Submitted:
06 September 2023
Posted:
08 September 2023
You are already at the latest version
Abstract
Keywords:
1. Introduction
2. Materials and Methods
2.1. Test material
2.1.1. Algal species tested
2.1.2. Test drugs
2.2. Methods
2.2.1. Preparation of BG11 medium
2.2.2. Culture of M. aeruginosa
2.2.3. Establish standard curve
2.2.4. Toxicity test of EF and CF on M. aeruginosa
2.2.5. Effects of EF and CF on the Toxicity Production of M. aeruginosa
2.3. Data processing and statistics
3. Results
3.1. Effects of EF and CF on the population density of M. aeruginosa
3.2. EC50 values of EF and CF on M. aeruginosa

| Grade Toxic | Aquatic organisms96h LC50(mg/L) | Rat oral 96h LC50 (mg/L) |
|---|---|---|
| Grade X (very high toxic) | <0.1 | <0.5 |
| Grade A (high toxic) | 0.1-1.0 | 0.5-5.0 |
| Grade B (medium toxic) | 1.0-10.0 | 5.0-50.0 |
| Grade C (medium low toxic) | 10.0-100.0 | 50.0-500.0 |
| Grade D (low toxic) | >100.0 | >500.0 |
3.3. Effects of EF and CF on the toxin production of M. aeruginosa
4. Discussion
4.1. Toxic effects of antibiotics on M. aeruginosa
4.2. Effect of antibiotics on toxin production by M. aeruginosa
5. Conclusions
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
- Yu, Z.G. Distribution and Purification of Pharmaceutical and Personal Care Products (PPCPs) in Drinking Water. Ph.D. Thesis, Tsinghua University, Beijing, China, 2011.
- Chen, D.J. Industrialization of antibiotics in China and global research and development of new drugs. In the 7th China Summit Forum on Industrial Biotechnology Development. Tianjin, China, May 9-12, 2013.
- Zhang, Q.Q.; Ying, G.G.; Pan, C.G.; Liu, Y.S.; Zhao, J.L. Comprehensive evaluation of antibiotics emission and fate in the river basins of China: Source analysis, multimedia modeling, and linkage to bacterial resistance. Environ. Sci. Technol. 2015, 49(11),6772-6782. [CrossRef]
- Tang, Q.; Song, P.; Li, J.J.; Kong, F.L.; Sun, L.; Xu, L.Z. Control of antibiotic resistance in China must not be delayed: The current state of resistance and policy suggestions for the government, medical facilities, and patients. Biosci. Trends, 2016, 10(1),1-6. [CrossRef]
- Zhang, M.; Wang, J.H.; Zhao, Y.; Wang, G.X. Antimicrobial susceptibility test of 20 traditional Chinese medicines against Vibrio anguillarum. Progress in Veterinary Medicine 2005, 26(8),77-79.
- Lalumera, G.M.; Calamari, D.; Galli, P.; Castiglioni, S.; Crosa, G.; Fanelliet, R. Preliminary investigation on the environmental occurrence and effects of antibiotics used in aquaculture in Italy. Chemosphere 2004, 54(5), 661-668. [CrossRef]
- Zhang, S.Y.; Song, C.; Chen, C.C. Research progress on the application of quinolone antibiotics in aquaculture. Jiangsu Agricultural Sciences 2019, 47(03), 32-36. [CrossRef]
- He, X.; Wang, Z.; Nie, X.; Yang, Y.; Pan, D.; Leung, A.O.; Cheng, Z.; Yang, Y.; Li, K.; Chen, K. Residues of fluoroquinolones in marine aquaculture environment of the Pearl River Delta, South China. Environ. Geochem. Health 2012, 34(3), 323-335. [CrossRef]
- Zhang, Q.; Xin, Q.;, Zhu, J.M. The antibiotic contaminations in the main water bodies in China and the associated environmental and human health impacts. Environ. Chem. 2014,33(07),1075-1083. [CrossRef]
- Yuan, S.G.; Cui, Y.F.; Zhang, W.J. Residual levels of antibiotics in aquatic products in Beijing market. Asian Journal of Ecotoxicology 2015,10(3),311-317.
- He, X.T.; Deng, M.C.; Wang, Q.; Yang, Y.T.; Yang, Y.F.; Nie, X.P. Residues and health risk assessment of quinolones and sulfonamides in cultured fish from Pearl River Delta, China. Aquaculture 2016, 458,38-46. [CrossRef]
- Ingrid, C.; Jamie, B. Toxic Cyanobacteria in Water. E&FN Spon Publisher, London and New York, 1999; 416p.
