Mykchaylova Oksana, Negriyko Anatoliy, Matvieieva Nadiia, Lopatko Kostiantyn, Poyedinok Natalia
Department of Translational Medical Bioengineering, National Technical University of Ukraine "Igor Sikorsky Kyiv Polytechnic Institute", Kyiv, Ukraine.
M.G. Kholodny Institute of Botany, National Academy of Sciences of Ukraine, Kyiv, Ukraine.
Bioengineered. 2025 Dec;16(1):2458371. doi: 10.1080/21655979.2025.2458371. Epub 2025 Jan 28.
This article presents new data on the integrated use of colloidal solutions of nanoparticles and low-intensity laser radiation on the biosynthetic activity of the medicinal mushroom . Traditional mycological methods, colloidal solutions of biogenic metals, and unique photobiological methods have also been used. It was found that colloidal solutions of nanoparticles of all metals used increased the growth characteristics of (55-60%), while irradiation of the fungal inoculum with laser light in a medium with nanoparticles reduced the growth activity of mycelia by 12.3-35.4%. Silver nanoparticles (AgNPs) in a nutrient medium suppressed the biosynthesis of extracellular polysaccharides, whereas laser irradiation in the same medium increased the synthesis of intracellular polysaccharides by 9.7 times. Magnesium nanoparticles (MgNPs) and iron nanoparticles (FeNPs) inhibited the synthesis of intracellular polysaccharides in the mycelial mass of . At the same time, laser irradiation of the inoculum with MgNPs, on the contrary, induced a sharp increase in the amount of polysaccharides in the culture liquid (20 times). Treatment of the inoculum in a medium with nanoparticles with a laser caused an intensification of the synthesis of flavonoids in the mycelial mass and an increase in the synthesis of melanin pigments (25-140%). The results obtained suggest the possibility of the complex use of colloidal solutions of Fe, Ag, and Mg nanoparticles and low-intensity laser radiation as environmentally friendly factors for regulating biosynthetic activity in the biotechnology of cultivating the valuable medicinal mushroom .
本文介绍了纳米颗粒胶体溶液与低强度激光辐射联合应用对药用蘑菇生物合成活性影响的新数据。研究还采用了传统的真菌学方法、生物源金属胶体溶液和独特的光生物学方法。结果发现,所有使用的金属纳米颗粒胶体溶液均提高了(55 - 60%)的生长特性,而在含有纳米颗粒的培养基中用激光照射真菌接种物会使菌丝体的生长活性降低12.3 - 35.4%。营养培养基中的银纳米颗粒(AgNPs)抑制细胞外多糖的生物合成,而在相同培养基中进行激光照射则使细胞内多糖的合成增加了9.7倍。镁纳米颗粒(MgNPs)和铁纳米颗粒(FeNPs)抑制了菌丝体中细胞内多糖的合成。与此同时,用MgNPs对接种物进行激光照射,相反地,会使培养液中多糖的含量急剧增加(20倍)。在含有纳米颗粒的培养基中用激光处理接种物会导致菌丝体中黄酮类化合物的合成增强以及黑色素色素的合成增加(25 - 140%)。所得结果表明,铁、银和镁纳米颗粒胶体溶液与低强度激光辐射联合使用,有可能作为环境友好型因素,用于调控珍贵药用蘑菇栽培生物技术中的生物合成活性。