[1] | Currens, G.C., Microbial Natural Product Drug Discovery Through Systematic Sampling of Diverse Texas Soils, University of North Texas Health Science Center at Fort Worth, 2021. |
|
[2] | Tesfaye, R.A. and Motuma, R.H., Review on the antimicrobial resistance and its effects on public health, International Journal of Medical Parasitology and Epidemiology Sciences, 5(2), 57-61, 2024. |
|
[3] | Wassenaar, T.M., Use of antimicrobial agents in veterinary medicine and implications for human health, Critical Reviews in Microbiology, 31(3), 155-169, 2005. |
|
[4] | Hosain, M.Z., Kabir, S.L. and Kamal, M.M., Antimicrobial uses for livestock production in developing countries, Veterinary World, 14(1), 210, 2021. |
|
[5] | Grande, J.M., Orozco-Valor, P.M., Liébana, M.S., Sarasola, J.H., Birds of prey in agricultural landscapes: The role of agriculture expansion and intensification, Birds of Prey: Biology and Conservation in the XXI Century, 197-228, 2018. |
|
[6] | Liu, J., Yu, F., Call, D.R., Mills, D.A., Zhang, A., Zhao, Z., On-farm soil resistome is modified after treating dairy calves with the antibiotic florfenicol, Science of the Total Environment, 750, 141694, 2021. |
|
[7] | EFSA Panel on Biological Hazards (BIOHAZ), Koutsoumanis, K., Allende, A., Alvarez‐Ordóñez, A., Bolton, D., Bover‐Cid, S., Chemaly, M., Davies, R., De Cesare, A., Herman, L. and Hilbert, F., Maximum levels of cross‐contamination for 24 antimicrobial active substances in non‐target feed. Part 1: Methodology, general data gaps and uncertainties, EFSA Journal, 19(10), e06852, 2021. |
|
[8] | Batiha, G.E.S., Hussein, D.E., Algammal, A.M., George, T.T., Jeandet, P., Al-Snafi, A.E., Tiwari, A., Pagnossa, J.P., Lima, C.M., Thorat, N.D., Zahoor, M., Application of natural antimicrobials in food preservation: Recent views, Food Control, 126, 108066, 2021. |
|
[9] | Tesfaye, S., A review on the antimicrobial residues and their health impacts in Ethiopia, International Journal of Microbiological Research, 10(3), 139-147, 2019. |
|
[10] | Arsène, M.M.J., Davares, A.K.L., Viktorovna, P.I., Andreevna, S.L., Sarra, S., Khelifi, I.,Sergueïevna, D.M., The public health issue of antibiotic residues in food and feed: Causes, consequences, and potential solutions,Veterinary World, 15(3), 662, 2022. |
|
[11] | Li, S., Zhang, Q., Chen, M., Zhang, X., Liu, P., Determination of veterinary drug residues in food of animal origin: Sample preparation methods and analytical techniques, Journal of Liquid Chromatography & Related Technologies, 43(17-18), 701-724, 2020. |
|
[12] | Al-Safi, S.M., Al-Bayati, H.B., Al-Dawah, N.K., Mehdy, S.S., Effects of Antibiotic residues in animal products on human health and environments, Kufa Journal for Veterinary Medical Sciences, 11(1), 52-56, 2020. |
|
[13] | Rana, M.S., Lee, S.Y., Kang, H.J., Hur, S.J., Reducing veterinary drug residues in animal products: A review, Food Science of Animal Resources, 39(5), 687, 2019. |
|
[14] | Treiber, F.M. and Beranek-Knauer, H., Antimicrobial residues in food from animal origin—A review of the literature focusing on products collected in stores and markets worldwide, Antibiotics, 10(5), 534, 2021. |
|
[15] | Bacanli, M. and Başaran, N., Importance of antibiotic residues in animal food, Food and Chemical Toxicology, 125, 462-466, 2019. |
|
[16] | Ghimpețeanu, O.M., Pogurschi, E.N., Popa, D.C., Dragomir, N., Drăgotoiu, T., Mihai, O.D., Petcu, C.D., Antibiotic use in livestock and residues in food—A public health threat: A review, Foods, 11(10), 1430, 2022. |
|
[17] | Hassan, M.M., El Zowalaty, M.E., Lundkvist, Å., Järhult, J.D., Nayem, M.R.K., Tanzin, A.Z., Badsha, M.R., Khan, S.A., Ashour, H.M., Residual antimicrobial agents in food originating from animals, Trends in Food Science & Technology, 111, 141-150, 2021. |
