal and malignant cells.
- Nanoparticles serve as effective vehicles for epigenetic drugs and siRNA delivery, enhancing antitumor activity.
- Nanoparticles improve diagnostic capabilities when used as contrast agents in medical imaging.
Conclusions:
- Nanotechnology provides non-invasive and effective strategies for ovarian cancer treatment and diagnosis.
- Targeted drug delivery systems utilizing nanoparticles show significant potential in improving therapeutic efficacy.
- The integration of nanotechnology in medical imaging offers enhanced visualization of ovarian tumors.
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