Suresh Nandita, Thomas Nebu George, Mauramo Matti, Waltimo Tuomas, Sorsa Timo, Anil Sukumaran
Department of Oral and Maxillofacial Diseases, Helsinki University and University Hospital, Helsinki, Finland.
Pushpagiri Institute of Medical Sciences and Research Centre, Medicity, Perumthuruthy, Tiruvalla, Kerala, India.
Discov Nano. 2025 Jan 16;20(1):11. doi: 10.1186/s11671-024-04164-9.
Phytonanoparticles have emerged as a promising class of biomaterials for enhancing bone regeneration and osseointegration, offering unique advantages in biocompatibility, multifunctionality, and sustainability. This comprehensive review explores the synthesis, characterization, and applications of phytonanoparticles in bone tissue engineering. The green synthesis approach, utilizing plant extracts as reducing and stabilizing agents, yields nanoparticles with intrinsic bioactive properties that can synergistically promote osteogenesis. We examine the mechanisms by which phytonanoparticles, particularly those derived from gold, silver, and zinc oxide, influence key molecular pathways in osteogenesis, including RUNX2 and Osterix signaling. The review discusses advanced strategies in phyto-nanoparticle design, such as surface functionalization and stimuli-responsive release mechanisms, which enhance their efficacy in bone regeneration applications. Preclinical studies demonstrating improved osteoblast proliferation, differentiation, and mineralization are critically analyzed, along with emerging clinical data. Despite promising results, scalability, standardization, and regulatory approval challenges persist. The review also addresses the economic and environmental implications of phyto-nanoparticle production. Looking ahead, we identify key research directions, including developing personalized therapies, combination approaches with stem cells or gene delivery, and long-term safety assessments. By harnessing the power of plant-derived nanomaterials, phytonanoparticles represent an innovative approach to addressing the complex challenges of bone regeneration, with potential applications spanning dental, orthopedic, and maxillofacial surgery.
植物纳米颗粒已成为一类有前景的生物材料,可促进骨再生和骨整合,在生物相容性、多功能性和可持续性方面具有独特优势。这篇综述全面探讨了植物纳米颗粒在骨组织工程中的合成、表征及应用。利用植物提取物作为还原剂和稳定剂的绿色合成方法,可制备出具有内在生物活性特性的纳米颗粒,这些特性能够协同促进骨生成。我们研究了植物纳米颗粒,特别是金、银和氧化锌衍生的纳米颗粒,影响骨生成关键分子途径(包括RUNX2和Osterix信号传导)的机制。该综述讨论了植物纳米颗粒设计中的先进策略,如表面功能化和刺激响应释放机制,这些策略可提高其在骨再生应用中的功效。对证明成骨细胞增殖、分化和矿化改善的临床前研究以及新出现的临床数据进行了批判性分析。尽管取得了有前景的结果,但可扩展性、标准化和监管批准方面的挑战依然存在。该综述还讨论了植物纳米颗粒生产的经济和环境影响。展望未来,我们确定了关键研究方向,包括开发个性化疗法、与干细胞或基因递送的联合方法以及长期安全性评估。通过利用植物源纳米材料的力量,植物纳米颗粒代表了一种创新方法,可应对骨再生的复杂挑战,其潜在应用涵盖牙科、骨科和颌面外科手术。