纳米zno包埋明胶/海藻酸盐生物支架通过氧化应激调节和ECM模拟的潜在皮肤组织再生的开发

IF 3.2 4区 生物学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY
Biopolymers Pub Date : 2025-08-23 DOI:10.1002/bip.70046
Marija M. Babić Radić, Martina Žabčić, Marija Vukomanović, Jasmina Nikodinović-Runić, Dušan Milivojević, Vuk Filipović, Simonida Tomić
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引用次数: 0

摘要

用于高级皮肤组织再生的生物材料工程需要优化关键参数,包括互联多孔结构、生物材料稳定性、亲水性、生物相容性和生物活性。这些特征使皮肤组织微环境的模仿和支持再生过程的关键阶段,这是有效的组织修复的关键。成功的皮肤组织再生的另一个重要要求是氧化应激的调节,因为活性氧(ROS)在皮肤损伤部位的过度积累会阻碍愈合并导致慢性炎症和瘢痕形成。为了解决这些挑战,我们提出了一种还原治疗方法,通过开发生物来源的支架来复制天然细胞外基质(ECM),中和ROS水平,并在结构和分子水平上积极促进组织再生。这些纳米zno包埋的明胶/海藻酸盐生物支架通过简单的交联反应制备,并负载精心挑选的具有抗氧化和皮肤组织再生潜力的活性剂。生物支架的表征研究证实其多孔互联形态具有可调的孔隙率(92%-94%)、机械强度(1.95-3.22 MPa)、亲水性、与皮肤组织的稳定粘附以及清除ros的活性。此外,该生物支架还显示出槲皮素、尿囊素和咖啡酸的同步释放,并且在体外对人成纤维细胞(MRC5)和体内对秀丽隐杆线虫的生物相容性。总的来说,这些发现为多功能生物支架的设计提供了有价值的见解,作为一种有前途的皮肤组织再生治疗平台,它同时调节氧化应激,复制ECM结构,刺激愈合级联,最终增强皮肤组织修复和减少疤痕。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Development of Nano ZnO-Embedded Gelatin/Alginate Bioscaffolds for Potential Skin Tissue Regeneration via Oxidative Stress Modulation and ECM Mimicry

Development of Nano ZnO-Embedded Gelatin/Alginate Bioscaffolds for Potential Skin Tissue Regeneration via Oxidative Stress Modulation and ECM Mimicry

Engineering of biomaterials for advanced skin tissue regeneration requires optimization of critical parameters including interconnected porous structure, biomaterial stability, hydrophilicity, biocompatibility, and bioactivity. These features enable the mimicry of the skin tissue microenvironment and support the key phases of the regeneration process, which are crucial for effective tissue repair. Another important requirement for successful skin tissue regeneration is the modulation of oxidative stress, as excessive accumulation of reactive oxygen species (ROS) at the site of the skin lesion can hinder healing and cause chronic inflammation and scarring. To address these challenges, we propose a reductionist therapeutic approach to skin tissue regeneration by developing bio-sourced scaffolds that replicate the native extracellular matrix (ECM), neutralize ROS levels, and actively promote tissue regeneration at both structural and molecular levels. These nano ZnO-embedded gelatin/alginate bioscaffolds were prepared via a simple crosslinking reaction and loaded with carefully selected active agents with antioxidant and skin tissue regenerative potential. Characterization studies of the bioscaffolds confirmed their porous interconnected morphology with tunable porosity (92%–94%), mechanical strength (1.95–3.22 MPa), hydrophilicity, stable adhesion to skin tissue, and ROS-scavenging activity. Additionally, the bioscaffolds demonstrated simultaneous release of quercetin, allantoin, and caffeic acid, and both biocompatibility—in vitro on human fibroblasts (MRC5) and in vivo on Caenorhabditis elegans. Overall, these findings provide valuable insight into the design of multifunctional bioscaffolds as a promising therapeutic platform for skin tissue regeneration application, which simultaneously modulates oxidative stress, replicates ECM architecture, and stimulates the healing cascade, ultimately enhancing skin tissue repair and reducing scarring.

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来源期刊
Biopolymers
Biopolymers 生物-生化与分子生物学
CiteScore
5.30
自引率
0.00%
发文量
48
审稿时长
3 months
期刊介绍: Founded in 1963, Biopolymers publishes strictly peer-reviewed papers examining naturally occurring and synthetic biological macromolecules. By including experimental and theoretical studies on the fundamental behaviour as well as applications of biopolymers, the journal serves the interdisciplinary biochemical, biophysical, biomaterials and biomedical research communities.
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