抗菌活性和细胞存活能力的比较研究--以二元 Ag-ZnO 纳米复合粒子为装饰的氨基化纳米纤维素晶体

IF 6.2 Q1 CHEMISTRY, APPLIED
Md.Sohel Rana , Md.Ahasanur Rabbi , Mst.Ferdousi Begum , S.Manjura Hoque , Md.Mahbubor Rahman , Md.Abdur Rahman , Hasan Ahmad
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引用次数: 0

摘要

本研究旨在制备细胞毒性较低的生物相容性胺化纳米结晶纤维素(NCC)装饰 Ag-ZnO 纳米复合颗粒。为此,研究人员采用生稻草作为纤维素的主要来源。从当地农田收集的生稻草首先经过碱处理,然后漂白以去除非纤维素成分。用 60% (v/v) H2SO4 进行酸性水解,可产生微小的球形(147 nm)和少量针形(96 nm)颗粒,结晶指数最高(77%)。这种被称为纳米结晶纤维素(NCC)的超小型颗粒在通过原位绿色共还原协议装饰二元 Ag-ZnO 纳米颗粒(NPs)之前被胺官能化。被命名为 NCCNH2@Ag-ZnO 的纳米复合材料中 Ag-ZnO NPs 的结晶度和价态均保持良好。研究人员对 Ag-ZnO NPs、NCC@Ag-ZnO 和 NCCNH2@Ag-ZnO 纳米复合材料的抗菌活性和细胞活力(针对盐水虾卵,即 Artemia salina)进行了比较研究。由于 NCCNH2 上存在多个配位位点,NCCNH2@Ag-ZnO 纳米复合粒子的稳定网络显示出最低的抗菌活性和细胞毒性。因此,NCCNH2@Ag-ZnO 纳米复合材料在伤口愈合/敷料、消毒剂和食品包装中的应用相对安全。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Aminated nano-crystalline cellulose decorated binary Ag-ZnO nanocomposite particles with a comparative study of antimicrobial activity and cell viability

Aminated nano-crystalline cellulose decorated binary Ag-ZnO nanocomposite particles with a comparative study of antimicrobial activity and cell viability
In this research, the objective is to prepare cytotoxically less active biocompatible aminated nanocrystalline cellulose (NCC) decorated Ag-ZnO nanocomposite particles. For this, raw rice (Oryza sativa) straw is employed as a primary source of cellulose. The raw rice straw collected from local agricultural field is first exposed to alkali treatment and subsequent bleaching to remove non-cellulosic components. Acid hydrolysis with 60 % (v/v) H2SO4 produced tiny spherical (147 nm) as well as few needle-shape (96 nm) particles with the highest crystalline index (77 %). The ultra-small particles, termed as nanocrystalline cellulose (NCC), are amine functionalized before decorating binary Ag-ZnO nanoparticles (NPs) following an in-situ green co-reduction protocol. The crystallinity and valence states of Ag-ZnO NPs in the nanocomposite, named as NCCNH2@Ag-ZnO, are well maintained. A comparative study of antimicrobial activity and cell viability (against brine shrimp eggs i.e., Artemia salina) among Ag-ZnO NPs, NCC@Ag-ZnO and NCCNH2@Ag-ZnO nanocomposites is carried out. Due to the presence of multiple coordination sites on NCCNH2, the stable network of NCCNH2@Ag-ZnO nanocomposite particles showed the minimum antimicrobial activity and cytotoxicity. Hence, the NCCNH2@Ag-ZnO nanocomposite would be relatively safe for use in wound healing/dressing materials, disinfectants and food packaging.
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8.70
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