Injectable hybrid hydrogel-mediated calcium-sensing receptor (CaSR) activation for enhanced osteogenesis and bone remodeling.

IF 5.8 3区 医学 Q1 MATERIALS SCIENCE, BIOMATERIALS
Grace Felciya Sekar Jeyakumar, Poornima Velswamy, Deebasuganya Gunasekaran, Alexandar Vincent Paulraj, Nivethitha Paneerselvam Manimegalai, Uma Tiruchirappalli Sivagnanam
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引用次数: 0

Abstract

Injectable hydrogels have transfigured bone tissue engineering by offering minimally invasive solutions for treating irregularly shaped critical-size bone defects. Unlike traditional fixed-shaped bone grafts that require invasive surgeries and precise defect matching, injectable hydrogels adapt to defect geometries and accelerate healing. The hydrogels mimic the extracellular matrix with their porous, interconnected 3D architecture, promoting cell adhesion, proliferation, differentiation, vascularization, and nutrient flow, which are essential for effective bone regeneration and affirm the osteoconductivity. Chitosan-alginate hydrogels are particularly promising due to their mechanical stability, biodegradability, and ability to deliver bioactive compounds sustainably. To enhance its osteoinductive properties, bioinorganic ions such as strontium (Sr2+)-based hybrid nanocomposites have been explored. Strontium has garnered attention for its ability to activate the calcium-sensing receptor (CaSR)-mediated signaling pathways by regulating bone resorption and bone formation by various bone matrix proteins, thereby promoting bone homeostasis and regeneration. Strontium's ionic similarity to calcium enables it to act as a robust activator of CaSR, triggering pathways that enhance bone regeneration. Building on this, we developed an innovative hybrid material hydrogel by reinforcing the chitosan-alginate hydrogels with a Sr-Fe-TQ (strontium-iron-thymoquinone) nanocomposite. This bioengineered hydrogel system demonstrated excellent hemocompatibility (in human RBCs), cytocompatibility, biocompatibility, and enhanced efficiency in vitro in MG-63 osteoblast-like cells. In vivo studies using a rabbit critical-size defect model showed accelerated bone remodeling, achieving better defect closure and superior bone volume restoration (∼99%) compared to the controls. This study underscores the transformative potential of the Sr-Fe-TQ hydrogel as an injectable, osteoconductive, and osteoinductive scaffolds for critical-size defect repair. By combining minimally invasive delivery, sustained bioactive release, and superior regenerative outcomes, this hydrogel system addresses key challenges in bone tissue engineering, paving the way for next-generation biomaterials in regenerative medicine.

可注射的混合水凝胶介导的钙敏感受体(CaSR)激活促进骨生成和骨重塑。
可注射水凝胶通过提供微创解决方案来治疗不规则形状的临界尺寸骨缺陷,从而改变了骨组织工程。传统的固定形状的骨移植需要侵入性手术和精确的缺陷匹配,而可注射的水凝胶可以适应缺陷的几何形状并加速愈合。水凝胶以其多孔的、相互连接的3D结构模拟细胞外基质,促进细胞粘附、增殖、分化、血管形成和营养流动,这是有效骨再生和确认骨导电性所必需的。壳聚糖-海藻酸盐水凝胶由于其机械稳定性、生物可降解性和可持续传递生物活性化合物的能力而特别有前景。为了增强其骨诱导性能,生物无机离子如锶(Sr2+)基杂化纳米复合材料已被探索。锶通过多种骨基质蛋白调节骨吸收和骨形成,从而促进骨稳态和再生,从而激活钙敏感受体(CaSR)介导的信号通路,引起了人们的关注。锶与钙的离子相似性使其能够作为CaSR的强大激活剂,触发增强骨再生的途径。在此基础上,我们开发了一种创新的杂化材料水凝胶,用Sr-Fe-TQ(锶-铁-百里醌)纳米复合材料增强壳聚糖-海藻酸盐水凝胶。该生物工程水凝胶系统在体外MG-63成骨样细胞中表现出良好的血液相容性(在人红细胞中)、细胞相容性、生物相容性和增强的效率。使用兔临界尺寸缺陷模型的体内研究显示,与对照组相比,骨重塑加速,实现更好的缺陷闭合和更好的骨体积恢复(~ 99%)。这项研究强调了Sr-Fe-TQ水凝胶作为一种可注射的、骨传导的和骨诱导的支架用于修复临界尺寸的缺陷的转变潜力。通过结合微创输送、持续的生物活性释放和卓越的再生效果,该水凝胶系统解决了骨组织工程中的关键挑战,为再生医学中的下一代生物材料铺平了道路。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Biomaterials Science
Biomaterials Science MATERIALS SCIENCE, BIOMATERIALS-
CiteScore
11.50
自引率
4.50%
发文量
556
期刊介绍: Biomaterials Science is an international high impact journal exploring the science of biomaterials and their translation towards clinical use. Its scope encompasses new concepts in biomaterials design, studies into the interaction of biomaterials with the body, and the use of materials to answer fundamental biological questions.
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