Pharmacological properties of Bergenia ciliata synthesized green zinc sulfide nanoparticles (ZnS-NPs) and zinc oxide nanoparticles (ZnO-NPs).

IF 3.6 3区 生物学 Q2 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Hamza Tariq, Muhammad Usman Zahid, Bilal Qadeer, Ahmad M Alharbi, Abdulelah Aljuaid, Khalid Jambi, Nouman Rasheed Jatoi, Samah H Abu-Hussien, Muhammad Aslam Khan, Syed Ali Imran Bokhari
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引用次数: 0

Abstract

The conventional physical and chemical synthesis of nanomaterials is associated with multiple disadvantages, such as high energy consumption, high cost, time consumption, and the use of toxic chemicals that are not only hazardous in the manufacturing setup but are also harmful to the environment. To overcome such limitations, phytofabrication, i.e., the use of plants for the synthesis of nanoparticles is considered preferred as it is an inexpensive, sustainable, non-toxic, eco-friendly, and green approach. The current study aims to explore and compare the biological properties of green synthesized zinc oxide and zinc sulfide nanoparticles. The materials are prepared using eco-friendly chemistry, using an aqueous herbal extract of Bergenia ciliata. The materials are then subjected to comprehensive characterization techniques and biological studies using antibacterial, antifungal, antiparasitic, anticancer, antioxidant, and biocompatibility studies. Our comprehensive evaluation reveals that green-synthesized ZnS-NPs demonstrate superior antibacterial and anticancer properties compared to ZnO-NPs. Specifically, ZnS-NPs induced significant zones of inhibition (ZOI) of 24 ± 1.2 and 22 ± 0.8 mm against B. subtilis and E. coli, respectively, with a minimum inhibitory concentration (MIC) of 1.125 mg/mL. In contrast, ZnO-NPs displayed better dispersion behavior, along with enhanced antioxidant, antiparasitic, and antidiabetic activities. Notably, ZnO-NPs significantly inhibited both amastigote and promastigote forms of Leishmania tropica (KWH23), with MICs of 112 and 135 µg/mL, respectively, highlighting their strong therapeutic potential against leishmaniasis. However, none of the samples exhibit antifungal properties as they fail to inflict any zone of inhibition against the tested fungal strains. We thus conclude that the B. ciliata synthesized green ZnS-NPs and ZnO-NPs exhibit distinct but excellent therapeutic properties and that both the synthesized materials have the potential to be further explored in in vitro and in vivo studies.

毛缕草合成绿色硫化锌纳米粒子(ZnS-NPs)和氧化锌纳米粒子(ZnO-NPs)的药理学性质
传统的物理和化学合成纳米材料具有多种缺点,如高能耗、高成本、耗时,以及使用有毒化学物质,这些化学物质不仅在制造过程中有害,而且对环境有害。为了克服这些限制,植物制造,即利用植物合成纳米粒子被认为是首选,因为它是一种廉价、可持续、无毒、生态友好和绿色的方法。本研究旨在探索和比较绿色合成氧化锌纳米粒子和硫化锌纳米粒子的生物学特性。这些材料是用生态友好的化学方法制备的,使用的是毛缕草的水提取物。然后对这些材料进行全面的表征技术和生物学研究,包括抗菌、抗真菌、抗寄生虫、抗癌、抗氧化和生物相容性研究。我们的综合评价表明,与ZnO-NPs相比,绿色合成的ZnS-NPs具有更好的抗菌和抗癌性能。其中,ZnS-NPs对枯草芽孢杆菌和大肠杆菌的显著抑制区(ZOI)分别为24±1.2和22±0.8 mm,最小抑制浓度(MIC)为1.125 mg/mL。相比之下,ZnO-NPs表现出更好的分散行为,并具有增强的抗氧化、抗寄生虫和抗糖尿病活性。值得注意的是,ZnO-NPs显著抑制热带利什曼原虫(KWH23)的无马鞭毛体和原马鞭毛体形式,mic分别为112和135µg/mL,突出了它们对利什曼病的强大治疗潜力。然而,没有一个样品表现出抗真菌特性,因为它们不能对测试的真菌菌株施加任何区域的抑制。综上所述,毛纤毛虫合成的绿色ZnS-NPs和ZnO-NPs具有不同但优异的治疗性能,这两种合成材料在体外和体内研究中都有进一步探索的潜力。
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来源期刊
Bioprocess and Biosystems Engineering
Bioprocess and Biosystems Engineering 工程技术-工程:化工
CiteScore
7.90
自引率
2.60%
发文量
147
审稿时长
2.6 months
期刊介绍: Bioprocess and Biosystems Engineering provides an international peer-reviewed forum to facilitate the discussion between engineering and biological science to find efficient solutions in the development and improvement of bioprocesses. The aim of the journal is to focus more attention on the multidisciplinary approaches for integrative bioprocess design. Of special interest are the rational manipulation of biosystems through metabolic engineering techniques to provide new biocatalysts as well as the model based design of bioprocesses (up-stream processing, bioreactor operation and downstream processing) that will lead to new and sustainable production processes. Contributions are targeted at new approaches for rational and evolutive design of cellular systems by taking into account the environment and constraints of technical production processes, integration of recombinant technology and process design, as well as new hybrid intersections such as bioinformatics and process systems engineering. Manuscripts concerning the design, simulation, experimental validation, control, and economic as well as ecological evaluation of novel processes using biosystems or parts thereof (e.g., enzymes, microorganisms, mammalian cells, plant cells, or tissue), their related products, or technical devices are also encouraged. The Editors will consider papers for publication based on novelty, their impact on biotechnological production and their contribution to the advancement of bioprocess and biosystems engineering science. Submission of papers dealing with routine aspects of bioprocess engineering (e.g., routine application of established methodologies, and description of established equipment) are discouraged.
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