Multifunctional hydrogel targeting senescence to accelerate diabetic wound healing through promoting angiogenesis.

IF 12.6 1区 生物学 Q1 BIOTECHNOLOGY & APPLIED MICROBIOLOGY Journal of Nanobiotechnology Pub Date : 2025-03-06 DOI:10.1186/s12951-025-03274-5
Hao Yang, Yongfei Chen, Yanchao Rong, Yuxi Zhou, Shuting Li, Xiaohui Li, Honglin Wu, Dongming Lv, Xiaoling Cao, Peng Wang, Jiayuan Zhu, Bing Tang, Zhicheng Hu
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Abstract

Diabetic wound healing remains a significant clinical challenge because of hyperglycaemia-induced cellular senescence, impaired angiogenesis, and chronic inflammation. To address these issues, we developed a multifunctional hydrogel (GelMA/PNS/Alg@IGF-1) that integrates gelatine methacryloyl (GelMA), Panax notoginseng saponins (PNS), and sodium alginate microspheres encapsulating insulin-like growth factor-1 (IGF-1). This hydrogel was engineered to achieve gradient and sustained release of bioactive agents to target senescence and promote vascular repair. In vitro studies demonstrated that the hydrogel significantly reduced oxidative stress, suppressed senescence markers and senescence-associated secretory phenotypes, and restored endothelial cell function under high-glucose conditions by inhibiting NF-κB pathway activation. Transcriptomic analysis revealed the modulation of pathways linked to inflammation, apoptosis, and angiogenesis. This hydrogel accelerated diabetic wound closure in a rat model in vivo and enhanced collagen deposition, granulation tissue formation, and neovascularization. Furthermore, the hydrogel mitigated oxidative stress and cellular senescence and promoted tissue remodelling. The synergistic effects of PNS and IGF-1 within the hydrogel established a pro-regenerative microenvironment to address both pathological ageing and vascular dysfunction. These findings highlight GelMA/PNS/Alg@IGF-1 as a promising therapeutic platform for diabetic wound management, as this material offers dual anti-senescence and proangiogenic efficacy to overcome the complexities of chronic wound healing.

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针对衰老的多功能水凝胶通过促进血管生成来加速糖尿病伤口愈合。
由于高血糖诱导的细胞衰老、血管生成受损和慢性炎症,糖尿病伤口愈合仍然是一个重大的临床挑战。为了解决这些问题,我们开发了一种多功能水凝胶(GelMA/PNS/Alg@IGF-1),它整合了明胶甲基丙烯酰(GelMA)、三七皂苷(PNS)和海藻酸钠微球,包封胰岛素样生长因子-1 (IGF-1)。该水凝胶被设计用于实现生物活性药物的梯度和持续释放,以针对衰老和促进血管修复。体外研究表明,水凝胶通过抑制NF-κB通路激活,显著降低高糖条件下的氧化应激,抑制衰老标志物和衰老相关分泌表型,恢复内皮细胞功能。转录组学分析揭示了与炎症、细胞凋亡和血管生成相关的通路的调节。这种水凝胶在大鼠体内模型中加速糖尿病伤口愈合,并增强胶原沉积、肉芽组织形成和新生血管。此外,水凝胶减轻氧化应激和细胞衰老,促进组织重塑。PNS和IGF-1在水凝胶中的协同作用建立了一个促进再生的微环境,以解决病理性衰老和血管功能障碍。这些发现突出了GelMA/PNS/Alg@IGF-1作为糖尿病伤口管理的一个有前途的治疗平台,因为这种材料具有抗衰老和促进血管生成的双重功效,以克服慢性伤口愈合的复杂性。
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文献相关原料
公司名称
产品信息
麦克林
methacrylic anhydride
麦克林
Gelatine
麦克林
Anhydrous calcium chloride
麦克林
Panax notoginseng saponins
麦克林
Sodium alginate
麦克林
Methacrylic anhydride
麦克林
Gelatine
麦克林
anhydrous calcium chloride
麦克林
sodium alginate
来源期刊
Journal of Nanobiotechnology
Journal of Nanobiotechnology BIOTECHNOLOGY & APPLIED MICROBIOLOGY-NANOSCIENCE & NANOTECHNOLOGY
CiteScore
13.90
自引率
4.90%
发文量
493
审稿时长
16 weeks
期刊介绍: Journal of Nanobiotechnology is an open access peer-reviewed journal communicating scientific and technological advances in the fields of medicine and biology, with an emphasis in their interface with nanoscale sciences. The journal provides biomedical scientists and the international biotechnology business community with the latest developments in the growing field of Nanobiotechnology.
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