Literature DB >> 23777677

Persistence and degradation of new β-lactam antibiotics in the soil and water environment.

I Braschi1, S Blasioli, C Fellet, R Lorenzini, A Garelli, M Pori, D Giacomini.   

Abstract

The development of new antibiotics with low environmental persistence is of utmost importance in contrasting phenomena of antibiotic resistance. In this study, the persistence of two newly synthesized monocyclic β-lactam antibiotics: (2R)-1-(methylthio)-4-oxoazetidin-2-yl acetate, P1, and (2R,3R)-3-((1R)-1-(tert-butyldimethylsilanyloxy)ethyl)-1-(methylthio)-4-oxoazetidin-2-yl acetate, P2, has been investigated in water in the pH range 3-9 and in two (calcareous and forest) soils, then compared to amoxicillin, a β-lactam antibiotic used in human and veterinary medicine. P1 and P2 persistence in water was lower than that of amoxicillin with only a few exceptions. P1 hydrolysis was catalyzed at an acidic pH whereas P2 hydrolysis takes place at both acidic and alkaline pH values. P1 persistence in soils depended mainly on their water potential (t1/2: 35.0-70.7d at wilting point; <1d at field capacity) whereas for P2 it was shorter and unaffected by soil water content (t1/2 0.13-2.5d). Several degradation products were detected in soils at both water potentials, deriving partly from hydrolytic pathways and partly from microbial transformation. The higher LogKow value for P2 compared with P1 seemingly confers P2 with high permeability to microbial membranes regardless of soil water content. P1 and P2 persistence in soils at wilting point was shorter than that of amoxicillin, whereas it had the same extent at field capacity.
Copyright © 2013 Elsevier Ltd. All rights reserved.

Entities:  

Keywords:  Amoxicillin; Antimicrobial agents; Azetidinones; Environmental fate; Hydrolysis

Mesh:

Substances:

Year:  2013        PMID: 23777677     DOI: 10.1016/j.chemosphere.2013.05.016

Source DB:  PubMed          Journal:  Chemosphere        ISSN: 0045-6535            Impact factor:   7.086


  9 in total

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4.  Confirming the presence of selected antibiotics and steroids in Norwegian biogas digestate.

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5.  Vancomycin and/or Multidrug-Resistant Citrobacter Freundii Altered the Metabolic Pattern of Soil Microbial Community.

Authors:  Mariusz Cycoń; Kamila Orlewska; Anna Markowicz; Agnieszka Żmijowska; Joanna Smoleń-Dzirba; Jolanta Bratosiewicz-Wąsik; Tomasz J Wąsik; Zofia Piotrowska-Seget
Journal:  Front Microbiol       Date:  2018-05-23       Impact factor: 5.640

6.  Distribution of Medically Relevant Antibiotic Resistance Genes and Mobile Genetic Elements in Soils of Temperate Forests and Grasslands Varying in Land Use.

Authors:  Inka M Willms; Jingyue Yuan; Caterina Penone; Kezia Goldmann; Juliane Vogt; Tesfaye Wubet; Ingo Schöning; Marion Schrumpf; François Buscot; Heiko Nacke
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Review 7.  Impact of Antibiotics as Waste, Physical, Chemical, and Enzymatical Degradation: Use of Laccases.

Authors:  María P C Mora-Gamboa; Sandra M Rincón-Gamboa; Leidy D Ardila-Leal; Raúl A Poutou-Piñales; Aura M Pedroza-Rodríguez; Balkys E Quevedo-Hidalgo
Journal:  Molecules       Date:  2022-07-11       Impact factor: 4.927

8.  Antimicrobial resistance genes in microbiota associated with sediments and water from the Akaki river in Ethiopia.

Authors:  Berhanu Yitayew; Yimtubezinash Woldeamanuel; Daniel Asrat; Aminur Rahman; Adane Mihret; Abraham Aseffa; Per-Erik Olsson; Jana Jass
Journal:  Environ Sci Pollut Res Int       Date:  2022-05-18       Impact factor: 5.190

9.  Resistance of Undisturbed Soil Microbiomes to Ceftriaxone Indicates Extended Spectrum β-Lactamase Activity.

Authors:  Joao Gatica; Kun Yang; Eulyn Pagaling; Edouard Jurkevitch; Tao Yan; Eddie Cytryn
Journal:  Front Microbiol       Date:  2015-11-10       Impact factor: 5.640

  9 in total

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