CBRTP SA-Research and Development Center of Technology for Industry, 3A Ludwika Waryńskiego St., 00-645 Warsaw, Poland.
Jerzy Haber Institute of Catalysis and Surface Chemistry, Polish Academy of Sciences, 8 Niezapominajek St., 30-239 Krakow, Poland.
Int J Mol Sci. 2024 Mar 8;25(6):3126. doi: 10.3390/ijms25063126.
Nano-sized biomaterials are innovative drug carriers with nanometric dimensions. Designed with biocompatibility in mind, they enable precise drug delivery while minimizing side effects. Controlled release of therapeutic substances enhances efficacy, opening new possibilities for treating neurological and oncological diseases. Integrated diagnostic-therapeutic nanosystems allow real-time monitoring of treatment effectiveness, which is crucial for therapy personalization. Utilizing biomaterials as nano-sized carriers in conjunction with drugs represents a promising direction that could revolutionize the field of pharmaceutical therapy. Such carriers represent groundbreaking drug delivery systems on a nanometric scale, designed with biocompatibility in mind, enabling precise drug delivery while minimizing side effects. Using biomaterials in synergy with drugs demonstrates significant potential for a revolutionary impact on pharmaceutical therapy. Conclusions drawn from the review indicate that nano-sized biomaterials constitute an innovative tool that can significantly improve therapy effectiveness and safety, especially in treating neurological and oncological diseases. These findings should guide researchers towards further studies to refine nano-sized biomaterials, assess their effectiveness under various pathological conditions, and explore diagnostic-therapeutic applications. Ultimately, these results underscore the promising nature of nano-sized biomaterials as advanced drug carriers, ushering in a new era in nanomedical therapy.
纳米级生物材料是具有纳米尺寸的创新药物载体。它们以生物相容性为设计理念,能够实现精确的药物输送,同时最大限度地减少副作用。治疗物质的控制释放提高了疗效,为治疗神经和肿瘤疾病开辟了新的可能性。集成的诊断-治疗纳米系统允许实时监测治疗效果,这对治疗个性化至关重要。将生物材料用作纳米级药物载体与药物联合使用代表了一个有前途的方向,可能会彻底改变药物治疗领域。这些载体代表了一种开创性的纳米级药物输送系统,以生物相容性为设计理念,能够实现精确的药物输送,同时最大限度地减少副作用。生物材料与药物协同使用具有革命性影响药物治疗的巨大潜力。综述得出的结论表明,纳米级生物材料是一种创新工具,可以显著提高治疗效果和安全性,特别是在治疗神经和肿瘤疾病方面。这些发现应指导研究人员进一步研究,以完善纳米级生物材料,评估其在各种病理条件下的有效性,并探索诊断-治疗应用。最终,这些结果强调了纳米级生物材料作为先进药物载体的有前途的性质,开创了纳米医学治疗的新时代。
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