Silver-Based Antimicrobials

There is some talk about an antibiotic Armageddon due to quickly developing resistance towards commercially available antibiotics. For the most part, the classical antibiotic pipeline has dried up, and antibiotic resistance to any new drugs quickly develops. It is here that metal-based antimicrobial...

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Bibliographic Details
Other Authors: Turner, Raymond J. (Editor)
Format: Electronic Book Chapter
Language:English
Published: Basel, Switzerland MDPI - Multidisciplinary Digital Publishing Institute 2021
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DOAB: description of the publication
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520 |a There is some talk about an antibiotic Armageddon due to quickly developing resistance towards commercially available antibiotics. For the most part, the classical antibiotic pipeline has dried up, and antibiotic resistance to any new drugs quickly develops. It is here that metal-based antimicrobials can step forward as possible solutions in this antimicrobial resistance era. The biological targets of metal atoms are more diverse, thus making it more difficult for bacteria to develop resistance compared with classical antibiotics. The metal silver has been used since antiquity for wound healing and water purification. At present, it is the most prevalent antimicrobial metal used in healthcare, industry, and consumer products. Silver is being used in the form of ionic salt, colloids, or in specific nanomaterials, and as described in this book, it can be applied as mixtures with other antimicrobials or coating composites. The different formulations are explored for their efficacy against a variety of problems related to agricultural and medical infections. Whilst by no means exhaustive, this book nicely highlights the present directions in silver-based antimicrobial research and antimicrobial formulation development. The chapters have been organized from a general introductory review to approaches of mixing other antimicrobials and materials to enhance silver performance. This is followed by synthetic approaches. First are biogenic (sometimes called green or eco-friendly) approaches, followed by advanced physical-chemical synthetic approaches. The book ends with an overview of applications through a review of patents over the past 10 years. 
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653 |a herbal medicine 
653 |a Punicaceae 
653 |a calcium glycerophosphate 
653 |a Streptococcus mutans 
653 |a antibacterial 
653 |a titania 
653 |a mesoporous 
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653 |a surface functionalization 
653 |a camphor derivatives 
653 |a silver camphorimine complexes 
653 |a laser ablation synthesis in solution 
653 |a nano-antimicrobials 
653 |a food packaging 
653 |a green synthesis 
653 |a microwave irradiation 
653 |a Juglans regia 
653 |a antibacterial activity 
653 |a biological synthesis 
653 |a multidrug-resistant bacteria 
653 |a antifungal 
653 |a chitosan oligomers 
653 |a composites 
653 |a deep eutectic solvents 
653 |a phenolic compounds 
653 |a Phytophthora cinnamomi 
653 |a root rot 
653 |a non-equilibrium plasma 
653 |a antibacterial coatings 
653 |a plasma polymers 
653 |a nanocomposites 
653 |a antibiotics 
653 |a adjuvant 
653 |a combinatorial 
653 |a metal 
653 |a ROS 
653 |a antibacterial effect 
653 |a laser irradiation 
653 |a metal-vapour method 
653 |a TEM 
653 |a XPS 
653 |a EXAFS 
653 |a microbiomes 
653 |a silane-based coating 
653 |a Marinomonas 
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653 |a antibiotic resistance 
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653 |a n/a 
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