|
[18] | Waller, D.G., Sampson, A. and Hitchings, A., Medical Pharmacology and Therapeutics E-Book, Elsevier Health Sciences, 2021. |
|
[19] | Dahlgren, D. and Lennernäs, H., Intestinal permeability and drug absorption: Predictive experimental, computational and in vivo approaches, Pharmaceutics, 11(8), 411, 2019. |
|
[20] | Derendorf, H. and Schmidt, S., Rowland and Tozer's Clinical Pharmacokinetics and Pharmacodynamics: Concepts and Applications, 2019. |
|
[21] | Lakshmanan, M., Drug metabolism, Introduction to Basics of Pharmacology and Toxicology: Volume 1: General and Molecular Pharmacology: Principles of Drug Action, 99-116, 2019. |
|
[22] | Lalande, L., Charpiat, B., Leboucher, G., Tod, M., Consequences of renal failure on non-renal clearance of drugs, Clinical Pharmacokinetics, 53, 521-532, 2014. |
|
[23] | U.S. Food and Drug Administration, Animal Medicinal Drug Use Clarification Act (AMDUCA) of 1994, Available at: [Accessed 20 March 2025]. |
|
[24] | Baptiste, K.E. and Pokludová, L., Mass Medications: Prophylaxis and Metaphylaxis, Cascade and Off-label Use, Treatment Guidelines and Antimicrobial Stewardship, Antimicrobials in Livestock 1: Regulation, Science, Practice: A European Perspective, 167-193, 2020. |
|
[25] | Russ, K., The public health implications of antibiotic use in dairy cattle and management strategies to ensure their judicious use, 2011. |
|
[26] | Naves Aroeira, C., Feddern, V., Gressler, V., Contreras-Castillo, C.J., Hopkins, D.L., Growth promoters in cattle and pigs: A review of legislation and implications for human health, Food Reviews International, 39(5), 2507-2529, 2023. |
|
[27] | Greene, J.M. and Martinez, M.N., Using simulations to explore the potential effect of disease and inflammation on the frequency of violative flunixin residues in cattle, Journal of Veterinary Pharmacology and Therapeutics, 2023. |
|
[28] | Nag, P., Sadani, K., Mohapatra, S., Mukherji, S., Mukherji, S., Evanescent wave optical fiber sensors using enzymatic hydrolysis on nanostructured polyaniline for detection of β-lactam antibiotics in food and environment, Analytical Chemistry, 93(4), 2299-2308, 2021. |
|
[29] | Narendrakumar, L., Chakraborty, M., Kumari, S., Paul, D., Das, B., β-Lactam potentiators to re-sensitize resistant pathogens: Discovery, development, clinical use and the way forward, Frontiers in Microbiology, 13, 1092556, 2023. |
|
[30] | Aytenfsu, S., Mamo, G., Kebede, B., Review on chemical residues in milk and their public health concern in Ethiopia, Journal of Nutrition & Food Science, 6(4), 1-1, 2016. |
|
[31] | Chaudhry, S.B., Veve, M.P., Wagner, J.L., Cephalosporins: a focus on side chains and β-lactam cross-reactivity, Pharmacy, 7(3), 103, 2019. |
|
[32] | Macy, E., Why was there ever a warning not to use cephalosporins in the setting of a penicillin 'allergy'? The Journal of Allergy and Clinical Immunology: In Practice, 9(11), 3929-3933, 2021. |
|
[33] | Rahman, M. and Sarker, S.D., Antimicrobial natural products,Annual Reports in Medicinal Chemistry, 55, 77-113, 2020. |
|
[34] | Ponticelli, C. and Glassock, R.J., Prevention of complications from use of conventional immunosuppressants: a critical review, Journal of Nephrology, 32, 851-870, 2019. |
|
[35] | Klocke, C. and Lein, P.J., Evidence implicating non-dioxin-like congeners as the key mediators of polychlorinated biphenyl (PCB) developmental neurotoxicity, International Journal of Molecular Sciences, 21(3), 1013, 2020. |
|
[36] | Baran, A., Kwiatkowska, A., Potocki, L., Antibiotics and bacterial resistance—A short story of an endless arms race, International Journal of Molecular Sciences, 24(6), 5777, 2023. |
|
[37] | Ansari, J., Carvalho, B., Shafer, S.L., Flood, P., Pharmacokinetics and pharmacodynamics of drugs commonly used in pregnancy and parturition, Anesthesia and Analgesia, 122(3), 786-804, 2016. |
