Use of Antimicrobials by Class in Pigs in Germany—A Longitudinal Description Considering Different International Categorisation Systems
Abstract
:1. Introduction
2. Results
2.1. Description of Study Population
2.2. Total Treatment with Antimicrobials
2.3. Treatment Frequency by Antimicrobial Class
2.3.1. Piglets
2.3.2. Sows
2.3.3. Weaners
2.3.4. Fattening Pigs
3. Discussion
3.1. Evaluation of Methods and Results
3.2. Data Quality
3.3. AMU Changes
3.3.1. Cephalosporins and Fluoroquinolones
3.3.2. Polymyxins
3.3.3. Macrolides
3.3.4. Other Antimicrobial Classes
3.4. Use of Classification Systems
4. Materials and Methods
4.1. VetCAb Scientific Monitoring System
4.2. Lists on Antimicrobial Classification
- 1.
- WHO [28]
- 2.
- WOAH [29]
- 3.
- EMA [30]
4.3. Statistical Evaluation
5. Conclusions
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
ADF | Application and Delivery Form |
AMR | Antimicrobial Resistance |
AMU | Antimicrobial Usage |
BVL | Federal Office of Consumer Protection and Food Safety |
CIA | Critically Important Antimicrobials |
DART | German Antibiotic Resistance Strategy |
DDD | Defined Daily Dose |
DIMDI | German Institute for Medicinal Documentation and Information |
EMA | European Medicine Agency |
ESVAC | European Surveillance of Veterinary Antimicrobial Consumption |
HIA | Highly Important Antimicrobials |
HPCIA | Highest Priority Critically Important Antimicrobials |
IA | Important Antimicrobials |
PCU | Population Correction Unit |
TI | Treatment Incidence |
TF | Treatment Frequency |
TFw% | Weighted TF in percent |
UDD | Used Daily Dose |
VetCAb | Veterinary Consumption of Antibiotics |
VCIA | Veterinary Critically Important Antimicrobials |
VHIA | Veterinary Highly Important Antimicrobials |
VIA | Veterinary Important Antimicrobials |
VMP | Veterinary Medicinal Product |
WHO | World Health Organisation |
WOAH/OIE | World Organisation for Animal Health |
References
- Mevius, D.J.; Sprenger, M.J.; Wegener, H.C. EU conference ‘The Microbial Threat’. Int. J. Antimicrob. Agents 1999, 11, 101–105. [Google Scholar] [CrossRef] [PubMed]
- WHO. Global Antimicrobial Resistance Surveillance System (GLASS) Report; WHO: Geneva, Switzerland, 2021; p. 167. [Google Scholar]
- FAO. The FAO Action Plan on Antimicrobial Resistance 2016–2020 Rome; FAO: Rome, Italy, 2016. [Google Scholar]
- ECDC/EFSA/EMA. JIACRA-III: Antimicrobial consumption and resistance in bacteria from humans and animals Third joint inter-agency report on integrated analysis of antimicrobial agent consumption and occurrence of antimicrobial resistance in bacteria from humans and food-producing animals in the EU/EEA (2016–2018). EFSA J. 2021, 19, e06712. [Google Scholar] [CrossRef]
- WHO. Guidelines on Use of Medically Important Antimicrobials in Food-Producing Animals; WHO: Geneva, Switzerland, 2017. [Google Scholar]
- WHO. Global Action Plan On Antimicrobial Resistance; WHO: Geneva, Switzerland, 2015; p. 28. [Google Scholar]
- Ungemach, F.R.; Müller-Bahrdt, D.; Abraham, G. Guidelines for prudent use of antimicrobials and their implications on antibiotic usage in veterinary medicine. Int. J. Med. Microbiol. 2006, 296, 33–38. [Google Scholar] [CrossRef] [PubMed]
- WOAH. Terrestrial Animal Health Code, 29th ed.; WOAH: Paris, France, 2021; Volume I. [Google Scholar]
- EMA/EFSA. RONFA: Joint Scientific Opinion on measures to reduce the need to use antimicrobial agents in animal husbandry in the European Union, and the resulting impacts on food safety EFSA J. 2017, 15, e04666. [CrossRef]
- Federal Veterinary Surgeons’ Association (BTK). Guidelines for the Prudent Use of Veterinary Antimicrobial Drugs; Federal Veterinary Surgeons’ Association (BTK): Berlin, Germany, 2015; p. 24. [Google Scholar]
- EMA. Antibiotic Resistance in the European Union Associated with Therapeutic Use of Veterinary Medicines: Report and Qualitative Risk Assessment by the Committee for Veterinary Medicinal Products; EMA: Amsterdam, The Netherlands, 1999.
- WOAH. Standards, Guidelines and Resolutions on Antimicrobial Resistance and the Use of Antimicrobial Agents; WOAH: Paris, France, 2020. [Google Scholar]
- Anonymous. Regulation (EU) 2019/6 of the European Parliament and of the Council of 11 December 2018 on veterinary medicinal products and repealing Directive 2001/82/EC. Off. J. Eur. Union 2019, PE/45/2018/REV/1, 43–167. [Google Scholar]
- EMA. 11th ESVAC Report: Sales of Veterinary Antimicrobial Agents in 31 European Countries in 2019 and 2020; EMA: Amsterdam, The Netherlands, 2021. [CrossRef]
- EMA. Revised ESVAC Reflection Paper on Collecting Data on Consumption of Antimicrobial Agents per Animal Species, on Technical Units of Measurement and Indicators for Reporting Consumption of Antimicrobial Agents in Animals; EMA: Amsterdam, The Netherlands, 2013.
- EMA. Guidance on Collection and Provision of National Data on Antimicrobial Use by Animal Species/Categories; EMA: Amsterdam, The Netherlands, 2018.
