Decorated of Silver Nanoparticles Over Lignin-Chitosan Composite: Evaluating its Effectiveness in Reducing Nitro Compounds and Amelioration the Antibiotic-Associated Diarrhea Induced by Lincomycin Hydrochloride in Rats via Following the MAPK Signaling Pathways

IF 4.7 3区 工程技术 Q2 ENGINEERING, ENVIRONMENTAL
Jing Wen
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Abstract

This research presents an innovative strategy for the design and synthesis of a cross-linked hydrogel polymer matrix based on lignin-chitosan biopolymers (Lig-CS), which is utilized to encapsulate silver nanoparticles, forming a distinctive bio-nanocomposite. The hydrogel structure of Lig-CS was developed through hydrogen bonding and further cross-linked with glutaraldehyde, creating a natural framework that acts as a stabilizing, reducing, and stabilizing agent for the incorporation of silver nanoparticles (Lig-CS/Ag NPs) under ultrasonic irradiation. Various advanced techniques, including UV–vis, FE-SEM, TEM, EDX, FT-IR, ICP-OES, TGA, and XRD confirmed the well synthesis of the Lig-CS/Ag NPs composite. TEM analysis indicated that the silver nanoparticles were spherical, uniformly distributed, and approximately 10–15 nm in size. Additionally, the catalytic efficiency of Lig-CS/Ag NPs was assessed in reducing nitroarenes to produce aniline derivatives. The nanocatalyst demonstrated excellent recyclability, retaining its activity after more than nine cycles with only a slight decrease in efficiency. In addition, the Lig-CS/Ag NPs nanocomposite was engaged in biological assays like study of antioxidant properties by DPPH mediated free radical scavenging test and treating the diarrhea in rats. These Lig-CS/Ag NPs nanocomposite exhibited a decrease in the inflammatory cells infiltration in both the colon and ileum. Moreover, they resulted in lower concentrations of TNF-α, IL-17A, IL-6, and IL-1β, while simultaneously increasing the levels of IL-10 and IL-4 in the colon tissues. Additionally, the nanoparticles promoted the propionate and acetate production, modulated the composition and diversity of gut microbiota, enhanced the relative abundance of Bacteroides and Lactobacillus, and reduced the Coprococcus and Blautia relative abundance. The data reported that Lig-CS/Ag NPs nanocomposite may significantly improve the restoration of intestinal architecture in rats, reduce the levels of inflammatory cytokines, increase concentrations of SCFAs, aid in the recovery of intestinal mucosal barrier and the gut microbiota, and alleviate antibiotic-associated negative efficacies, including diarrhea and microbiota dysbiosis. Our investigation revealed that Lig-CS/Ag NPs nanocomposite has the potential to protect the intestinal barrier by enhancing the Claudin-1 and Occludin expression. Additionally, these nanoparticles were observed to suppress the MAPK inflammatory signaling pathway, which contributes to the amelioration of inflammatory conditions. Upon the conclusion of clinical trial studies, these nanoparticles could represent a new remedial approach for the diarrhea treatment in humans.

Abstract Image

本研究提出了一种基于木质素-壳聚糖生物聚合物(Lig-CS)的交联水凝胶聚合物基质的创新设计和合成策略,利用这种基质封装银纳米粒子,形成一种独特的生物纳米复合材料。Lig-CS 的水凝胶结构是通过氢键形成的,并与戊二醛进一步交联,形成一个天然框架,在超声波辐照下作为银纳米粒子(Lig-CS/Ag NPs)的稳定剂、还原剂和稳定剂。UV-vis, FE-SEM, TEM, EDX, FT-IR, ICP-OES, TGA 和 XRD 等多种先进技术证实了 Lig-CS/Ag NPs 复合材料的良好合成。TEM 分析表明,银纳米粒子呈球形,分布均匀,大小约为 10-15 nm。此外,还评估了 Lig-CS/Ag NPs 在还原硝基arenes 生成苯胺衍生物过程中的催化效率。该纳米催化剂表现出卓越的可循环性,在超过九次循环后仍能保持其活性,且效率仅略有下降。此外,Lig-CS/Ag NPs 纳米复合材料还参与了生物试验,如通过 DPPH 介导的自由基清除试验研究其抗氧化特性,以及治疗大鼠腹泻。这些 Lig-CS/Ag NPs 纳米复合材料减少了结肠和回肠中的炎症细胞浸润。此外,它们还降低了结肠组织中 TNF-α、IL-17A、IL-6 和 IL-1β 的浓度,同时提高了 IL-10 和 IL-4 的水平。此外,纳米颗粒还促进了丙酸盐和醋酸盐的产生,调节了肠道微生物群的组成和多样性,提高了乳酸杆菌和乳酸杆菌的相对丰度,降低了Coprococcus和Blautia的相对丰度。数据显示,Lig-CS/Ag NPs 纳米复合材料可显著改善大鼠肠道结构的恢复,降低炎性细胞因子的水平,增加 SCFAs 的浓度,帮助肠道粘膜屏障和肠道微生物群的恢复,并减轻抗生素相关的负作用,包括腹泻和微生物群失调。我们的研究发现,Lig-CS/Ag NPs 纳米复合材料可通过增强 Claudin-1 和 Occludin 的表达来保护肠道屏障。此外,还观察到这些纳米粒子能抑制 MAPK 炎症信号通路,从而有助于改善炎症状况。临床试验研究结束后,这些纳米粒子将成为治疗人类腹泻的一种新的补救方法。
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来源期刊
Journal of Polymers and the Environment
Journal of Polymers and the Environment 工程技术-高分子科学
CiteScore
9.50
自引率
7.50%
发文量
297
审稿时长
9 months
期刊介绍: The Journal of Polymers and the Environment fills the need for an international forum in this diverse and rapidly expanding field. The journal serves a crucial role for the publication of information from a wide range of disciplines and is a central outlet for the publication of high-quality peer-reviewed original papers, review articles and short communications. The journal is intentionally interdisciplinary in regard to contributions and covers the following subjects - polymers, environmentally degradable polymers, and degradation pathways: biological, photochemical, oxidative and hydrolytic; new environmental materials: derived by chemical and biosynthetic routes; environmental blends and composites; developments in processing and reactive processing of environmental polymers; characterization of environmental materials: mechanical, physical, thermal, rheological, morphological, and others; recyclable polymers and plastics recycling environmental testing: in-laboratory simulations, outdoor exposures, and standardization of methodologies; environmental fate: end products and intermediates of biodegradation; microbiology and enzymology of polymer biodegradation; solid-waste management and public legislation specific to environmental polymers; and other related topics.
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