Advanced 3D biomimetic scaffolds with bioactive glass and bone-conditioned medium for enhanced osteogenesis

IF 6 2区 医学 Q2 MATERIALS SCIENCE, BIOMATERIALS Materials Science & Engineering C-Materials for Biological Applications Pub Date : 2025-03-09 DOI:10.1016/j.bioadv.2025.214282
Shazia Hameed , Saeed Ur Rahman , Kiran Konain , Muhammad Samie , Sajida Farid , Jeevithan Elango , Syed Rashid Habib , Kyung Mi Woo , Praveen R. Arany
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Abstract

The study focuses on developing and evaluating 3D biomimetic fibrous scaffolds to enhance osteoblast differentiation and bone tissue regeneration. Utilizing a synergistic approach, biological and chemical factors were compartmentalized within the fibrous scaffolds through co-axial electrospinning. Bioactive glass (BG) was used for osteo-conductivity, and Bone-Conditioned Medium (BCM) for osteoinduction. The BCM, derived from ovine bone chips, was investigated for its optimal concentration using pre-osteoblast cells. Comprehensive assessment of the scaffolds included physicochemical properties, drug release, cell viability, and osteogenic potential. The scaffold's architecture, confirmed by Scanning electron microscopy (SEM) analysis, effectively emulated the natural extracellular matrix (ECM). Energy Dispersive X-ray Spectroscopy (EDX) and Fourier Transform Infrared Spectroscopy (FTIR) analyses verified the successful integration of BG and BCM, while UV–Vis spectroscopy demonstrated controlled BCM release. Both BG and BCM scaffolds notably enhanced osteoblast differentiation, as evident with Alizarin red staining. The combined use of BG and BCM in scaffolds synergistically promoted osteogenic differentiation and viability of MC3T3-E1 cells. Furthermore, these scaffolds significantly increased the expression of Bone Sialoprotein (BSP), Osteocalcin (OCN), and Runt-related transcription factor 2 (RUNX2) which indicate increase in osteogenic differentiation. This study provides evidence for advanced scaffold systems that can guide cell responses for effective bone tissue regeneration.
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先进的3D仿生支架与生物活性玻璃和骨条件培养基增强成骨
本研究的重点是开发和评估三维仿生纤维支架,以促进成骨细胞分化和骨组织再生。利用协同方法,通过同轴静电纺丝在纤维支架内划分生物和化学因素。生物活性玻璃(BG)用于骨传导,骨条件培养基(BCM)用于骨诱导。利用成骨前细胞研究了从羊骨芯片中提取的BCM的最佳浓度。对支架的综合评价包括物理化学性质、药物释放、细胞活力和成骨潜能。扫描电镜(SEM)分析证实,支架的结构有效地模拟了天然细胞外基质(ECM)。能量色散x射线光谱(EDX)和傅里叶变换红外光谱(FTIR)分析证实了BG和BCM的成功整合,而紫外可见光谱显示了BCM的可控释放。茜素红染色显示,BG和BCM支架均显著增强成骨细胞分化。在支架中联合使用BG和BCM可协同促进MC3T3-E1细胞的成骨分化和活力。此外,骨唾液蛋白(Bone Sialoprotein, BSP)、骨钙素(Osteocalcin, OCN)和runt相关转录因子2 (RUNX2)的表达显著增加,表明成骨分化增强。这项研究为先进的支架系统提供了证据,可以引导细胞反应,有效地进行骨组织再生。
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来源期刊
CiteScore
17.80
自引率
0.00%
发文量
501
审稿时长
27 days
期刊介绍: Biomaterials Advances, previously known as Materials Science and Engineering: C-Materials for Biological Applications (P-ISSN: 0928-4931, E-ISSN: 1873-0191). Includes topics at the interface of the biomedical sciences and materials engineering. These topics include: • Bioinspired and biomimetic materials for medical applications • Materials of biological origin for medical applications • Materials for "active" medical applications • Self-assembling and self-healing materials for medical applications • "Smart" (i.e., stimulus-response) materials for medical applications • Ceramic, metallic, polymeric, and composite materials for medical applications • Materials for in vivo sensing • Materials for in vivo imaging • Materials for delivery of pharmacologic agents and vaccines • Novel approaches for characterizing and modeling materials for medical applications Manuscripts on biological topics without a materials science component, or manuscripts on materials science without biological applications, will not be considered for publication in Materials Science and Engineering C. New submissions are first assessed for language, scope and originality (plagiarism check) and can be desk rejected before review if they need English language improvements, are out of scope or present excessive duplication with published sources. Biomaterials Advances sits within Elsevier''s biomaterials science portfolio alongside Biomaterials, Materials Today Bio and Biomaterials and Biosystems. As part of the broader Materials Today family, Biomaterials Advances offers authors rigorous peer review, rapid decisions, and high visibility. We look forward to receiving your submissions!
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