- National Food Institute, Technical University of Denmark. DANMAP 2020: Use of Antimicrobial Agents and Occurrence of Antimicrobial Resistance in Bacteria from Food Animals, Food and Humans in Denmark; National Food Institute, Technical University of Denmark: Lyngby, Denmark, 2021; p. 174. [Google Scholar]
- National Institute for Public Health and the Environment. MARAN: Monitoring of Antimicrobial Resistance and Antibiotic Usage in Animals in the Netherlands from 2013–2020; National Institute for Public Health and the Environment: Utrecht, The Netherlands, 2021; p. 282.
- Merle, R.; Robanus, M.; Hegger-Gravenhorst, C.; Mollenhauer, Y.; Hajek, P.; Käsbohrer, A.; Honscha, W.; Kreienbrock, L. Feasibility study of veterinary antibiotic consumption in Germany—Comparison of ADDs and UDDs by animal production type, antimicrobial class and indication. BMC Vet. Res. 2014, 10, 7. [Google Scholar] [CrossRef] [Green Version]
- Kasabova, S.; Hartmann, M.; Werner, N.; Käsbohrer, A.; Kreienbrock, L. Used Daily Dose vs. Defined Daily Dose-Contrasting Two Different Methods to Measure Antibiotic Consumption at the Farm Level. Front. Vet. Sci. 2019, 6, 116. [Google Scholar] [CrossRef]
- Bundesministerium für Gesundheit, Landwirtschaft und Verbraucherschutz, Bundesministerium für Bildung und Forschung. DART: Deutsche Antibiotika-Resistenzstrategie; Bundesministerium für Gesundheit, Landwirtschaft und Verbraucherschutz, Bundesministerium für Bildung und Forschung: Berlin, Germany, 2008; pp. 1–112.
- Bundesministerium für Gesundheit, Landwirtschaft und Verbraucherschutz. DIMDI-AMV: Verordnung über das datenbankgestützte Informationssystem über Arzneimittel des Deutschen Instituts für Medizinische Dokumentation und Information. In BGBl; Bundesministerium der Justiz und für Verbraucherschutz: Berlin, Germany, 2010; p. 4. [Google Scholar]
- Anonymous. Verordnung zur Anpassung der DIMDI-Arzneimittelverordnung, der Verordnung über klinische Prüfungen von Medizinprodukten und der Bundespflegesatzverordnung an die gesetzliche Aufgabenübertragung vom Deutschen Institut für Medizinische Dokumentation und Information auf das Bundesinstitut für Arzneimittel und Medizinprodukte und zur weiteren Änderung der Bundespflegesatzverordnung. In BGBl; Bundesministerium der Justiz und für Verbraucherschutz: Bonn, Germany, 2020; p. 1692. [Google Scholar]
- Anonymous. Tierarzneimittelgesetz (TAMG): Gesetz über den Verkehr mit Tierarzneimitteln und zur Durchführung unionsrechtlicher Vorschriften Betreffend Tierarzneimittel vom 27. September 2021. In BGBl; Bundesministerium der Justiz und für Verbraucherschutz: Bonn, Germany, 2021; p. 4530. [Google Scholar]
- Anonymous. Sechszehntes Gesetz zur Änderung des Arzneimittelgesetzes. In BGBl; Bundesministerium der Justiz und für Verbraucherschutz: Bonn, Germany, 2013; p. 3813. [Google Scholar]
- Merle, R.; Hajek, P.; Käsbohrer, A.; Hegger-Gravenhorst, C.; Mollenhauer, Y.; Robanus, M.; Ungemach, F.-R.; Kreienbrock, L. Monitoring of antibiotic consumption in livestock: A German feasibility study. Prev. Vet. Med. 2012, 104, 34–43. [Google Scholar] [CrossRef]
- FAO/OIE/WHO. Joint Expert Workshop on Non-Human Antimicrobial Usage and Antimicrobial Resistance 2003–2004; FAO/OIE/WHO: Geneva, Switzerland, 2003. [Google Scholar]
- WHO. List of Critically Important Antimicrobials for Human Medicine—6th Revision; WHO: Geneva, Switzerland, 2019. [Google Scholar]
- WOAH. List of Antimicrobial Agents of Veterinary Importance; WOAH: Paris, France, 2019. [Google Scholar]
- EMA. Categorisation of Antibiotics in the European Union; EMA: Amsterdam, The Netherlands, 2019; p. 73.
