SPIONs Conjugate Supported Anticancer Drug Doxorubicin's Delivery: Current Status, Challenges, and Prospects
Naseem Akhtar1, Hamdoon A Mohammed2, Mohammed Yusuf3
1Department of Pharmaceutics, College of Dentistry & Pharmacy, Buraydah Private Colleges, P.O. Box 31717, Buraydah 51418, Qassim, Saudi Arabia.
Abstract:
Considerable efforts have been directed towards development of nano-structured carriers to overcome the limitations of anticancer drug, doxorubicin's, delivery to various cancer sites. The drug's severe toxicity to cardio and hepatic systems, low therapeutic outcomes, inappropriate dose-demands, metastatic and general resistance, together with non-selectivity of the drug have led to the development of superparamagnetic iron oxide nanoparticles (SPIONs)-based drug delivery modules. Nano-scale polymeric co-encapsulation of the drug, doxorubicin, with SPIONs, the SPIONs surface end-groups' cappings with small molecular entities, as well as structural modifications of the SPIONs' surface-located functional end-groups, to attach the doxorubicin, have been achieved through chemical bonding by conjugation and cross-linking of natural and synthetic polymers, attachments of SPIONs made directly to the non-polymeric entities, and attachments made through mediation of molecular-spacer as well as non-spacer mediated attachments of several types of chemical entities, together with the physico-chemical bondings of the moieties, e.g., peptides, proteins, antibodies, antigens, aptamers, glycoproteins, and enzymes, etc. to the SPIONs which are capable of targeting multiple kinds of cancerous sites, have provided stable and functional SPIONs-based nano-carriers suitable for the systemic, and in vitro deliveries, together with being suitable for other biomedical/biotechnical applications. Together with the SPIONs inherent properties, and ability to respond to magnetic resonance, fluorescence-directed, dual-module, and molecular-level tumor imaging; as well as multi-modular cancer cell targeting; magnetic-field-inducible drug-elution capacity, and the SPIONs' magnetometry-led feasibility to reach cancer action sites have made sensing, imaging, and drug and other payloads deliveries to cancerous sites for cancer treatment a viable option. Innovations in the preparation of SPIONs-based delivery modules, as biocompatible carriers; development of delivery route modalities; approaches to enhancing their drug delivery-cum-bioavailability have explicitly established the SPIONs' versatility for oncological theranostics and imaging. The current review outlines the development of various SPIONs-based nano-carriers for targeted doxorubicin delivery to different cancer sites through multiple methods, modalities, and materials, wherein high-potential nano-structured platforms have been conceptualized, developed, and tested for, both, in vivo and in vitro conditions. The current state of the knowledge in this arena have provided definite dose-control, site-specificity, stability, transport feasibility, and effective onsite drug de-loading, however, with certain limitations, and these shortcomings have opened the field for further advancements by identifying the bottlenecks, suggestive and plausible remediation, as well as more clear directions for future development.
Insights
Superparamagnetic iron oxide nanoparticles (SPIONs) offer improved doxorubicin delivery for cancer treatment, enhancing targeting and reducing toxicity. These SPIONs-based carriers enable precise drug release and imaging for effective oncological theranostics.
Area of Science:
- Nanotechnology and Materials Science
- Biomedical Engineering
- Oncology
Background:
- Doxorubicin, a potent anticancer drug, suffers from severe systemic toxicity and limited efficacy due to non-selectivity and resistance.
- Superparamagnetic iron oxide nanoparticles (SPIONs) have emerged as promising nanocarriers to overcome doxorubicin's limitations.
- Developing targeted delivery systems is crucial for enhancing therapeutic outcomes and minimizing side effects.
Purpose of the Study:
- To review the development of SPIONs-based nano-carriers for targeted doxorubicin delivery in cancer therapy.
- To explore various methods, modalities, and materials used in creating these advanced drug delivery systems.
- To assess the potential of SPIONs for oncological theranostics and imaging.
Main Methods:
- Co-encapsulation of doxorubicin with SPIONs using natural and synthetic polymers.
- Surface modification of SPIONs through chemical bonding, conjugation, and cross-linking with various moieties (peptides, antibodies, etc.).
- Development of SPIONs-based modules for targeted delivery, imaging, and magnetic-field-inducible drug elution.
Main Results:
- Stable and functional SPIONs-based nano-carriers have been developed for systemic and in vitro doxorubicin delivery.
- These carriers demonstrate inherent properties suitable for dual-mode imaging and multi-modular cancer cell targeting.
- SPIONs enable magnetic-field-inducible drug elution and site-specific delivery, improving therapeutic precision.
Conclusions:
- SPIONs-based nano-carriers offer a versatile platform for targeted doxorubicin delivery, enhancing bioavailability and therapeutic efficacy.
- These systems show significant potential for oncological theranostics, combining imaging and treatment capabilities.
- Further advancements are needed to address existing limitations and optimize SPIONs for broader clinical application.
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