|
[38] | Zheng, Y., Fan, L., Dong, Y., Li, D., Zhao, L., Yuan, X., Wang, L., Zhao, S., Determination of sulfonamide residues in livestock and poultry manure using carbon nanotube extraction combined with UPLC-MS/MS, Food Analytical Methods, 14, 641-652, 2021. |
|
[39] | Alagawany, M. and Abd El-Hack, M.E., Natural Feed Additives Used in the Poultry Industry, Bentham Science Publishers, 2020. |
|
[40] | Bhoomika, P.T., Kadwalia, A., Jaiswal, S., Rani, B., Patel, P.K., Antibiotic residues in animal products and its effect on human health, The Pharma Innovation Journal, 8(4), 03-06, 2019. |
|
[41] | Serrano, P., Responsible use of antibiotics in aquaculture, FAO Fisheries Technical Paper, 469, 12-97, 2005. |
|
[42] | Ahmad, I., Malak, H.A., Abulreesh, H.H., Environmental antimicrobial resistance and its drivers: a potential threat to public health, Journal of Global Antimicrobial Resistance, 27, 101-111, 2021. |
|
[43] | Addis, M., A review on antibiotic resistance and its implication on the food chain, Journal of Food Science, 42, 9-11, 2015. |
|
[44] | Sharma, B., Srivastava, M.K., Gosvami, M., Jain, U., Superbugs: The Nightmare Bacteria, 11(5), 765-773, 2021. |
|
[45] | Huang, V., Clayton, N.A. and Welker, K.H., Glycopeptide hypersensitivity and adverse reactions, Pharmacy, 8(2), 70, 2020. |
|
[46] | Mia, S., Antimicrobial residue in food and its public health hazard: A review, 2020. |
|
[47] | Falowo, A.B. and Akimoladun, O.F., Veterinary drug residues in meat and meat products: Occurrence, detection, and implications, Veterinary Medicine and Pharmaceuticals, 3, 194, 2019. |
|
[48] | Landers, T.F., Cohen, B., Wittum, T.E.,Larson, E.L., A review of antibiotic use in food animals: Perspective, policy, and potential, Public Health Reports, 127(1), 4-22, 2012. |
|
[49] | Kyuchukova, R., Antibiotic residues and human health hazard-A Review, Bulgarian Journal of Agricultural Science, 26(3), 664-668, 2020. |
|
[50] | Jayalakshmi, K., Paramasivam, M., Sasikala, M., Tamilam, T.V., Sumithra, A., Review on antibiotic residues in animal products and its impact on environments and human health, Journal of Entomology and Zoology Studies, 5(3), 1446-1451, 2017. |
|
[51] | Fangama, M.I.M., Prevalence of antibiotics residues in meat and application of (HACCP) in Khartoum State, Doctoral dissertation, Sudan University of Science and Technology, 2019. |
|
[52] | Beyene, T. and Tesega, B., Rational veterinary drug use: Its significance in public health, Journal of Veterinary Medicine and Animal Health, 6(12), 302-308, 2014. |
|
[53] | Rahman, M.S., Hassan, M.M.,Chowdhury, S., Determination of antibiotic residues in milk and assessment of human health risk in Bangladesh, Heliyon, 7(8), e07739, 2021. |
|
[54] | Tsagkaris, A.S., Pulkrabova, J.,Hajslova, J., Optical screening methods for pesticide residue detection in food matrices: Advances and emerging analytical trends, Foods, 10(1), 88, 2021. |
|
[55] | Wang, Z., Mi, T., Beier, R.C., Zhang, H., Sheng, Y., Shi, W., Zhang, S.,Shen, J., Hapten synthesis, monoclonal antibody production and development of a competitive indirect enzyme-linked immunosorbent assay for erythromycin in milk, Food Chemistry, 171, 98-107, 2015. |
|
[56] | Tarannum, N., Khatoon, S., Dzantiev, B.B., Perspective and application of molecular imprinting approach for antibiotic detection in food and environmental samples: A critical review, Food Control, 118, 107381, 2020. |
|
[57] | Ibrahim, I.G., Khalafalla, A.E., Yarsan, E., Altintas, L., Tumer, I., Methods for screening veterinary drug residues in animal products: A review, Sudan Journal of Veterinary Research, 31, 1-9, 2016. |
|