- van Rennings, L.; Von Munchhausen, C.; Ottilie, H.; Hartmann, M.; Merle, R.; Honscha, W.; Käsbohrer, A.; Kreienbrock, L. Cross-sectional study on antibiotic usage in pigs in Germany. PLoS ONE 2015, 10, e0119114. [Google Scholar] [CrossRef] [Green Version]
- Timmerman, T.; Dewulf, J.; Catry, B.; Feyen, B.; Opsomer, G.; Kruif, A.d.; Maes, D. Quantification and evaluation of antimicrobial drug use in group treatments for fattening pigs in Belgium. Prev. Vet. Med. 2006, 74, 251–263. [Google Scholar] [CrossRef]
- Persoons, D.; Dewulf, J.; Smet, A.; Herman, L.; Heyndrickx, M.; Martel, A.; Catry, B.; Butaye, P.; Haesebrouck, F. Antimicrobial use in Belgian broiler production. Prev. Vet. Med. 2012, 105, 320–325. [Google Scholar] [CrossRef] [PubMed]
- Trauffler, M.; Griesbacher, A.; Fuchs, K.; Köfer, J. Antimicrobial drug use in Austrian pig farms: Plausibility check of electronic on-farm records and estimation of consumption. Vet. Rec. 2014, 175, 402. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Schaekel, F.; May, T.; Seiler, J.; Hartmann, M.; Kreienbrock, L. Antibiotic drug usage in pigs in Germany—Are the class profiles changing? PLoS ONE 2017, 12, e0182661. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Jensen, V.F.; Emborg, H.D.; Aarestrup, F.M. Indications and patterns of therapeutic use of antimicrobial agents in the Danish pig production from 2002 to 2008. J. Vet. Pharmacol. Ther. 2012, 35, 33–46. [Google Scholar] [CrossRef] [PubMed]
- Bos, M.E.H.; Taverne, F.J.; van Geijlswijk, I.M.; Mouton, J.W.; Mevius, D.J.; Heederik, D.J.J. Consumption of Antimicrobials in Pigs, Veal Calves, and Broilers in The Netherlands: Quantitative Results of Nationwide Collection of Data in 2011. PLoS ONE 2013, 8, e77525. [Google Scholar] [CrossRef] [PubMed]
- Abe, R.; Takagi, H.; Fujimoto, K.; Sugiura, K.; Karunasagar, I. Evaluation of the antimicrobial use in pigs in Japan using dosage-based indicators. PLoS ONE 2020, 15, e0241644. [Google Scholar] [CrossRef]
- O’Neill, L.; Rodrigues da Costa, M.; Leonard, F.C.; Gibbons, J.; Calderón Díaz, J.A.; McCutcheon, G.; Manzanilla, E.G. Quantification, description and international comparison of antimicrobial use on Irish pig farms. Porc. Health Manag. 2020, 6, 30. [Google Scholar] [CrossRef]
- Trauffler, M. The use of the "Highest Priority Critically Important Antimicrobials" in 75 Austrian pig farms—Evaluation of on-farm drug application data. Berl. Und Münchener Tierärztliche Wochenschr. 2014, 127, 375–383. [Google Scholar] [CrossRef]
- Hartel, M.J.; Staub, L.P.; Röder, C.; Eggli, S. High incidence of medication documentation errors in a Swiss university hospital due to the handwritten prescription process. BMC Health Serv. Res. 2011, 11, 199. [Google Scholar] [CrossRef] [Green Version]
- Sokol, D.K.; Hettige, S. Poor handwriting remains a significant problem in medicine. J. R. Soc. Med. 2006, 99, 645–646. [Google Scholar] [CrossRef]
- Bundesministerium für Ernährung und Landwirtschaft (BMEL). Entwicklung der Kennzahlen zur Therapiehäufigkeit. Available online: https://www.bmel.de/DE/themen/tiere/tierarzneimittel/entwicklung-kennzahlen-therapiehaeufigkeit.html (accessed on 18 September 2022).
- Bundesamt für Verbraucherschutz und Lebensmittelsicherheit (BVL). Abgabemengenerfassung von Antibiotika in Deutschland in 2020; Deutsche Tierärzteblatt; Bundestierärztekammer e.V.: Berlin, Germany, 2021; Volume 69, pp. 1420–1430. [Google Scholar]
- Bundesamt für Verbraucherschutz und Lebensmittelsicherheit (BVL). Abgabemengenerfassung von Antibiotika in Deutschland in 2021; Deutsche Tierärzteblatt; Bundestierärztekammer e.V.: Berlin, Germany, 2022; Volume 70, pp. 1316–1324. [Google Scholar]
- Hartmann, S.; Riklin, A.; Müntener, C.; Schüpbach-Regula, G.; Nathues, C.; Sidler, X. Use of antibiotics in Swiss piglet production and fattening farms. Schweiz. Arch. Tierheilkd. 2019, 161, 797–808. [Google Scholar] [CrossRef] [PubMed]
- Sarrazin, S.; Joosten, P.; Van Gompel, L.; Luiken, R.E.C.; Mevius, D.J.; Wagenaar, J.A.; Heederik, D.J.J.; Dewulf, J.; Wagenaar, J.; Graveland, H.; et al. Quantitative and qualitative analysis of antimicrobial usage patterns in 180 selected farrow-to-finish pig farms from nine European countries based on single batch and purchase data. J. Antimicrob. Chemother. 2019, 74, 807–816. [Google Scholar] [CrossRef] [PubMed]
- Löscher, W.; Richter, A.; Potschka, H. Pharmaka zur Behandlung bakterieller Infektionen. In Pharmakotherapie bei Haus-und Nutztieren; Enke Verlag in Georg Thieme: Stuttgart, Germany, 2014. [Google Scholar]
- VETIDATA: Veterinärmedizinischer Informationsdienst für Arzneimittelanwendung, Toxikologie und Arzneimittelrecht. Available online: https://vetidata.de/ (accessed on 11 July 2022).
