Waqar Muhammad Ahsan
Department of Pharmaceutics, Faculty of Pharmaceutical Sciences, Lahore University of Biological and Applied Sciences, Lahore, Pakistan.
J Drug Target. 2025 Feb;33(2):157-170. doi: 10.1080/1061186X.2024.2412142. Epub 2024 Oct 11.
Nanotechnology has significantly impacted drug discovery and development over the past three decades, offering novel insights and expanded treatment options. Key to this field is nanoparticles, ranging from 1 to 100 nanometres, with unique properties distinct from larger materials. Selenium nanoparticles (SeNPs) are particularly promising due to their low toxicity and selective cytotoxicity against cancer cells. They have shown efficacy in reducing various cancers types and mitigating conditions like diabetic nephropathy and neurological disorders, such as Alzheimer's disease. This review highlights SeNPs' role in enhancing drug delivery systems, improving the absorption of water-soluble compounds, proteins, peptides, vaccines, and other biological therapies. By modifying nanoparticle surfaces with targeting ligands, drug delivery can achieve precise site-specific delivery, increasing effectiveness. SeNPs can be synthesised through physical, chemical, and biological methods, each offering advantages in stability, size, and application potential. Additionally, SeNPs enhance immune responses and reduce oxidative stress, validating their role in biotherapy and nanomedicine. Their ability to target macrophages and regulate polarisation underscores their potential in antimicrobial therapies. Recent advancements, such as mannosylated SeNPs for targeted delivery, exemplify innovative nanotechnology applications in medicine. Overall, SeNPs represent a promising frontier in nanomedicine, offering new avenues for treating and managing various diseases.
在过去三十年中,纳米技术对药物发现和开发产生了重大影响,提供了新的见解并扩展了治疗选择。该领域的关键是纳米颗粒,其尺寸范围为1至100纳米,具有与较大材料不同的独特性质。硒纳米颗粒(SeNPs)因其低毒性和对癌细胞的选择性细胞毒性而特别有前景。它们已显示出在减少各种癌症类型以及减轻诸如糖尿病肾病和神经疾病(如阿尔茨海默病)等病症方面的功效。本综述强调了SeNPs在增强药物递送系统、改善水溶性化合物、蛋白质、肽、疫苗和其他生物疗法的吸收方面的作用。通过用靶向配体修饰纳米颗粒表面,药物递送可以实现精确的位点特异性递送,提高有效性。SeNPs可以通过物理、化学和生物方法合成,每种方法在稳定性、尺寸和应用潜力方面都具有优势。此外,SeNPs增强免疫反应并降低氧化应激,证实了它们在生物疗法和纳米医学中的作用。它们靶向巨噬细胞并调节极化的能力突出了它们在抗菌疗法中的潜力。最近的进展,如用于靶向递送的甘露糖基化SeNPs,例证了纳米技术在医学中的创新应用。总体而言,SeNPs代表了纳米医学中一个有前景的前沿领域,为治疗和管理各种疾病提供了新途径。