口服仿生金属多酚纳米酶具有四重保护肠道内稳态作用,可改善溃疡性结肠炎。

Orally biomimetic metal-phenolic nanozyme with quadruple safeguards for intestinal homeostasis to ameliorate ulcerative colitis.

机构信息

Department of Thoracic Surgery, the First Affiliated Hospital of Xi'an Jiaotong University, Xi'an, Shaanxi, 710061, China.

Department of Pharmacology, School of Basic Medical Sciences, Xi'an Jiaotong University Health Science Center, Xi'an, Shaanxi, 710061, China.

出版信息

J Nanobiotechnology. 2024 Sep 6;22(1):545. doi: 10.1186/s12951-024-02802-z.

Abstract

BACKGROUND

Ulcerative colitis (UC) is defined by persistent inflammatory processes within the gastrointestinal tract of uncertain etiology. Current therapeutic approaches are limited in their ability to address oxidative stress, inflammation, barrier function restoration, and modulation of gut microbiota in a coordinated manner to maintain intestinal homeostasis.

RESULTS

This study involves the construction of a metal-phenolic nanozyme (Cur-Fe) through a ferric ion-mediated oxidative coupling of curcumin. Cur-Fe nanozyme exhibits superoxide dismutase (SOD)-like and •OH scavenging activities, demonstrating significant anti-inflammatory and anti-oxidant properties for maintaining intracellular redox balance in vitro. Drawing inspiration from Escherichia coli Nissle 1917 (EcN), a biomimetic Cur-Fe nanozyme (CF@EM) is subsequently developed by integrating Cur-Fe into the EcN membrane (EM) to improve the in vivo targeting ability and therapeutic effectiveness of the Cur-Fe nanozyme. When orally administered, CF@EM demonstrates a strong ability to colonize the inflamed colon and restore intestinal redox balance and barrier function in DSS-induced colitis models. Importantly, CF@EM influences the gut microbiome towards a beneficial state by enhancing bacterial diversity and shifting the compositional structure toward an anti-inflammatory phenotype. Furthermore, analysis of intestinal microbial metabolites supports the notion that the therapeutic efficacy of CF@EM is closely associated with bile acid metabolism.

CONCLUSION

Inspired by gut microbes, we have successfully synthesized a biomimetic Cur-Fe nanozyme with the ability to inhibit inflammation and restore intestinal homeostasis. Collectively, without appreciable systemic toxicity, this work provides an unprecedented opportunity for targeted oral nanomedicine in the treatment of ulcerative colitis.

摘要

背景

溃疡性结肠炎(UC)是一种由胃肠道内持续性炎症过程引起的疾病,其病因尚不清楚。目前的治疗方法在协调地解决氧化应激、炎症、屏障功能恢复和调节肠道微生物群以维持肠道内稳态方面能力有限。

结果

本研究通过姜黄素的铁离子介导的氧化偶联构建了一种金属-多酚纳米酶(Cur-Fe)。Cur-Fe 纳米酶具有超氧化物歧化酶(SOD)样和·OH 清除活性,在体外表现出显著的抗炎和抗氧化特性,可维持细胞内氧化还原平衡。受大肠杆菌 Nissle 1917(EcN)的启发,通过将 Cur-Fe 整合到 EcN 膜(EM)中,开发出一种仿生 Cur-Fe 纳米酶(CF@EM),以提高 Cur-Fe 纳米酶的体内靶向能力和治疗效果。当口服给予时,CF@EM 具有强烈的定植发炎结肠的能力,并在 DSS 诱导的结肠炎模型中恢复肠道氧化还原平衡和屏障功能。重要的是,CF@EM 通过增强细菌多样性和将组成结构转向抗炎表型来影响肠道微生物组,使其向有益状态转变。此外,肠道微生物代谢物的分析支持 CF@EM 的治疗效果与胆汁酸代谢密切相关的观点。

结论

受肠道微生物的启发,我们成功合成了一种具有抑制炎症和恢复肠道内稳态能力的仿生 Cur-Fe 纳米酶。总的来说,在没有明显全身毒性的情况下,这项工作为溃疡性结肠炎的靶向口服纳米医学治疗提供了一个前所未有的机会。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5273/11378530/e885a0cc28c5/12951_2024_2802_Fig1_HTML.jpg

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