A newly isolated alkaline protease-producing myxobacterium was isolated from soil. The strain was identified as sp. S252 on the basis of 16S rRNA sequence analysis. The extracellular alkaline proteases produced by isolate S252 (PyCP) was optimally active in the pH range of 11.0-12.0 and temperature range of 40-50°C The zymogram of PyCP showed six caseinolytic protease bands. The proteases were stable in the pH range of 8.0-10.0 and temperature range of 40-50°C. The activity of PyCP was enhanced in the presence of Na, Mg, Cu, Tween-20, and hydrogen peroxide (HO) (hydrogen peroxide), whereas in Triton X-100, glycerol, ethylenediaminetetraacetic acid (EDTA), and Co, it was stable. PyCP showed a potential in various applications. The addition of PyCP in the commercial detergent enhanced the wash performance of the detergent by efficiently removing the stains of tomato ketchup and coffee. PyCP efficiently hydrolyzed the gelatin layer on X-ray film to release the embedded silver. PyCP also showed potent dehairing of goat skin and also efficiently deproteinized sea shell waste indicating its application in chitin extraction. Thus, the results of the present study indicate that sp. S252 proteases have the potential to be used as an ecofriendly replacement of chemicals in several industrial processes.
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http://dx.doi.org/10.3389/fmicb.2021.722719 | DOI Listing |
This study was focused on the development of ZnO nanostructures for the efficient oxidation of erythrosine dye and for studying the antibacterial activity of ZnO. It was observed that the phytochemicals from leaves modified the size, shape, crystalline properties and surface chemical composition of the ZnO nanostructures. ZnO nanostructures synthesized with 15 mL leaves extract (S-15) demonstrated highly efficient oxidation of erythrosine dye under the illumination of natural sunlight.
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January 2025
Department of Mechanical Engineering, Hanbat National University, Daejeon, Korea 34518. Electronic address:
This study investigated the effectiveness of Racomitrium canescens in the removal of particulate matter (PM) under controlled flow and humidity conditions. PM pollution is a major environmental and public health concern and exposure to PM is linked to various adverse health effects. Conventional PM removal methods, such as filtration and electrostatic precipitation present challenges, including frequent filter replacement and ozone generation.
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Department of Food Technology and Nutrition, Faculty of Technology, Mahasarakham University, Maha Sarakham, 44150 Thailand.
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Department of Physics, Hasanuddin University, Makassar, 90245 Indonesia.
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View Article and Find Full Text PDFNano Lett
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Key Laboratory of Materials Physics of Ministry of Education, School of Physics, Zhengzhou University, Daxue Road 75, Zhengzhou 450052, China.
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