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1.
Phytother Res ; 35(1): 256-277, 2021 Jan.
Artículo en Inglés | MEDLINE | ID: mdl-32940412

RESUMEN

There has been a spurt in the spread of microbial resistance to antibiotics due to indiscriminate use of antimicrobial agents in human medicine, agriculture, and animal husbandry. It has been realized that conventional antibiotic therapy would be less effective in the coming decades and more emphasis should be given for the development of novel antiinfective therapies. Cysteine rich peptides (CRPs) are broad-spectrum antimicrobial agents that modulate the innate immune system of different life forms such as bacteria, protozoans, fungi, plants, insects, and animals. These are also expressed in several plant tissues in response to invasion by pathogens, and play a crucial role in the regulation of plant growth and development. The present work explores the importance of CRPs as potent antimicrobial agents, which can supplement and/or replace the conventional antibiotics. Different plant parts of diverse plant species showed the presence of antimicrobial peptides (AMPs), which had significant structural and functional diversity. The plant-derived AMPs exhibited potent activity toward a range of plant and animal pathogens, protozoans, insects, and even against cancer cells. The cysteine-rich AMPs have opened new avenues for the use of plants as biofactories for the production of antimicrobials and can be considered as promising antimicrobial drugs in biotherapeutics.


Asunto(s)
Antiinfecciosos/farmacología , Cisteína/química , Plantas/química , Proteínas Citotóxicas Formadoras de Poros/farmacología , Secuencia de Aminoácidos , Animales , Bacterias/efectos de los fármacos , Humanos , Proteínas Citotóxicas Formadoras de Poros/química , Estructura Secundaria de Proteína
2.
Mini Rev Med Chem ; 21(2): 245-265, 2021.
Artículo en Inglés | MEDLINE | ID: mdl-33198616

RESUMEN

Metal nanoparticles are nanosized entities with dimensions of 1-100 nm that are increasingly in demand due to applications in diverse fields like electronics, sensing, environmental remediation, oil recovery and drug delivery. Metal nanoparticles possess large surface energy and properties different from bulk materials due to their small size, large surface area with free dangling bonds and higher reactivity. High cost and pernicious effects associated with the chemical and physical methods of nanoparticle synthesis are gradually paving the way for biological methods due to their eco-friendly nature. Considering the vast potentiality of microbes and plants as sources, biological synthesis can serve as a green technique for the synthesis of nanoparticles as an alternative to conventional methods. A number of reviews are available on green synthesis of nanoparticles but few have focused on covering the entire biological agents in this process. Therefore present paper describes the use of various living organisms like bacteria, fungi, algae, bryophytes and tracheophytes in the biological synthesis of metal nanoparticles, the mechanisms involved and the advantages associated therein.


Asunto(s)
Tecnología Química Verde , Nanopartículas del Metal/química , Bacterias/química , Bacterias/metabolismo , Chlorophyta/química , Chlorophyta/metabolismo , Hongos/química , Hongos/metabolismo , Extractos Vegetales/química , Plantas/química , Plantas/metabolismo
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