- Su, Y.L.; Deng, Y.R.; Microcystins in eutrophic lakes and their controlling and removing methods. Environ. Sci. Technol. 2013,36(06),62-66+84.
- Singh, D.P.; Tyagi, M.B.; Kumar, A.; Thakur, J.K.; Kumar, A. Antialgal activity of a hepatotoxin-producing cyanobacterium, Microcystis aeruginosa. World J. Microbiol. 2001,17(1),15-22. [CrossRef]
- Li, Y.; Zhang, M.; Wang, R.N. The temporal and spation variation of the cyanobacteria which caused the water bloom in the Dianchi Lake, Kunming‚ China. Journal of Yunnan University 2005,03,272-276. (in Chinese).
- Yang, W.W.; Hien, V.T.T.; Wu, Y.X.; Zhang, W.H. Toxicity of enrofloxacin and erythromycin thiocyanate on Microcystis aeruginosa. China Environ. Sci. 2013,33(10),1829-1834.
- Xu, X.Y.; Cheng, T.Y.; Chen, L. Zhang, W.; Liu, T.Z. Effects of phosphorus on Haematococcus pluvialis cell propagation and differentiation in two mediums. Chin. J. Process Eng. 2016,16(5), 840-848. (in Chinese). [CrossRef]
- Liu, D.; Zeng, H.H.; Deng, Y. Combined stress toxicity of binary heavy metal mixture to Scenedesmus obliquus. Sci. Technol. Eng. 2019,19(22),374-383. (in Chinese).
- Shen, P.P.; Wang, Z.H.; Qi, Y.Z.; Xie, L.C.; Wang, Y. An optical density method for determination of microalgal biomass. Journal of Jinan University (Natural Science) 2001, 22(03),115-119. (in Chinese).
- Lv, X.Y.; Zhang, E.; Yang, Y. Methodological research on measuring chlorella quantity by spectrophotometry. J. Anhui Agri. Sci. 2009,37(23),11104-11105. (in Chinese).
- Gu, D.X.; Song, G.L.; Ge, L.Y. Deng, H.H.; Zhang, M.H. Study on toxicology of two antibiotics on Isochrysis galbana. Zhejiang Agri. Sci. 2013,02,179-182.
- van Meerloo, J.; Kaspers, G.J.; Cloos, J. Cell sensitivity assays: The MTT assay. Methods Mol. Biol. 2011,731,237-45. [CrossRef]
- Plumb, J.A. Cell sensitivity assays: The MTT assay. Methods Mol. Med. 2004,88,165-9. [CrossRef]
- Carraschi, S.P.; Cruz, C.D.; Basile, A.G.; Pitelli, R.A. Effects of fungicides for non target fungi Alternaria cassiae. Int. j. environ. agric. biotech. 2017, 2(1),451-455. [CrossRef]
- Zhang, L.Y.; Huang, Q.F.; Wang, Q.; Li, X.J.; Duan, H.B. Hazardous waste classification and management. Environmental Pollution and Prevention 2006, 1,34-36. (in Chinese).
- Kasai, K.; Kanno, T.; Endo, Y. Endo Y.; Wakasa, K.; Tozawa, Y. Guanosine tetra- and pentaphosphate synthase activity in chloroplasts of a higher plant: Association with 70S ribosomes and inhibition by tetracycline. Nucleic Acids Res. 2004, 32,5732-5741. [CrossRef]
- Lopes, T.O.M.; Passo,s L.S.; Vieira, L.V.; Pinto, E.; Dorr, F.; Scherer, R.; de Andrade Salustriano, N.; Carneiro, M.T.W.D.; Postay, L.F.; Gomes, L.C.. Metals, arsenic, pesticides, and microcystins in tilapia (Oreochromis niloticus) from aquaculture parks in Brazil. Environ. Sci. Pollut. Res. Int. 2020,27(16),20187-20200. [CrossRef]
- Pan, Y.; Dong, J.; Wan, L.; Sun, S, MacIsaac, H.J.; Drouillard, K.G.; Chang, X. Norfloxacin pollution alters species composition and stability of plankton communities. J. Hazard. Mater. 2020,385(5),121625. [CrossRef]
- Qin, H.W.; Chen, L.F.; Liu, N. Qin, W.C.; Yuan, X. Toxic effect of ofloxacin on Scenedesmus obliquus. Environmental Chemistry 2011,30(4),885-886. (in Chinese).
- Su, Z.X.; Xiao, H.; Li, C. Toxic effects of enrofloxacin hydrochloride on Chlorella pyrenoidosa. Chin. J. Prev. Vet. Med. 2017, 6,96-99. (in Chinese).
