Abolhasani Sakhavat, Ahmadi Yasin, Rostami Yavar, Baravar Erfan, Fattahi Davood
Stem Cell Research Center, Tabriz University of Medical Sciences, Tabriz, Iran.
Student Research Committee, Sarab Faculty of Medical Sciences, Sarab, East Azerbaijan, Iran.
Front Med Technol. 2025 Aug 15;7:1565810. doi: 10.3389/fmedt.2025.1565810. eCollection 2025.
The extracellular matrix (ECM) serves as a dynamic biological framework that orchestrates cellular behavior through biomechanical and biochemical cues, playing a pivotal role in tissue homeostasis and repair. Despite significant advancements in biomaterial design, current regenerative strategies often fail to fully replicate the ECM's complexity, leading to suboptimal healing outcomes. This review comprehensively examines ECM biology and its application in biomaterial engineering, highlighting structural-functional relationships, integrin-mediated signaling, and ECM remodeling mechanisms in wound healing. We analyze diverse biomaterial classes-including ECM-based scaffolds, synthetic polymers, natural biomaterials, bioceramics, and composites-focusing on their design principles, fabrication techniques, degradation profiles, and clinical applications. Key challenges such as immunogenicity, vascularization, mechanical mismatch, and regulatory hurdles are critically evaluated. Innovations in decellularization, biofunctionalization, and advanced manufacturing (e.g., 3D bioprinting, electrospinning) are discussed as promising avenues to enhance biomimicry and therapeutic efficacy. Furthermore, we explore clinically approved ECM-derived products and underscore the need for standardized protocols to bridge translational gaps. By integrating emerging research with clinical perspectives, this review provides a roadmap for developing next-generation ECM-inspired biomaterials that address unmet needs in regenerative medicine, emphasizing interdisciplinary collaboration to optimize safety, functionality, and patient outcomes.
细胞外基质(ECM)作为一个动态的生物框架,通过生物力学和生化信号来协调细胞行为,在组织稳态和修复中发挥着关键作用。尽管生物材料设计取得了重大进展,但目前的再生策略往往无法完全复制ECM的复杂性,导致愈合效果欠佳。本综述全面研究了ECM生物学及其在生物材料工程中的应用,重点阐述了伤口愈合中的结构-功能关系、整合素介导的信号传导以及ECM重塑机制。我们分析了多种生物材料类别,包括基于ECM的支架、合成聚合物、天然生物材料、生物陶瓷和复合材料,重点关注它们的设计原则、制造技术、降解特性和临床应用。对免疫原性、血管化、机械不匹配和监管障碍等关键挑战进行了严格评估。讨论了去细胞化、生物功能化和先进制造(如3D生物打印、静电纺丝)方面的创新,这些都是增强生物模拟和治疗效果的有前景的途径。此外,我们探讨了临床批准的源自ECM的产品,并强调需要标准化方案来弥合转化差距。通过将新兴研究与临床观点相结合,本综述为开发下一代受ECM启发的生物材料提供了路线图,以满足再生医学中未满足的需求,强调跨学科合作以优化安全性、功能性和患者预后。