- De Briyne, N.; Atkinson, J.; Borriello, S.P.; Pokludová, L. Antibiotics used most commonly to treat animals in Europe. Vet. Rec. 2014, 175, 325. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Lhermie, G.; La Ragione, R.M.; Weese, J.S.; Olsen, J.E.; Christensen, J.P.; Guardabassi, L. Indications for the use of highest priority critically important antimicrobials in the veterinary sector. J. Antimicrob. Chemother. 2020, 75, 1671–1680. [Google Scholar] [CrossRef] [PubMed]
- Löscher, W.; Richter, A. Antibiotika und Antibakteriell Wirksame Chemotherapeutika. In Lehrbuch der Pharmakologie und Toxikologie für die Veterinärmedizin; Enke Verlag in Georg Thieme: Stuttgart, Germany, 2016; Volume 4. [Google Scholar]
- Raasch, S.; Postma, M.; Dewulf, J.; Stärk, K.D.C. Association between antimicrobial usage, biosecurity measures as well as farm performance in German farrow-to-finish farms. Porc. Health Manag. 2018, 4, 30. [Google Scholar] [CrossRef] [Green Version]
- Callens, B.; Persoons, D.; Maes, D.; Laanen, M.; Postma, M.; Boyen, F.; Haesebrouck, F.; Butaye, P.; Catry, B.; Dewulf, J. Prophylactic and metaphylactic antimicrobial use in Belgian fattening pig herds. Prev. Vet. Med. 2012, 106, 53–62. [Google Scholar] [CrossRef]
- Burch, D. Antimicrobial Drug use in swine. In Antimicrobial Therapy in Veterinary Medicine, 5th ed.; Giguère, S., Prescott, J.F., Dowling, P.M., Eds.; John Wiley & Sons: Hoboken, NJ, USA, 2013. [Google Scholar]
- Anonymous. Zweite Verordnung zur Änderung der Verordnung über tierärztliche Hausapotheken. In BGBl; Bundesministerium der Justiz und für Verbraucherschutz: Bonn, Germany, 2018; p. 213. [Google Scholar]
- Sjölund, M.; Backhans, A.; Greko, C.; Emanuelson, U.; Lindberg, A. Antimicrobial usage in 60 Swedish farrow-to-finish pig herds. Prev. Veteterinary Med. 2015, 121, 257–264. [Google Scholar] [CrossRef]
- Moreno, M.A. Survey of quantitative antimicrobial consumption per production stage in farrow-to-finish pig farms in Spain. Vet. Rec. Open 2014, 1, e000002. [Google Scholar] [CrossRef] [Green Version]
- Postma, M.; Backhans, A.; Collineau, L.; Loesken, S.; Sjolund, M.; Belloc, C.; Emanuelson, U.; Grosse Beilage, E.; Nielsen, E.O.; Stark, K.D.C.; et al. Evaluation of the relationship between the biosecurity status, production parameters, herd characteristics and antimicrobial usage in farrow-to-finish pig production in four EU countries. Porc. Health Manag 2016, 2, 9. [Google Scholar] [CrossRef] [Green Version]
- Laanen, M.; Persoons, D.; Ribbens, S.; de Jong, E.; Callens, B.; Strubbe, M.; Maes, D.; Dewulf, J. Relationship between biosecurity and production/antimicrobial treatment characteristics in pig herds. Vet. J. 2013, 198, 508–512. [Google Scholar] [CrossRef]
- EMA. Coliprotec F4/F18; EMA: Amsterdam, The Netherlands, 2016.
- StIKoVet. Leitlinie zur Impfung von Schweinen. 2019. Available online: https://www.openagrar.de/receive/openagrar_mods_00047096 (accessed on 12 December 2022).
- Nadeau, E.; Fairbrother, J.M.; Zentek, J.; Belanger, L.; Tremblay, D.; Tremblay, C.L.; Rohe, I.; Vahjen, W.; Brunelle, M.; Hellmann, K.; et al. Efficacy of a single oral dose of a live bivalent E. coli vaccine against post-weaning diarrhea due to F4 and F18-positive enterotoxigenic E. coli. Vet. J. 2017, 226, 32–39. [Google Scholar] [CrossRef] [PubMed]
- Kietzmann, M.; Nienhoff, H.; Schwarz, S.; Waldmann, K.-H.; Emmerich, I. Anmerkungen zur Verwendung von Colistin beim Schwein; Deutsche Tierärzteblatt; Bundestierärztekammer e.V.: Berlin, Germany, 2018; Volume 66, pp. 498–502. [Google Scholar]
- Dębski, B. Supplementation of pigs diet with zinc and copper as alternative to conventional antimicrobials. Pol. J. Vet. Sci. 2016, 19, 917–924. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Federal Ministry of Food and Agriculture (BMEL). Report of the Federal Ministry of Food and Agriculture on the Evaluation of the Antibiotics Minimisation Concept introduced with the 16th Act to Amend the Medicinal Products Act (16th AMG Amendment); Federal Ministry of Food and Agriculture (BMEL): Bonn, Germany, 2019; p. 82.
- Kümmerlen, D.; Echtermann, T.; von Gerlach, F.; Müntener, C.R.; Sidler, X. Analyses of antimicrobial usage in 598 pig farms in Switzerland in 2017. Schweiz. Arch. Für Tierheilkd. 2019, 161, 809–820. [Google Scholar] [CrossRef] [Green Version]
- Moodley, A.; Nielsen, S.S.; Guardabassi, L. Effects of tetracycline and zinc on selection of methicillin-resistant Staphylococcus aureus (MRSA) sequence type 398 in pigs. Vet. Microbiol. 2011, 152, 420–423. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Slifierz, M.J.; Friendship, R.M.; Weese, J.S.; Drake, H.L. Methicillin-Resistant Staphylococcus aureus in Commercial Swine Herds Is Associated with Disinfectant and Zinc Usage. Appl. Environ. Microbiol. 2015, 81, 2690–2695. [Google Scholar] [CrossRef] [Green Version]
- The European Commission. Comission Implementing Decision of 26.6.2017 Concerning, in the Framework of Article 35 of Directive 2001/82/EC of the European Parliament and of the Council, the Marketing Authorisations for Veterinary Medicinal Products Containing "Zinc Oxide" to be Administered Orally to Food Producing Species; The European Commission: Brussels, Belgium, 2017; C/2017/4529, L311. [Google Scholar]
- Scott, H.M.; Acuff, G.; Bergeron, G.; Bourassa, M.W.; Gill, J.; Graham, D.W.; Kahn, L.H.; Morley, P.S.; Salois, M.J.; Simjee, S.; et al. Critically important antibiotics: Criteria and approaches for measuring and reducing their use in food animal agriculture. Ann. N. Y. Acad. Sci. 2019, 1441, 8–16. [Google Scholar] [CrossRef]
- WOAH. Recommendations. In Proceedings of the Conference on Antimicrobial Resistance, Marrakesh, Morocco, 29–31 October 2018; p. 2. [Google Scholar]
- Kasabova, S.; Hartmann, M.; Freise, F.; Hommerich, K.; Fischer, S.; Wilms-Schulze-Kump, A.; Rohn, K.; Käsbohrer, A.; Kreienbrock, L. Antibiotic Usage Pattern in Broiler Chicken Flocks in Germany. Front. Vet. Sci. 2021, 8, 12. [Google Scholar] [CrossRef]
- EMA/AMEG. Updated Advice on the Use of Colistin Products in Animals within the European Union: Development of Resistance and Possible Impact on Human and Animal Health; EMA: Amsterdam, The Netherlands; AMEG: Guastalla, Italy, 2016.