- Wan, J.J. Study the Response of Freshwater Microalgae to Several Antibiotics Stress. Ph.D. Thesis, Huaqiao University, Xiamen, China, 2014.
- Shi, L. The Hormesis Effect of Three Quinolone Antibiotics in Chlorella pyrenoidosa. Ph.D. Thesis, Harbin University of Commerce, Harbin, China, 2018.
- Lian, P.; Ge, L.Y.; Deng, H.H. Zhao, C.R.; Xu, X.X. Toxic effects of two quinolone antibiotics on Platymonas subcordiformis. Environmental Science and Management 2014,39(5),46-48.
- Hu, Z.Q.; Liu, Y.D.; Xiao, B. Effects of microcystin on the growth and photosynthetic activity of algae in freshwater. Ecol. Environ. 2008,03,885-890.
- Zhang, H. Effects of the Ratio of Nitrogen and Phosphorus Concentration on Growth and Microcystin of Microcystis aeruginosa. Ph.D. Thesis, Hefei University of Technology, Hefei, China, 2020.
- Oh, H.M.; Lee, S.J.; Jang, M.H.; Yoon, B.D. Microcystin production by Microcystis aeruginosa in a phosphorus-limited chemostat. Appl. Environ. Microbiol. 2000, 66(1),176-179. [CrossRef]
- Wiedner, C.; Visser, P.M.; Fastner J.; Metcalf, J.S.; Codd, G.A.; Mur, L.R. Effects of light on the microcystin content of Microcystis strain PCC 7806. Appl. Environ. Microbiol. 2003, 69(3),1475-1481. [CrossRef]
- Watanabe, M.F.; Oishi, S. Effects of environmental factors on toxicity of a cyanobacterium (Microcystis aeruginosa) under culture conditions. Appl. Environ. Microbiol. 1985, 49(5),1342-1344. [CrossRef]
- Wu, R.; Cui, L.F.; Lu, S.; et al. Effects of temperature and light on the growth of Microcystis aeruginosa and the release of algal toxins. Environ. Sci. Technol. 2010,06,33-36+51.
- Wu, H.Y.; Su, J.; Shi, W. Study on the growth and toxicity Microcystis aeruginosa strain under different condition. J. Environ. Health 2006, 23(4),304-307.
- Yi, W.L.; Wang, G.D.; Liu, X.W.; Ma, Z.Y. Effects of N/P ratios on the growth and some biochemical constituents of Microcystis aeruginosa. Journal of Northwest Sci-Tech Univ. of Agr. and Forestry (Natural Sciences Edition) 2005,06,151-154.
- Xu D.M. Study on Distribution Characteristics and Influence Mechanism of Microcystins in Chaohu Lake. Ph.D. Thesis, Anhui Jianzhu University, Hefei, China, 2022.
- Long, B.M.; Jones, G.J.; Orr, P.T. Cellular microcystin content in N-Limited Microcystis aeruginosa can be predicted from growth rate. Appl. Environ. Microbiol. 2001, 67(1),278-283. [CrossRef]





| Types of antibiotics | Concentration(mg/L) | ||||
|---|---|---|---|---|---|
| Enrofloxacin (EF) | 0.0 | 12.0 | 36.0 | 72.0 | 120.0 |
| Ciprofloxacin (CF) | 0.0 | 30.0 | 45.0 | 60.0 | 150.0 |
| Types of antibiotics | CK | Concentration(μg/L) | ||
|---|---|---|---|---|
| Enrofloxacin | 0.0 | 56.1 (1×SC) | 280.5 (5×SC) | 1402.5 (25×SC) |
| Ciprofloxacin | 0.0 | 49.8 (1×SC) | 249.0 (5×SC) | 1245.0 (25×SC) |
| Types of antibiotics | Regression equation | R2 |
|---|---|---|
| Enrofloxacin | y = 110.35+ (-104.96-110.35)/(1 + exp((x-2.88)/56.47)) | 0.9983 |
| Ciprofloxacin | y = 110.35+ (-104.96-110.35)/(1 + exp((x-2.88)/56.47)) | 0.9984 |
Disclaimer/Publisher’s Note: The statements, opinions and data contained in all publications are solely those of the individual author(s) and contributor(s) and not of MDPI and/or the editor(s). MDPI and/or the editor(s) disclaim responsibility for any injury to people or property resulting from any ideas, methods, instructions or products referred to in the content. |
© 2023 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 (http://creativecommons.org/licenses/by/4.0/).