Bernatoniene Jurga, Plieskis Mindaugas, Petrikonis Kestutis
Department of Drug Technology and Social Pharmacy, Faculty of Pharmacy, Medical Academy, Lithuanian University of Health Sciences, Sukileliu pr. 13, LT-50161 Kaunas, Lithuania.
Institute of Pharmaceutical Technologies, Faculty of Pharmacy, Medical Academy, Lithuanian University of Health Sciences, Sukileliu pr. 13, LT-50161 Kaunas, Lithuania.
Pharmaceutics. 2025 Mar 9;17(3):352. doi: 10.3390/pharmaceutics17030352.
Pharmaceutical 3D printing, combined with nanomaterials and nanodevices, presents a transformative approach to precision medicine for treating neurological diseases. This technology enables the creation of tailored dosage forms with controlled release profiles, enhancing drug delivery across the blood-brain barrier (BBB). The integration of nanoparticles, such as poly lactic-co-glycolic acid (PLGA), chitosan, and metallic nanomaterials, into 3D-printed scaffolds improves treatment efficacy by providing targeted and prolonged drug release. Recent advances have demonstrated the potential of these systems in treating conditions like Parkinson's disease, epilepsy, and brain tumors. Moreover, 3D printing allows for multi-drug combinations and personalized formulations that adapt to individual patient needs. Novel drug delivery approaches, including stimuli-responsive systems, on-demand dosing, and theragnostics, provide new possibilities for the real-time monitoring and treatment of neurological disorders. Despite these innovations, challenges remain in terms of scalability, regulatory approval, and long-term safety. The future perspectives of this technology suggest its potential to revolutionize neurological treatments by offering patient-specific therapies, improved drug penetration, and enhanced treatment outcomes. This review discusses the current state, applications, and transformative potential of 3D printing and nanotechnology in neurological treatment, highlighting the need for further research to overcome the existing challenges.
药物3D打印与纳米材料和纳米器件相结合,为治疗神经疾病的精准医学提供了一种变革性方法。这项技术能够制造出具有控释特性的定制剂型,增强药物透过血脑屏障(BBB)的递送。将纳米颗粒,如聚乳酸-乙醇酸共聚物(PLGA)、壳聚糖和金属纳米材料,整合到3D打印支架中,通过实现靶向和延长药物释放来提高治疗效果。最近的进展已经证明了这些系统在治疗帕金森病、癫痫和脑肿瘤等病症方面的潜力。此外,3D打印允许进行多药联合和个性化制剂,以适应个体患者的需求。新型药物递送方法,包括刺激响应系统、按需给药和诊疗一体化,为神经疾病的实时监测和治疗提供了新的可能性。尽管有这些创新,但在可扩展性、监管批准和长期安全性方面仍存在挑战。这项技术的未来前景表明,它有潜力通过提供针对患者的疗法、改善药物渗透和提高治疗效果来彻底改变神经疾病的治疗方式。本综述讨论了3D打印和纳米技术在神经治疗中的现状、应用和变革潜力,强调了进一步研究以克服现有挑战的必要性。