Abstract

This paper critically reviews the current evidence of research in biomedical applications of selenium nanoparticles (SeNPs) and their effects at cellular and tissue levels. In recent years, interest in SeNPs as a natural trace element nanomaterial for nanomedicine has resulted in a number of studies evaluating their bioactivities, such as anticancer, antimicrobial, and antioxidant properties. Significant data have been generated to demonstrate the effectiveness of SeNPs alone or in combination with other reagents. Their activities are demonstrated through in vitro and in vivo experimentation; yet, the levels of efficacy need to be improved, particularly when compared with those of pharmaceutical drugs (such as antibiotics and cytotoxic chemotherapeutic drugs). However, promising evidence suggests decreased toxicity when using SeNPs, and more importantly their ability to perform as an interfacing biomaterial with cells and tissues. SeNPs have demonstrated unique antibacterial properties: they inhibit bacterial adhesion, growth, and/or quorum sensing and as a result prevent biofilm formation on medical devices, to name a few. Therefore, as with other nanomaterials, SeNPs warrant further study as part of the biomaterial-based therapeutic toolkit as an alternative to traditional pharmaceutical agents. This paper will provide a succinct review of recent studies on SeNPs to critically assess the findings in the light of effectiveness, particularly highlighting the roles of the cellular interface. Finally, an outlook of the potential of SeNPs will be presented to highlight the need for more intensive studies of material stability, mechanistic understanding at subcellular levels, and investigations into their combinational and/or synergistic effects with other bioactive reagents including pharmaceutical drugs.

Highlights

  • Selenium is a naturally occurring element that is essential for the operation of multiple biological processes

  • The antioxidant effects of selenoprotein may manage the production of eicosanoids and protect against hypertension associated with pre-eclampsia via regulation of vascular tone in pregnant women

  • The results showed that SeNP@HP (4.5 μg/ml)-treated mice had significantly higher wound healing percentages compared to the control group [treated with distilled water (DW) only] at days 15 and 21 postinfection

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Summary

INTRODUCTION

Selenium is a naturally occurring element that is essential for the operation of multiple biological processes. The selenoprotein, glutathione peroxidase, plays a vital role as a cofactor for iodothyronine deiodinase. This enzyme is responsible for the conversion of thyroxine (T4) into activated thyroid hormone, tri-iodothyronine (T3), which assists with the regulation of metabolic rate, bone maintenance, brain development, muscle control, mood, heart, and digestive function.. Glutathione peroxidase’s effect on vascular tone protects against cardiovascular diseases, such as atherosclerosis where it downregulates platelet aggregation inside the blood vessel by the breakdown of hydroperoxides.. Cytotoxic T cells go on to destroy viral infected and neoplastic cells by inducing apoptosis.18 This association may explain selenium’s inverse relationship to cancer incidence and mortality and chronic viral infections such as human immunodeficiency virus and hepatitis B and C.16. Cytotoxic T cells go on to destroy viral infected and neoplastic cells by inducing apoptosis. This association may explain selenium’s inverse relationship to cancer incidence and mortality and chronic viral infections such as human immunodeficiency virus and hepatitis B and C.16 Selenium, in the form of glutathione peroxidase, is protective against oxidative damage from ribonucleic acid (RNA)-viral genome that may lead to mutation or cellular damage.

Role of selenium in antimicrobial applications
Role of selenium in wound healing
Role of selenium in anticancer applications
Protective role of selenium
E EC ED PED ECD PECD
Role of selenium in antifungal applications
Role of selenium in antiparasitic applications
SeNPs in medical device coatings and delivery systems
FUTURE PERSPECTIVES AND CONSIDERATIONS
Toxicity evaluation
Biogenic versus synthetic SeNPs
Amorphous versus crystalline SeNPs
Findings
Combination of SeNPs and conventional anticancer or antimicrobial agents

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