- EMA. Reflection Paper on the Use of Macrolides, Lincosamides and Streptogramins (MLS) in Food Producing Animals in the European Union: Developement of Resistance and Impact on Human and Animal Health; EMA: Amsterdam, The Netherlands, 2011.
- Pyörälä, S.; Baptiste, K.E.; Catry, B.; van Duijkeren, E.; Greko, C.; Moreno, M.A.; Pomba, M.C.M.F.; Rantala, M.; Ružauskas, M.; Sanders, P.; et al. Macrolides and lincosamides in cattle and pigs: Use and development of antimicrobial resistance. Vet. J. 2014, 200, 230–239. [Google Scholar] [CrossRef]
- Alban, L.; Nielsen, E.O.; Dahl, J. A human health risk assessment for macrolide-resistant Campylobacter associated with the use of macrolides in Danish pig production. Prev. Vet. Med. 2008, 83, 115–129. [Google Scholar] [CrossRef]
- Hurd, H.S.; Doores, S.; Hayes, D.; Mathew, A.; Maurer, J.; Silley, P.; Singer, R.S.; Jones, R.N. Public Health Consequences of Macrolide Use in Food Animals: A Deterministic Risk Assessment. J. Food Prot. 2004, 67, 980–992. [Google Scholar] [CrossRef]
- Mughini-Gras, L.; Dorado-García, A.; Van Duijkeren, E.; Van Den Bunt, G.; Dierikx, C.M.; Bonten, M.J.M.; Bootsma, M.C.J.; Schmitt, H.; Hald, T.; Evers, E.G.; et al. Attributable sources of community-acquired carriage of Escherichia coli containing β-lactam antibiotic resistance genes: A population-based modelling study. Lancet Planet. Health 2019, 3, e357–e369. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Helms, M.; Simonsen, J.; Olsen, K.E.P.; Mølbak, K. Adverse Health Events Associated with Antimicrobial Drug Resistance in Campylobacter Species: A Registry-Based Cohort Study. J. Infect. Dis. 2005, 191, 1050–1055. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Miller, W.R.; Munita, J.M.; Arias, C.A. Mechanisms of antibiotic resistance in enterococci. Expert Rev. Anti-Infect. Ther. 2014, 12, 1221–1236. [Google Scholar] [CrossRef] [PubMed]
- Veterinary Medicines Directorate. UK Veterinary Antibiotic Resistance and Sales Surveillance Report (UK-VARSS 2018); Veterinary Medicines Directorate: New Haw, Addlestone, UK, 2019.
- French Agency for Food, Environmental and Occupational Health and Safety. ANSES: French Surveillance Network for Antimicrobial Resistance in Bacteria from Diseased Animals—2017 Annual Report; French Agency for Food, Environmental and Occupational Health and Safety: Maisons-Alfort, France, 2019; p. 107.
- EMA. Opinion following an Article 351 Referral for all Veterinary Medicinal Products Containing Systemically Administered (Parenteral and Oral) 3rd and 4th Generation Cephalosporins Intended for Use in Food Producing Species; EMA: Amsterdam, The Netherlands, 2012.
- EMA. Advice on Implementing Measures under ARTICLE 37(4) of Regulation (EU) 2019/6 on Veterinary Medicinal Products—Criteria for the Designation of Antimicrobials to be Reserved for Treatment of Certain Infections in Humans; EMA: Amsterdam, The Netherlands, 2019.
- The European Commission. Commission Delegated Regulation (EU) 2021/1760 of 26 May 2021 Supplementing Regulation (EU) 2019/6 of the European Parliament and of the Council by Establishing the Criteria for the Designation of Antimicrobials to be Reserved for the Treatment of Certain Infections in Humans; The Official Journal of the European Union; The European Commission: Brussels, Belgium, 2021; C/2021/3552, L353. [Google Scholar]
- EMA. Advice on the designation of antimicrobials or groups of antimicrobials reserved for treatment of certain infections in humans—In relation to implementing measures under Article 37(5) of Regulation (EU) 2019/6 on veterinary medicinal products. In EMA/CVMP/678496/2021; Committee for Veterinary Medicinal Products (CVMP): Amsterdam, The Netherlands, 2022. [Google Scholar]
- The European Commission. Commisision Implementing Regulation (EU) 2022/1255 of 19 July 2022 Designating Antimicrobials or Groups of Antimicrobials Reserved for Treatment of Certain Infections in Humans, in Accordance with Regulation (EU) 2019/6 of the European Parliament and of the Council; The European Commission: Brussels, Belgium, 2022; C/2022/5023, L191. [Google Scholar]
- Anonymous. Entwurf Eines Gesetzes zur Änderung des Tierarzneimittelgesetzes zur Erhebung von Daten über Antibiotisch Wirksame Arzneimittel und zur Änderung Weiterer Vorschriften; Bundesregierung: Berlin, Germany, 2022; Volume 20/3712.
- Hemme, M.; Ruddat, I.; Hartmann, M.; Werner, N.; van Rennings, L.; Käsbohrer, A.; Kreienbrock, L. Antibiotic use on German pig farms—A longitudinal analysis for 2011, 2013 and 2014. PLoS ONE 2018, 13, e0199592. [Google Scholar] [CrossRef]
- Hommerich, K.; Ruddat, I.; Hartmann, M.; Werner, N.; Kasbohrer, A.; Kreienbrock, L. Monitoring Antibiotic Usage in German Dairy and Beef Cattle Farms-A Longitudinal Analysis. Front. Vet. Sci. 2019, 6, 244. [Google Scholar] [CrossRef] [Green Version]
- Anonymous. Gesetz über den Verkehr mit Arzneimitteln (Arzneimittelgesetz) in der Fassung der Bekanntmachung vom 12. Dezember 2005 (BGBl. I S. 3394), das zuletzt durch Artikel 9 des Gesetzes vom 3. Juni 2021 (BGBl. I S. 1309) geändert worden ist. Available online: https://www.gesetze-im-internet.de/amg_1976/BJNR024480976.html (accessed on 18 September 2022).
