Tan Victoria le Ching, Hinchman Angelica, Williams Richard, Tran Phong A, Fox Kate
Faculty of Medicine, The University of Queensland, Brisbane, Queensland 4072, Australia.
Ochsner Clinical School, School of Medicine, The University of Queensland, Brisbane, Queensland 4072, Australia.
Biointerphases. 2018 Sep 21;13(6):06D301. doi: 10.1116/1.5042693.
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 and 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.
本文批判性地回顾了硒纳米颗粒(SeNPs)在生物医学应用方面的当前研究证据及其在细胞和组织水平上的作用。近年来,作为一种用于纳米医学的天然微量元素纳米材料,人们对SeNPs的兴趣引发了许多评估其生物活性的研究,如抗癌、抗菌和抗氧化特性。已经产生了大量数据来证明SeNPs单独使用或与其他试剂联合使用的有效性。它们的活性通过实验得以证明;然而,其功效水平仍需提高,特别是与药物(如抗生素和细胞毒性化疗药物)相比时。不过,有前景的证据表明使用SeNPs时毒性降低,更重要的是它们能够作为与细胞和组织相互作用的生物材料。SeNPs已展现出独特的抗菌特性:它们抑制细菌粘附、生长和/或群体感应,从而防止医疗器械上形成生物膜等。因此,与其他纳米材料一样,SeNPs作为基于生物材料的治疗工具包的一部分,作为传统药物的替代品,值得进一步研究。本文将简要回顾近期关于SeNPs的研究,以便根据有效性批判性地评估研究结果,特别强调细胞界面的作用。最后,将展示SeNPs的潜力展望,以突出对材料稳定性进行更深入研究、在亚细胞水平上进行机理理解以及研究其与包括药物在内的其他生物活性试剂的组合和/或协同效应的必要性。
Biointerphases. 2018-9-21
Nutrition. 2017-1
J Nanobiotechnology. 2017-1-5
Acta Biomater. 2015-10-27
Biomed Pharmacother. 2019-1-4
Chem Biol Interact. 2023-6-1
Pathog Glob Health. 2023-10
Indian J Microbiol. 2025-3
Microorganisms. 2023-6-7
Pharmaceutics. 2021-2-24
Int J Nanomedicine. 2020-6-17
ACS Omega. 2020-2-5