[58] | Hao, N. and O'Shea, E.K., Signal-dependent dynamics of transcription factor translocation controls gene expression, Nature Structural & Molecular Biology, 19(1), 31-39, 2012. |
|
[59] | O’Mahony, J., Clarke, L., Whelan, M., O’Kennedy, R., Lehotay, S.J.,Danaher, M., The use of ultra-high pressure liquid chromatography with tandem mass spectrometric detection in the analysis of agrochemical residues and mycotoxins in food—challenges and applications, Journal of Chromatography A, 1292, 83-95, 2013. |
|
[60] | Magalhães, D., Freitas, A., Pouca, A.S.V., Barbosa, J. and Ramos, F., The use of ultra-high-pressure-liquid-chromatography tandem time-of-flight mass spectrometry as a confirmatory method in drug residue analysis: Application to the determination of antibiotics in piglet liver, Journal of Chromatography B, 1153, 122264, 2020. |
|
[61] | Brown, Z.Z., Mapelli, C., Farasat, I., Shoultz, A.V., Johnson, S.A., Orvieto, F., Santoprete, A., Bianchi, E., McCracken, A.B., Chen, K., Zhu, X., Multiple synthetic routes to the mini-protein omomyc and coiled-coil domain truncations, The Journal of Organic Chemistry, 85(3), 1466-1475, 2019. |
|
[62] | Kumar, N., Sharma, G., Leahy, E., Shome, B.R., Bandyopadhyay, S., Deka, R.P., Shome, R., Dey, T.K., Lindahl, J.F., Understanding antibiotic usage on small-scale dairy farms in the Indian states of Assam and Haryana using a mixed-methods approach—Outcomes and challenges, Antibiotics, 10(9), 1124, 2021. |
|
[63] | Pokludová, L., Molecular biology perspective of susceptibility and resistance in main target pathogens in the respective species and antimicrobials of concern, Antimicrobials in Livestock 1: Regulation, Science, Practice: A European Perspective, 2020. |
|
[64] | Dugassa, J. and Shukuri, N., Review on antibiotic resistance and its mechanism of development, Journal of Health, Medicine and Nursing, 1(3), 1-17, 2017. |
|
[65] | Abebew, D., Belihu, K., Zewde, G., Detection and determination of oxytetracycline and penicillin G antibiotic residue levels in bovine bulk milk from Nazareth dairy farms, Ethiopia, Ethiopian Veterinary Journal, 18(1), 1-15, 2014. |
|
[66] | Tian, M., He, X.M., Feng, Y.Z., Wang, W.T., Chen, H.S., Gong, M., Liu, D., Clarke, J.L., Eerde, A., Pollution by antibiotics and antimicrobial resistance in livestock and poultry manure in China, and countermeasures, Antibiotics, 10, 539, 2021. |
|
[67] | Helliwell, R., Morris, C., Raman, S., Antibiotic stewardship and its implications for agricultural animal-human relationships: Insights from an intensive dairy farm in England, Journal of Rural Studies, 78, 447-456, 2020. |
|
[68] | Fang, L., Chen, C., Li, S., Ye, P., Shi, Y., Sharma, G., Chen, X., A comprehensive and global evaluation of residual antibiotics in agricultural soils: Accumulation, potential ecological risks, and attenuation strategies, Ecotoxicology and Environmental Safety, 262, 115175, 2023. |
|
[69] | Beyene, T., Veterinary drug residues in food-animal products: Its risk factors and potential effects on public health, Journal of Veterinary Science & Technology, 7(1), 1-7, 2016. |
|
[70] | Qadri, K., Ganguly, S., Praveen, P.K., Antibiotic resistance in animals against various diseases: A review of importance in veterinary microbiology and clinical veterinary medicine, International Journal of Bioassays, 4, 4296-4298, 2015. |
|
[71] | Garza, M., Mohan, C.V., Brunton, L., Wieland, B., Häsler, B., Typology of interventions for antimicrobial use and antimicrobial resistance in aquaculture systems in low-and middle-income countries, International Journal of Antimicrobial Agents, 59(1), 106495, 2022. |
|
[72] | Ronquillo, M.G. and Hernandez, J.C.A., Antibiotic and synthetic growth promoters in animal diets: Review of impact and analytical methods, Food Control, 72, 255-267, 2017. |
|