- Kuratorium für Technik und Bauwesen in der Landwirtschaft e.V. (KTBL). Betriebsplanung Landwirtschaft, 2020/21, 27th ed.; Kuratorium für Technik und Bauwesen in der Landwirtschaft e.V. (KTBL): Darmstadt, Germany, 2020. [Google Scholar]
- Bundesamt für Verbraucherschutz und Lebensmittelsicherheit (BVL). Abgabemengenerfassung von Antibiotika in Deutschland in 2018. In Dtsch. Tierärzteblatt; Bundestierärztekammer e.V.: Berlin, Germany, 2019; Volume 67, pp. 1082–1090. [Google Scholar]
- Bundesamt für Verbraucherschutz und Lebensmittelsicherheit (BVL). Abgabemengenerfassung von Antibiotika in Deutschland in 2019. In Dtsch. Tierärzteblatt; Bundestierärztekammer e.V.: Berlin, Germany, 2020; Volume 68, pp. 1102–1109. [Google Scholar]
- van Rennings, L.; Merle, R.; von Münchhausen, C.; Stahl, J.; Honscha, W.; Käsbohrer, A.; Kreienbrock, L. Variablen zur Beschreibung des Antibiotikaeinsatzes beim Lebensmittelliefernden Tier. Berl. Und Münchener Tierärztliche Wochenschr. 2013, 126, 297–309. [Google Scholar] [CrossRef]
- Merle, R.; Mollenhauer, Y.; Hajek, P.; Robanus, M.; Hegger-Gravenhorst, C.; Honscha, W.; Käsbohrer, A.; Kreienbrock, L. Verbrauchsmengenerfassung von Antibiotika beim Schwein in landwirtschaftlichen Betrieben. Berl. Und Münchener Tierärztliche Wochenschr. 2013, 126, 326–332. [Google Scholar] [CrossRef]
- Hemme, M.; Käsbohrer, A.; von Münchhausen, C.; Hartmann, M.; Merle, R.; Kreienbrock, L. Differences in calculating farm-related antibiotic use in various monitoring systems in Germany—An overview. Berl. Und Münchener Tierärztliche Wochenschr. 2017, 130, 93–101. [Google Scholar] [CrossRef]
- Frisch, J.; Fritzsche, S.; Fröba, N.; Funk, M.; Gaio, C.; Grimm, E.; Grube, J.; Hartmann, S.; Hartmann, W.; Klöble, U.; et al. Betriebsplanung Landwirtschaft 2012/13; Kuratorium für Technik und Bauwesen in der Landwirtschaft (KTBL): Darmstadt, Germany, 2012. [Google Scholar]
Class | 13-1 | 13-2 | 14-1 | 14-2 | 15-1 | 15-2 | 16-1 | 16-2 | 17-1 | 17-2 | 18-1 | 18-2 | 19-1 | 19-2 | 20-1 | 20-2 |
---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
WHO Classification | ||||||||||||||||
HPCIA | 28.3 | 30.3 | 36.7 | 37.1 | 45.9 | 36.2 | 21.7 | 27.2 | 28.1 | 32.6 | 35.3 | 37.5 | 42.8 | 44.8 | 22.4 | 49.8 |
CIA | 33.6 | 37.6 | 42.1 | 43.2 | 40.5 | 51.0 | 58.8 | 57.8 | 52.5 | 50.7 | 40.9 | 44.4 | 45.2 | 38.4 | 53.1 | 46.5 |
HIA | 37.4 | 31.9 | 21.1 | 19.5 | 13.4 | 12.4 | 18.9 | 14.7 | 19.1 | 16.1 | 23.4 | 17.5 | 11.4 | 16.4 | 24.0 | 3.4 |
IA | 0.7 | 0.3 | 0.1 | 0.1 | 0.3 | 0.3 | 0.5 | 0.3 | 0.4 | 0.6 | 0.4 | 0.6 | 0.6 | 0.4 | 0.5 | 0.2 |
WOAH Classification | ||||||||||||||||
VCIA | 83.5 | 87.6 | 83.3 | 87.6 | 91.0 | 94.9 | 99.7 | 99.8 | 99.3 | 99.5 | 99.4 | 98.9 | 95.9 | 96.0 | 95.5 | 94.2 |
VHIA | 16.5 | 12.4 | 16.7 | 12.4 | 9.0 | 5.1 | 0.3 | 0.2 | 0.7 | 0.5 | 0.6 | 1.1 | 4.1 | 4.0 | 4.5 | 5.8 |
EMA Classification | ||||||||||||||||
B | 21.1 | 20.1 | 24.0 | 19.4 | 20.5 | 13.7 | 12.8 | 14.5 | 13.8 | 15.9 | 9.5 | 5.5 | 7.4 | 10.4 | 11.6 | 15.0 |
C | 21.0 | 22.1 | 24.1 | 25.3 | 35.2 | 33.3 | 26.4 | 25.7 | 33.6 | 32.1 | 37.9 | 45.2 | 45.5 | 50.3 | 32.7 | 37.3 |
D | 57.9 | 57.8 | 51.8 | 55.3 | 44.3 | 53.1 | 60.8 | 59.8 | 52.5 | 52.0 | 52.7 | 49.2 | 47.1 | 39.3 | 55.7 | 47.6 |
Class | 13-1 | 13-2 | 14-1 | 14-2 | 15-1 | 15-2 | 16-1 | 16-2 | 17-1 | 17-2 | 18-1 | 18-2 | 19-1 | 19-2 | 20-1 | 20-2 |
