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Updated: Jul 30, 2026

Photodynamic Therapy with Blended Conducting Polymer/Fullerene Nanoparticle Photosensitizers
Published on: October 28, 2015
Applications of supramolecular assemblies in drug delivery and photodynamic therapy
Kharu Nisa1, Ishfaq Ahmad Lone1, Waseem Arif1
1Department of Chemistry, Material Chemistry Laboratory, National Institute of Technology Srinagar 190006 India nylabhat.bn@gmail.com rkuhp05@gmail.com.
Abstract:
One of the world's serious health challenges is cancer. Anti-cancer agents delivered to normal cells and tissues pose several problems and challenges. In this connection, photodynamic therapy (PDT) is a minimally invasive therapeutic technique used for selectively destroying malignant cells while sparing the normal tissues. Development in photosensitisers (PSs) and light sources have to be made for PDT as a first option treatment for patients. In the pursuit of developing new attractive molecules and their formulations for PDT, researchers are working on developing such type of PSs that perform better than those being currently used. For the widespread clinical utilization of PDT, effective PSs are of particular importance. Host-guest interactions based on nanographene assemblies such as functionalized hexa-cata-hexabenzocoronenes, hexa-peri-hexabenzocoronenes and coronene have attracted increasing attention owing to less complicated synthetic steps and purification processes (gel permeation chromatography) during fabrication. Noncovalent interactions provide easy and facile approaches for building supramolecular PSs and enable them to have sensitive and controllable photoactivities, which are important for maximizing photodynamic effects and minimizing side effects. Various versatile supramolecular assemblies based on cyclodextrins, cucurbiturils, calixarenes, porphyrins and pillararenes have been designed in order to make PDT an effective therapeutic technique for curing cancer and tumours. The supramolecular assemblies of porphyrins display efficient electron transfer and fluorescence for use in bioimaging and PDT. The multifunctionalization of supramolecular assemblies is used for designing biomedically active PSs, which are helpful in PDT. It is anticipated that the development of these functionalized supramolecular assemblies will provide more fascinating advances in PDT and will dramatically expand the potential and possibilities in cancer treatments.
Insights
Photodynamic therapy (PDT) utilizes photosensitizers (PSs) to selectively destroy cancer cells. Novel supramolecular assemblies offer improved PSs for more effective cancer treatments with fewer side effects.
Area of Science:
- Supramolecular chemistry
- Nanotechnology
- Photochemistry
Background:
- Cancer remains a significant global health challenge.
- Conventional anti-cancer agents can harm normal tissues.
- Photodynamic therapy (PDT) offers a targeted approach to cancer treatment.
Purpose of the Study:
- To explore the development of advanced photosensitizers (PSs) for enhanced photodynamic therapy (PDT).
- To investigate supramolecular assemblies as novel platforms for PDT agents.
- To improve the efficacy and reduce side effects of cancer treatments.
Main Methods:
- Utilizing host-guest interactions to create nanographene and other supramolecular assemblies.
- Designing functionalized molecules for improved photosensitizer performance.
- Investigating porphyrin-based supramolecular assemblies for bioimaging and PDT.
Main Results:
- Supramolecular assemblies based on nanographenes and other scaffolds offer simpler synthesis and purification.
- Noncovalent interactions enable controllable photoactivity, enhancing PDT effectiveness.
- Porphyrin supramolecular assemblies show promise for efficient electron transfer and fluorescence in PDT and bioimaging.
Conclusions:
- Supramolecular assemblies represent a promising strategy for developing next-generation photosensitizers for PDT.
- Multifunctionalization of these assemblies can lead to highly effective, targeted cancer therapies.
- Further development of functionalized supramolecular assemblies is expected to significantly advance cancer treatment possibilities.
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