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特刊:真菌纳米技术2

Special Issue: Fungal Nanotechnology 2.

作者信息

Abd-Elsalam Kamel A

机构信息

Plant Pathology Research Institute, Agricultural Research Centre, Giza 12619, Egypt.

出版信息

J Fungi (Basel). 2023 May 11;9(5):553. doi: 10.3390/jof9050553.

Abstract

Fungal nanotechnology provides techniques useful for molecular and cell biology, medicine, biotechnology, agriculture, veterinary physiology, and reproduction. This technology also has exciting potential applications in pathogen identification and treatment, as well as impressive outcomes in the animal and food systems. Myconanotechnology is a viable option for the synthesis of green nanoparticles because it is simple, affordable, and more environmentally friendly to use fungal resources. Mycosynthesis nanoparticles can be used for various purposes, such as pathogen detection and diagnosis, control, wound healing, drug delivery, cosmetics, food preservation, and textile fabrics, among other applications. They can be applied to a variety of industries, such as agriculture, manufacturing, and medicine. Gaining deeper comprehension of the molecular biology and genetic components underlying the fungal nanobiosynthetic processes is becoming increasingly important. This Special Issue aims to showcase recent advancements in invasive fungal diseases caused by human, animal, plant, and entomopathogenic fungi that are being identified, treated, and treated using antifungal nanotherapy. Utilizing fungus in nanotechnology has several benefits, such as their capacity to create nanoparticles with distinctive characteristics. As an illustration, some fungi can create nanoparticles that are highly stable, biocompatible, and have antibacterial capabilities. Fungal nanoparticles may be used in a variety of industries, including biomedicine, environmental cleanup, and food preservation. Fungal nanotechnology is also a sustainable and environmentally beneficial method. Fungi are an appealing alternative to conventional chemical methods of creating nanoparticles because they are simple to cultivate using affordable substrates and may be cultivated under diverse conditions.

摘要

真菌纳米技术提供了对分子生物学、细胞生物学、医学、生物技术、农业、兽医学和生殖学有用的技术。这项技术在病原体鉴定和治疗方面也有令人兴奋的潜在应用,以及在动物和食品系统中取得了令人瞩目的成果。真菌纳米技术是合成绿色纳米颗粒的可行选择,因为利用真菌资源简单、经济且更环保。真菌合成的纳米颗粒可用于各种目的,如病原体检测与诊断、控制、伤口愈合、药物递送、化妆品、食品保鲜和纺织面料等其他应用。它们可应用于多种行业,如农业、制造业和医学。深入了解真菌纳米生物合成过程背后的分子生物学和遗传成分变得越来越重要。本期特刊旨在展示由人类、动物、植物和昆虫病原真菌引起的侵袭性真菌疾病在诊断、治疗以及使用抗真菌纳米疗法治疗方面的最新进展。在纳米技术中利用真菌有几个好处,比如它们有能力制造具有独特特性的纳米颗粒。例如,一些真菌可以制造出高度稳定、生物相容性好且具有抗菌能力的纳米颗粒。真菌纳米颗粒可用于包括生物医学、环境清理和食品保鲜在内的多种行业。真菌纳米技术也是一种可持续且对环境有益的方法。真菌是传统化学方法制造纳米颗粒的有吸引力替代方案,因为它们使用经济实惠的底物易于培养,并且可以在不同条件下培养。

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本文引用的文献

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Myconanoparticles: synthesis and their role in phytopathogens management.真菌纳米颗粒:合成及其在植物病原体管理中的作用。
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