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载生物合成金属纳米颗粒壳聚糖纳米复合材料的制备及其治疗研究。

Fabrication of chitosan nanocomposites loaded with biosynthetic metallic nanoparticles and their therapeutic investigation.

机构信息

Department of Pharmacognosy, Goa College of Pharmacy, Goa University, Goa, 403 001, India.

Department of Botany, A.V.V.M. Sri Pushpam College (Autonomous), Poondi (Affiliated to Bharathidasan University), 613 503, India.

出版信息

Environ Res. 2023 Oct 1;234:116609. doi: 10.1016/j.envres.2023.116609. Epub 2023 Jul 10.

DOI:10.1016/j.envres.2023.116609
PMID:37437861
Abstract

The present research demonstrates the formation of zinc oxide nanoparticles facilitated by Cissus quadrangularis (CQ-ZnONPs) and subsequent synthesis of chitosan-conjugated nanocomposites (CQ-CS/ZnONCs) along with their biological assessment. The biosynthesized nanoparticles and nanocomposites were physicochemically characterized and therapeutically assessed for their antioxidant, antibacterial, and antidiabetic potential. The formation of CQ-ZnONPs and CQ-CS/ZnONCs was preliminarily validated by the change in color and subsequently by UV-visible spectroscopic analysis. The crystalline peaks associated with the CQ-ZnONPs in CQ-CS/ZnONCs were established by XRD analysis. Morphological evaluation of CQ-ZnONPs and CQ-CS/ZnONCs was carried out through FE-SEM and HRTEM studies. The particle size of the CQ-ZnONPs and CQ-CS/ZnONCs was 243.3 nm and 176.6 nm, with a PDI of 0.188 and 0.199, respectively. Nanoparticles and nanocomposites expressed Zeta potential of -15.7 mV and -16.2 mV, respectively. The CQ-ZnONPs and CQ-CS/ZnONCs showed good radical effectiveness with various in-vitro assays. The formulated nanoparticles and nanocomposites displayed significant antibacterial activity against the selected bacterial pathogens. CQ-CS/ZnONCs presented noteworthy α-amylase and α-glucosidase inhibitory effects compared to CQ-ZnONPs with IC of 73.66 ± 1.21 μg/mL and 87.59 ± 1.29 μg/mL, respectively. Moreover, the synthesized CQ-CS/ZnONCs demonstrated 98.92 ± 0.39% and 99.58 ± 0.16% wound contraction (at 7 and 14 mg, respectively), significantly (p < 0.05) higher than the standard and CQ-ZnONPs. Thus, the CQ-ZnONPs and CQ-CS/ZnONCs could effectively develop promising drug delivery systems to inhibit pathogens and chronic tissue repair.

摘要

本研究通过菝葜(CQ-ZnONPs)促进氧化锌纳米粒子的形成,随后合成壳聚糖接枝纳米复合材料(CQ-CS/ZnONCs),并对其进行生物评估。通过物理化学特性和抗氧化、抗菌和抗糖尿病潜力对生物合成的纳米粒子和纳米复合材料进行了治疗评估。CQ-ZnONPs 和 CQ-CS/ZnONCs 的形成通过颜色变化初步验证,随后通过紫外可见光谱分析进行验证。通过 XRD 分析确定了 CQ-CS/ZnONCs 中与 CQ-ZnONPs 相关的晶峰。通过 FE-SEM 和 HRTEM 研究对 CQ-ZnONPs 和 CQ-CS/ZnONCs 的形态进行了评估。CQ-ZnONPs 和 CQ-CS/ZnONCs 的粒径分别为 243.3nm 和 176.6nm,PDI 分别为 0.188 和 0.199。纳米粒子和纳米复合材料的 Zeta 电位分别为-15.7mV 和-16.2mV。CQ-ZnONPs 和 CQ-CS/ZnONCs 在各种体外试验中均表现出良好的自由基效果。所配制的纳米粒子和纳米复合材料对选定的细菌病原体表现出显著的抗菌活性。与 CQ-ZnONPs 相比,CQ-CS/ZnONCs 对α-淀粉酶和α-葡萄糖苷酶具有显著的抑制作用,IC 分别为 73.66±1.21μg/mL 和 87.59±1.29μg/mL。此外,合成的 CQ-CS/ZnONCs 在 7 和 14mg 时分别表现出 98.92±0.39%和 99.58±0.16%的伤口收缩率,明显高于标准品和 CQ-ZnONPs(p<0.05)。因此,CQ-ZnONPs 和 CQ-CS/ZnONCs 可以有效地开发有前途的药物输送系统,以抑制病原体和慢性组织修复。

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