W-GA nanodots restore intestinal barrier functions by regulating flora disturbance and relieving excessive oxidative stress to alleviate colitis

IF 9.4 1区 医学 Q1 ENGINEERING, BIOMEDICAL Acta Biomaterialia Pub Date : 2024-05-21 DOI:10.1016/j.actbio.2024.05.030
Qingrong Li , Cong Zhang , Mengmei Zhu , Jie Shan , Haisheng Qian , Yan Ma , Xianwen Wang
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Abstract

Inflammatory bowel disease (IBD) may arise due to disruption of mucosal barriers as a result of dysregulation of the intestinal flora and excessive oxidative stress. The creation of nanomaterials with only microbiota-regulating effects often leads to inadequate therapeutic outcomes caused by the disruption of a healthy microbial balance and the emergence of tissue harm caused by excessive oxidative stress. This report describes the multifunctional activity of ultrasmall W-GA nanodots, which can precisely regulate the intestinal microbiome by inhibiting the abnormal expansion of Enterobacteriaceae during colitis and alleviating the damage caused by oxidative stress to the reconstructive microflora, ultimately restoring intestinal barrier function. W-GA nanodots have been synthesized through a simple coordination reaction and can be dispersed in various solvents in vitro, demonstrating favorable safety profiles in cells, significant clearance of reactive oxygen and nitrogen species (RONS), and increased cell survival in models of oxidative stress induced by hydrogen peroxide (H2O2). Through oral or intravenous administration, the W-GA nanodots were shown to be highly safe when tested in vivo, and they effectively reduced colon damage in mice with DSS-induced colitis by restoring the integrity of the intestinal barrier. W-GA nanodots have enabled the integration of microflora reprogramming and RONS clearance, creating a potent therapeutic strategy for treating gut inflammation. Consequently, the development of W-GA nanodots represents a promising strategy for enhancing the formation and preservation of the intestinal barrier to treat IBD by suppressing the growth of Enterobacteriaceae, a type of facultative anaerobic bacterium, and facilitating the effective removal of RONS. Ultimately, this leads to the restoration of the intestinal barrier's functionality.

Statement of significance

An increasing number of nanoparticles are under development for treating inflammatory bowel disease. Although they can alleviate inflammation symptoms by regulating reactive oxygen and nitrogen species (RONS) and microbiota, their understanding of the mechanism behind microbiota regulation is limited. This study synthesized W-GA nanodots using a straightforward one-pot synthesis method. Simple synthesis holds significant promise for clinical applications, as it encompasses multiple nanoenzyme functions and also exhibits Enterobacteriaceae inhibitory properties.Thus, it contributes to ameliorating the current medical landscape of inflammatory bowel disease.

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W-GA 纳米点通过调节菌群紊乱和缓解过度氧化应激来恢复肠道屏障功能,从而缓解结肠炎。
炎症性肠病(IBD)可能是由于肠道菌群失调和过度氧化应激导致粘膜屏障破坏而引起的。仅具有微生物调节作用的纳米材料的产生往往会导致治疗效果不佳,因为健康的微生物平衡被破坏,过度氧化应激会对组织造成伤害。本报告介绍了超小型 W-GA 纳米点的多功能活性,它可以通过抑制结肠炎期间肠杆菌的异常扩张来精确调节肠道微生物群,并减轻氧化应激对重建微生物群造成的损害,最终恢复肠道屏障功能。W-GA 纳米点是通过简单的配位反应合成的,可在体外分散于各种溶剂中,在细胞中表现出良好的安全性,能显著清除活性氧和氮物种(RONS),并在过氧化氢(H2O2)诱导的氧化应激模型中提高细胞存活率。通过口服或静脉注射,W-GA 纳米点在体内测试中被证明是高度安全的,它们通过恢复肠道屏障的完整性,有效减少了 DSS 诱导的小鼠结肠炎对结肠的损伤。W-GA 纳米点实现了微生态重编程和 RONS 清除的整合,为治疗肠道炎症创造了一种有效的治疗策略。因此,W-GA 纳米点的开发代表了一种前景广阔的策略,可通过抑制肠杆菌科细菌(一种兼性厌氧细菌)的生长和促进 RONS 的有效清除,增强肠道屏障的形成和保护,从而治疗 IBD。最终,这将恢复肠道屏障的功能。意义说明:目前正在开发越来越多的纳米颗粒来治疗炎症性肠病。虽然它们可以通过调节活性氧和氮物种(RONS)及微生物群来缓解炎症症状,但人们对微生物群调节机制的了解还很有限。本研究采用简单的一锅合成法合成了 W-GA 纳米点。简单的合成方法不仅具有多种纳米酶的功能,还具有抑制肠杆菌科细菌的特性,因此在临床应用方面大有可为。
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来源期刊
Acta Biomaterialia
Acta Biomaterialia 工程技术-材料科学:生物材料
CiteScore
16.80
自引率
3.10%
发文量
776
审稿时长
30 days
期刊介绍: Acta Biomaterialia is a monthly peer-reviewed scientific journal published by Elsevier. The journal was established in January 2005. The editor-in-chief is W.R. Wagner (University of Pittsburgh). The journal covers research in biomaterials science, including the interrelationship of biomaterial structure and function from macroscale to nanoscale. Topical coverage includes biomedical and biocompatible materials.
期刊最新文献
Editorial Board Editorial Board Erratum to “Anti-fibrotic and anti-stricture effects of biodegradable biliary stents braided with dexamethasone-impregnated sheath/core structured monofilaments” [Acta Biomaterialia. Volume 178, 1 April 2024, Pages 137-146] Corrigendum to “Optimizing the cell compatibility and mechanical properties in TiZrNbTa medium-entropy alloy/β-Ti composites through phase transformation” [Acta Biomaterialia. Volume 181, June 2024, Pages 469-482] Association between neural stem/progenitor cells and biomaterials in spinal cord injury therapies: A systematic review and network meta-analysis
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