KirbisA, KrizmanaM. Spread of antibiotic resistant bacteria from food of animal origin to humans and vice versa. Procedia Food Sci. 2015; 5:148–151.
2.
LinDM, KoskellaB, LinHC. Phage therapy: An alternative to antibiotics in the age of multi-drug resistance. World J Gastrointest Pharmacol. 2017; 8(3):162–173.
ChenY, GuoF, WangJ, et al.Provincial and gridded population projection for China under shared socioeconomic pathways from 2010 to 2100. Sci Data. 2020; 7(1):83.
5.
ZhuYG, JohnsonTA, SuJQ, et al.Diverse and abundant antibiotic resistance genes in Chinese swine farms. Proc Natl Acad Sci U S A. 2013; 110(9):3435–3440.
6.
CBG. Antibiotic market analysis report in 2013–2018 in China. 2014. www.chinabgao.com/
7.
FerechM.Coenen S, Malhotra-Kumar S, et al. European Surveillance of Antimicrobial Consumption (ESAC): Outpatient antibiotic use in Europe. J Antimicrob Chemother. 2006; 58(2):401–407.
8.
YassinAK, GongJ, KellyP, et al. Antimicrobial resistance in clinical Escherichia coli. isolates from poultry and livestock, China. PLoS One. 2017;12(9): e18, 5326.
9.
ZhangQ, YingG, PanC, et al.A comprehensive evaluation of antibiotics emission and fate in the river basins of China: Source analysis, multimedia modelling, and linkage to bacterial resistance. Environ Sci Technol. 2015; 49(11):6772–6782.
10.
SpellbergB, GuidosR, GilbertD, et al.The epidemic of antibiotic-resistant infections: A call to action for the medical community from the Infectious Diseases Society of America. Clin Infect Dis. 2008; 46(2):155–164.
11.
HoverBM, KimSH, KatzM, et al.Culture-independent discovery of the malacidins as calcium-dependent antibiotics with activity against multidrug-resistant Gram-positive pathogens. Nat Microbiol. 2018; 3(4):415–422.
12.
LingLL, SchneiderT, PeoplesAJ, et al.A new antibiotic kills pathogens without detectable resistance. Nature, 2015; 517(7535):455–459.
13.
LiuYQ, BaiH, HuM, et al. In: Wax RG, Lewis K, Salyers AA, Taber H.Bacterial Resistance to Antimicrobials. Second Edition. Beijing: Chemical Industry Press; 2012.
14.
LiuYQ, XuH, LiLL, et al. In: Keen PL, Mark HMM.Antimicrobial Resistance in the Environment. Beijing: Chemical Industry Press; 2015.
15.
LiuYQ, LiLL, LiaoXP, et al.EUCAST Standard. Beijing: Chemical Industry Press; 2017.
16.
WangR, LiuYQ, TongYG, et al. In: Borysowski J, Miedzybrodzki R, Gorski A.Phage Therapy: Current Research and Applications. Beijing: Chemical Industry Press; 2019.
17.
LiuYQ, LuoYB, HuM, et al.Phage Pharmacology and its Methods and Protocols. Beijing: Chemical Industry Press (in press).
18.
QinJ, WuN, BaoJ, et al.Heterogeneous Klebsiella pneumoniae co-infections complicate personalized bacteriophage therapy. Front Cell Infect. 2020; 10:608402.
19.
WuN, DaiJ, GuoM, et al.Pre-optimized phage therapy on secondary Acinetobacter baumannii infection in four critical COVID-19 patients. Emerg Microbes Infec. 2021; 10(1):612–618.
20.
SaharanVV, VermaP, SinghAP. Escherichia coli, Salmonella spp. and Staphylococcus aureus susceptibility to antimicrobials of human and veterinary importance in poultry sector of India. J Food Safety. 2019; 40(9):e12742.
21.
CourseCE, BoerlinP, SlavicD, et al.Factors associated with Salmonella enterica and Escherichia coli during downtime in commercial broiler chicken barns in ontario. Poultry Sci. 2021; 100(5):101065.
22.
