Plasma Biology

Irving Langmuir coined the name "plasma" to describe an ionized gas back in 1927. Just over 90 years later, plasma technology is becoming increasingly important in our daily life. For example, in the medical field and dentistry, plasma is used as a method of disinfection and sterilization....

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Bibliographic Details
Other Authors: Sakudo, Akikazu (Editor), Yagyu, Yoshihito (Editor)
Format: Electronic Book Chapter
Language:English
Published: Basel, Switzerland MDPI - Multidisciplinary Digital Publishing Institute 2021
Subjects:
DR5
CAP
RNS
ROS
n/a
Online Access:DOAB: download the publication
DOAB: description of the publication
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520 |a Irving Langmuir coined the name "plasma" to describe an ionized gas back in 1927. Just over 90 years later, plasma technology is becoming increasingly important in our daily life. For example, in the medical field and dentistry, plasma is used as a method of disinfection and sterilization. Moreover, additional potential novel applications of this technology in different forms of therapy have been proposed. In the agricultural sector, plasma technology could contribute to higher crop yields by enhancing seed germination and the growth of plants, as well as the preservation of foods by disinfection. Plasma technology could also be utilized in environmental applications, including water treatment and remediation, as well as treatment of exhaust gases. Although recent extensive studies have uncovered the broad potential of plasma technology, its mechanisms of action remain unclear. Therefore, further studies aimed at elucidating the molecular mechanisms of plasma technology are required. This book is composed of original articles and reviews investigating the molecular mechanisms of plasma biology. Relevant areas of study include applications in plasma medicine, plasma agriculture, as well as plasma chemistry. Studies on potential therapeutic approaches using plasma itself and plasma-treated solutions are also included. 
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653 |a cold jet atmospheric pressure plasma 
653 |a reactive oxygen and nitrogen species 
653 |a backbone cleavage 
653 |a hydroxylation 
653 |a carbonyl formation 
653 |a cold atmospheric plasma 
653 |a autophagy 
653 |a silymarin nanoemulsion 
653 |a PI3K/mTOR pathway 
653 |a wound healing 
653 |a oncology 
653 |a regenerative medicine 
653 |a plasma 
653 |a atmospheric pressure plasma jets 
653 |a large-scale imaging 
653 |a machine learning 
653 |a cancer treatment 
653 |a cellular imaging 
653 |a reactive oxygen species 
653 |a mesoporous silica nanoparticles 
653 |a biomaterials 
653 |a bone regeneration 
653 |a cytotoxicity 
653 |a proliferation 
653 |a osteogenic differentiation 
653 |a plasma-activated medium 
653 |a TRAIL 
653 |a DR5 
653 |a apoptosis 
653 |a ROS/RNS 
653 |a atmospheric-pressure plasma 
653 |a titanium 
653 |a amine 
653 |a mesenchymal stem cells 
653 |a antibiotic resistant bacteria 
653 |a antibiotic resistance gene 
653 |a disinfection 
653 |a E. coli 
653 |a inactivation 
653 |a sterilization 
653 |a cell migration 
653 |a endothelial cells VEGF 
653 |a gynaecological oncology 
653 |a vulva cancer 
653 |a risk factors 
653 |a plasma tissue interaction 
653 |a premalignant lesions 
653 |a cancer development 
653 |a patient stratification 
653 |a individualised profiling 
653 |a predictive preventive personalised medicine (PPPM/3PM) 
653 |a treatment 
653 |a Candida albicans 
653 |a cold plasma treatment 
653 |a genome 
653 |a hydrolytic enzyme activity 
653 |a carbon assimilation 
653 |a drug susceptibility 
653 |a malignant melanoma 
653 |a acidification 
653 |a nitrite 
653 |a acidified nitrite 
653 |a nitration 
653 |a membrane damage 
653 |a CAP 
653 |a cancer 
653 |a cold atmospheric pressure plasma 
653 |a hydrogen peroxide 
653 |a hypochlorous acid 
653 |a moDCs 
653 |a peroxynitrite 
653 |a RNS 
653 |a ROS 
653 |a non-thermal plasma 
653 |a biological activity 
653 |a breast cancer 
653 |a solution plasma process 
653 |a aqueous solutions 
653 |a chitin 
653 |a chitosan 
653 |a degradation 
653 |a deacetylation 
653 |a non-thermal atmospheric pressure plasma 
653 |a Pectobacteriaceae 
653 |a Dickeya spp. 
653 |a Pectobacterium spp. 
653 |a antibacterial 
653 |a plant protection 
653 |a agriculture 
653 |a selective cancer treatment 
653 |a reaction network 
653 |a mathematical modeling 
653 |a n/a 
653 |a Mdm2-p53 
653 |a plasma treatment 
653 |a molecular dynamic (MD) simulations 
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856 4 0 |a www.oapen.org  |u https://directory.doabooks.org/handle/20.500.12854/76839  |7 0  |z DOAB: description of the publication