Zambonino Marjorie C, Quizhpe Ernesto Mateo, Mouheb Lynda, Rahman Ashiqur, Agathos Spiros N, Dahoumane Si Amar
School of Biological Sciences and Engineering, Yachay Tech University, Hacienda San José s/n, San Miguel de Urcuquí 100119, Ecuador.
Laboratoire de Recherche de Chimie Appliquée et de Génie Chimique, Hasnaoua I, Université Mouloud Mammeri, BP 17 RP, Tizi-Ouzou 15000, Algeria.
Nanomaterials (Basel). 2023 Jan 19;13(3):424. doi: 10.3390/nano13030424.
Selenium is an important dietary supplement and an essential trace element incorporated into selenoproteins with growth-modulating properties and cytotoxic mechanisms of action. However, different compounds of selenium usually possess a narrow nutritional or therapeutic window with a low degree of absorption and delicate safety margins, depending on the dose and the chemical form in which they are provided to the organism. Hence, selenium nanoparticles (SeNPs) are emerging as a novel therapeutic and diagnostic platform with decreased toxicity and the capacity to enhance the biological properties of Se-based compounds. Consistent with the exciting possibilities offered by nanotechnology in the diagnosis, treatment, and prevention of diseases, SeNPs are useful tools in current biomedical research with exceptional benefits as potential therapeutics, with enhanced bioavailability, improved targeting, and effectiveness against oxidative stress and inflammation-mediated disorders. In view of the need for developing eco-friendly, inexpensive, simple, and high-throughput biomedical agents that can also ally with theranostic purposes and exhibit negligible side effects, biogenic SeNPs are receiving special attention. The present manuscript aims to be a reference in its kind by providing the readership with a thorough and comprehensive review that emphasizes the current, yet expanding, possibilities offered by biogenic SeNPs in the biomedical field and the promise they hold among selenium-derived products to, eventually, elicit future developments. First, the present review recalls the physiological importance of selenium as an oligo-element and introduces the unique biological, physicochemical, optoelectronic, and catalytic properties of Se nanomaterials. Then, it addresses the significance of nanosizing on pharmacological activity (pharmacokinetics and pharmacodynamics) and cellular interactions of SeNPs. Importantly, it discusses in detail the role of biosynthesized SeNPs as innovative theranostic agents for personalized nanomedicine-based therapies. Finally, this review explores the role of biogenic SeNPs in the ongoing context of the SARS-CoV-2 pandemic and presents key prospects in translational nanomedicine.
硒是一种重要的膳食补充剂,也是一种必需的微量元素,可整合到具有生长调节特性和细胞毒性作用机制的硒蛋白中。然而,不同的硒化合物通常具有较窄的营养或治疗窗口,其吸收程度较低且安全边际较窄,这取决于给予生物体的剂量和化学形式。因此,硒纳米颗粒(SeNPs)正在成为一种新型的治疗和诊断平台,具有降低的毒性以及增强硒基化合物生物学特性的能力。与纳米技术在疾病诊断、治疗和预防方面所提供的令人兴奋的可能性相一致,SeNPs是当前生物医学研究中的有用工具,作为潜在治疗剂具有特殊优势,具有更高的生物利用度、更好的靶向性以及对氧化应激和炎症介导疾病的有效性。鉴于需要开发环保、廉价、简单且高通量的生物医学制剂,这些制剂还能用于治疗诊断目的并表现出可忽略不计的副作用,生物合成的SeNPs正受到特别关注。本手稿旨在成为同类文献的参考,为读者提供全面而详尽的综述,强调生物合成的SeNPs在生物医学领域目前虽仍在不断扩展但已存在的可能性,以及它们在硒衍生产品中所具有的最终引发未来发展的前景。首先,本综述回顾了硒作为一种微量元素的生理重要性,并介绍了硒纳米材料独特的生物学、物理化学、光电和催化特性。然后,探讨了纳米尺寸对SeNPs药理活性(药代动力学和药效学)及细胞相互作用的重要性。重要的是,详细讨论了生物合成的SeNPs作为基于个性化纳米医学疗法的创新治疗诊断剂的作用。最后,本综述探讨了生物合成的SeNPs在当前新冠病毒大流行背景下的作用,并展示了转化纳米医学的关键前景。