---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
WHO Classification | ||||||||||||||||
HPCIA | 44.1 | 12.9 | 19.5 | 23.1 | 19.8 | 21.3 | 15.6 | 15.3 | 10.2 | 10.6 | 10.2 | 7.8 | 17.3 | 9.9 | 8.1 | 8.7 |
CIA | 12.0 | 18.2 | 26.3 | 26.6 | 20.5 | 22.7 | 32.7 | 20.9 | 15.5 | 18.8 | 22.2 | 24.3 | 31.8 | 53.9 | 50.7 | 59.2 |
HIA | 42.5 | 67.3 | 52.7 | 49.0 | 57.7 | 54.5 | 47.4 | 61.7 | 72.9 | 69.6 | 66.9 | 66.2 | 50.1 | 35.1 | 40.6 | 31.7 |
IA | 1.4 | 1.6 | 1.4 | 1.4 | 2.0 | 1.5 | 4.4 | 2.1 | 1.4 | 1.0 | 0.8 | 1.7 | 0.9 | 1.1 | 0.5 | 0.4 |
WOAH Classification | ||||||||||||||||
VCIA | 95.1 | 96.7 | 88.5 | 86.6 | 97.4 | 98.1 | 93.1 | 97.6 | 98.3 | 98.7 | 99.2 | 98.3 | 99.1 | 98.9 | 99.4 | 99.6 |
VHIA | 4.9 | 3.3 | 11.5 | 13.4 | 2.6 | 1.9 | 6.9 | 2.4 | 1.7 | 1.3 | 0.8 | 1.7 | 0.9 | 1.1 | 0.6 | 0.4 |
EMA Classification | ||||||||||||||||
B | 12.6 | 10.0 | 17.6 | 17.7 | 12.0 | 14.6 | 13.8 | 12.8 | 7.6 | 8.4 | 7.4 | 2.7 | 9.8 | 4.7 | 3.0 | 4.0 |
C | 34.1 | 9.3 | 3.7 | 9.0 | 14.1 | 9.8 | 9.3 | 7.2 | 5.5 | 4.2 | 4.6 | 8.7 | 11.8 | 8.5 | 8.5 | 6.6 |
D | 53.2 | 80.7 | 78.6 | 73.3 | 73.9 | 75.6 | 76.8 | 80.0 | 86.9 | 87.4 | 87.9 | 88.6 | 78.4 | 86.7 | 88.5 | 89.4 |
Class | 13-1 | 13-2 | 14-1 | 14-2 | 15-1 | 15-2 | 16-1 | 16-2 | 17-1 | 17-2 | 18-1 | 18-2 | 19-1 | 19-2 | 20-1 | 20-2 |
---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
WHO Classification | ||||||||||||||||
HPCIA | 39.0 | 37.0 | 37.3 | 39.5 | 34.4 | 31.5 | 29.4 | 23.5 | 28.4 | 28.3 | 30.8 | 27.7 | 33.1 | 29.0 | 28.9 | 24.1 |
CIA | 34.2 | 35.5 | 36.9 | 38.3 | 38.4 | 42.2 | 39.8 | 43.7 | 44.0 | 47.0 | 42.3 | 45.1 | 35.6 | 46.9 | 45.4 | 47.4 |
HIA | 26.1 | 27.4 | 25.4 | 21.5 | 26.4 | 24.5 | 28.5 | 30.3 | 26.1 | 22.2 | 23.1 | 24.8 | 30.4 | 22.3 | 24.2 | 27.5 |
IA | 0.7 | 0.1 | 0.4 | 0.7 | 0.9 | 1.8 | 2.2 | 2.5 | 1.5 | 2.5 | 3.8 | 2.3 | 0.9 | 1.9 | 1.6 | 1.0 |
WOAH Classification | ||||||||||||||||
VCIA | 65.7 | 63.9 | 65.4 | 63.0 | 76.6 | 74.1 | 78.9 | 78.1 | 72.9 | 72.0 | 71.9 | 76.3 | 71.7 | 74.2 | 74.5 | 79.8 |
VHIA | 34.3 | 36.1 | 34.6 | 37.0 | 23.4 | 25.9 | 21.1 | 21.9 | 27.1 | 28.0 | 28.1 | 23.7 | 28.3 | 25.8 | 25.5 | 20.2 |
EMA Classification | ||||||||||||||||
B | 33.5 | 34.3 | 34.1 | 36.7 | 23.5 | 25.2 | 20.3 | 20.2 | 26.9 | 26.6 | 25.2 | 22.0 | 28.3 | 24.9 | 25.0 | 24.1 |
C | 11.0 | 7.1 | 6.6 | 5.3 | 14.7 | 10.1 | 14.9 | 8.9 | 7.4 | 7.5 | 11.9 | 9.0 | 8.8 | 12.5 | 8.1 | 47.4 |
D | 55.5 | 58.6 | 59.4 | 58.0 | 61.8 | 64.7 | 64.8 | 71.0 | 65.7 | 65.8 | 62.8 | 69.0 | 62.9 | 62.6 | 66.9 | 27.5 |
Class | 13-1 | 13-2 | 14-1 | 14-2 | 15-1 | 15-2 | 16-1 | 16-2 | 17-1 | 17-2 | 18-1 | 18-2 | 19-1 | 19-2 | 20-1 | 20-2 |
---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
WHO Classification | ||||||||||||||||
HPCIA | 25.3 | 27.9 | 27.8 | 25.3 | 19.9 | 22.2 | 21.3 | 17.6 | 15.8 | 28.0 | 19.3 | 14.3 | 19.4 | 15.2 | 19.5 | 26.9 |
CIA | 26.6 | 31.2 | 33.5 | 30.5 | 31.3 | 32.1 | 36.5 | 36.8 | 30.8 | 34.0 | 32.3 | 34.3 | 31.5 | 32.7 | 27.8 | 28.3 |
HIA | 38.2 | 34.4 | 33.6 | 36.1 | 42.5 | 38.5 | 30.2 | 36.9 | 39.8 | 30.5 | 36.3 | 34.5 | 32.7 | 38.3 | 41.1 | 34.1 |
IA | 9.9 | 6.5 | 5.1 | 8.1 | 6.3 | 7.1 | 12.0 | 8.7 | 13.6 | 7.5 | 12.0 | 16.9 | 16.4 | 13.7 | 11.6 | 10.7 |
WOAH Classification | ||||||||||||||||
VCIA | 80.3 | 77.4 | 81.1 | 78.7 | 88.1 | 86.7 | 80.2 | 87.4 | 82.4 | 83.3 | 83.0 | 75.9 | 76.8 | 81.3 | 85.6 | 86.1 |
VHIA | 19.7 | 22.6 | 18.9 | 21.3 | 11.9 | 13.3 | 19.8 | 12.6 | 17.6 | 16.7 | 17.0 | 24.1 | 23.2 | 18.7 | 14.4 | 13.9 |
EMA Classification | ||||||||||||||||
B | 9.2 | 15.1 | 13.6 | 13.4 | 5.8 | 6.8 | 9.5 | 6.2 | 6.0 | 9.2 | 6.2 | 6.1 | 6.7 | 4.2 | 2.9 | 3.3 |
C | 28.6 | 22.1 | 21.4 | 21.1 | 24.0 | 24.9 | 26.7 | 22.1 | 25.9 | 30.8 | 29.4 | 31.1 | 33.7 | 27.8 | 30.9 | 36.5 |
D | 62.2 | 62.9 | 65.0 | 65.6 | 70.1 | 68.3 | 63.7 | 71.7 | 68.1 | 59.9 | 64.4 | 62.9 | 59.6 | 68.0 | 66.2 | 60.2 |
Substance Class | Substance | WHO | WOAH | EMA |
---|---|---|---|---|
Aminoglycosides | Apramycin | CIA | VCIA | C |
Dihydrostreptomycin | CIA | VCIA | C | |
Gentamicin | CIA | VCIA | C | |
Neomycin | CIA | VCIA | C | |
Paromomycin | CIA | VCIA | C | |
Spectinomycin | IA | VCIA | D | |
Amphenicoles | Florfenicol | HIA | VCIA | C |
Cephalosporins | Cefquinome | HPCIA | VCIA | B |
Ceftiofur | HPCIA | VCIA | B | |
Fluoroquinolones | Danofloxacin | HPCIA | VCIA | B |
Enrofloxacin | HPCIA | VCIA | B | |
Marbofloxacin | HPCIA | VCIA | B | |
Lincosamides | Lincomycin | HIA | VHIA | C |
Macrolides | Erythromycin | HPCIA | VCIA | C |
Gamithromycin | HPCIA | VCIA | C | |
Tildipirosin | HPCIA | VCIA | C | |
Tilmicosin | HPCIA | VCIA | C | |
Tulathromycin | HPCIA | VCIA | C | |
Tylosin | HPCIA | VCIA | C | |
Tylvalosin | HPCIA | VCIA | C | |
Penicillins | Amoxicillin | CIA | VCIA | D |
Ampicillin | CIA | VCIA | D | |
Benzylpenicillin | HIA | VCIA | D | |
Penethamate | HIA | VCIA | D | |
Pleuromutilins | Tiamulin | IA | VHIA | C |
Polymyxins | Colistin | HPCIA | VHIA | B |
Sulfonamides | Sulfadiazine | HIA | VCIA | D |
Sulfadimethoxine | HIA | VCIA | D | |
Sulfadimidine | HIA | VCIA | D | |
Sulfadoxine | HIA | VCIA | D | |
Sulfamethoxazole | HIA | VCIA | D | |
Tetracyclines | Chlortetracycline | HIA | VCIA | D |
Doxycycline | HIA | VCIA | D | |
Oxytetracycline | HIA | VCIA | D | |
Tetracycline | HIA | VCIA | D | |
Trimethoprim | Trimethoprim | HIA | VCIA | D |
Publisher’s Note: MDPI stays neutral with regard to jurisdictional claims in published maps and institutional affiliations. |
© 2022 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
Share and Cite
Bonzelett, C.; Schnepf, A.; Hartmann, M.; Käsbohrer, A.; Kreienbrock, L. Use of Antimicrobials by Class in Pigs in Germany—A Longitudinal Description Considering Different International Categorisation Systems. Antibiotics 2022, 11, 1833. https://doi.org/10.3390/antibiotics11121833
Bonzelett C, Schnepf A, Hartmann M, Käsbohrer A, Kreienbrock L. Use of Antimicrobials by Class in Pigs in Germany—A Longitudinal Description Considering Different International Categorisation Systems. Antibiotics. 2022; 11(12):1833. https://doi.org/10.3390/antibiotics11121833
Chicago/Turabian StyleBonzelett, Clarissa, Anne Schnepf, Maria Hartmann, Annemarie Käsbohrer, and Lothar Kreienbrock. 2022. "Use of Antimicrobials by Class in Pigs in Germany—A Longitudinal Description Considering Different International Categorisation Systems" Antibiotics 11, no. 12: 1833. https://doi.org/10.3390/antibiotics11121833
APA StyleBonzelett, C., Schnepf, A., Hartmann, M., Käsbohrer, A., & Kreienbrock, L. (2022). Use of Antimicrobials by Class in Pigs in Germany—A Longitudinal Description Considering Different International Categorisation Systems. Antibiotics, 11(12), 1833. https://doi.org/10.3390/antibiotics11121833