ZhangY, DingY, LiW, et al.Application of a novel lytic podoviridae phage Pu20 for biological control of drug-resistant Salmonella in liquid eggs. Pathogens. 2021; 10(1):34.
23.
LiM, LinH, JingY, WangJ. Broad-host-range Salmonella bacteriophage STP4-a and its potential application evaluation in poultry industry. Poultry Sci. 2020; 99(7):3643–3654.
24.
LuGM, ZhangC, LiuJW, et al.Effects of coliphages on the intestinal microflora of broilers. Chin J Vet Sci. 2017; 37(5):833–838.
25.
WangJP, YanL, LeeJH, et al.Evaluation of bacteriophage supplementation on growth performance, blood characteristics, relative organ weight, breast muscle characteristics and excreta microbial shedding in broilers. Asian-Australas J Anim Sci. 2013; 26(4):573–578.
26.
LiuCG.Analysis Application of Lytical Bacteriophage and Antimicrobial Peptides in Broiler Chicken Breeding Industry. Xinjiang: Shihezi University.2016.
27.
ZhaoPY, BaekHY, KimIH. Effects of bacteriophage supplementation on egg performance, egg quality, excreta microflora, and moisture content in laying hens. Asian-Aust J Anim Sci. 2012; 25(7):1015–1020.
28.
Fishery and Fishery Administration of the Ministry of Agriculture and Rural Affairs. 2019 China Fishery Statistical Yearbook. Beijing: China Agriculture Press; 2019.
29.
LiZ, RenH, LiQ, et al.Exploring the effects of phage cocktails in preventing Vibrio infections in juvenile sea cucumber (Apostichopus japonicus) farming. Aquaculture. 2020; 515:734599.
30.
RichardsGP.Bacteriophage remediation of bacterial pathogens in aquaculture: A review of the technology. Bacteriophage. 2014; 4(4):e975540.
31.
MizanMFR, JahidIK, HaSD. Microbial biofilms in seafood: A food-hygiene challenge. Food Microb. 2015; 49:41–55.
32.
ShenZ, GaoW, WangH, et al.Analysis of the detection result of pathogen in bacterial food poisoning from 2001 to 2009. Modern Prevent Med. 2011; 1:30–33.
33.
RenH, LiZ, XuY, et al.Protective effectiveness of feeding phage cocktails in controlling Vibrio parahaemolyticus infection of sea cucumber Apostichopus japonicus. Aquaculture. 2019; 503:322–329.
34.
ZhangJ, CaoZ, LiZ, et al.Effect of bacteriophages on Vibrio alginolyticus infection in the Sea Cucumber, Apostichopus japonicus (Selenka). J World Aquacult Soc. 2015; 46(2):149–158.
35.
LiZ, LiX, ZhangJ, et al.Use of phages to control Vibrio splendidus infection in the juvenile sea cucumber Apostichopus japonicus. Fish Shellfsh Immun. 2016; 54:302–311.
36.
LiZ, ZhangJ, LiX, et al.Efficiency of a bacteriophage in controlling vibrio infection in the juvenile sea cucumber Apostichopus japonicus. Aquaculture. 2016; 451:345–352.
37.
CuiH, CongC, WangL, et al.Protective effectiveness of feeding phage cocktails in controlling Vibrio harveyi infection of turbot Scophthalmus maximus. Aquaculture. 2021; 535:736390.
38.
WangY, BartonM, ElliottL, et al.Bacteriophage therapy for the control of Vibrio harveyi in greenlip abalone (Haliotis laevigata). Aquaculture. 2017; 473:251–258.
39.
DanaherPJ, MuellerWP. Aeromonashydrophila septic arthritis. Mil Med. 2011; 176:1444–1446.
40.
LiakopoulosV, ArampatzisS, KourtiP, et al.Aeromonas hydrophila as a causative organism in peritoneal dialysis-related peritonitis: Case report and review of the literature. Clin Nephrol. 2011; 75:S65.
41.
BaiM, ChengY, SunX, et al.Nine novel phages from a Plateau Lake in Southwest China: Insights into Aeromonas phage diversity. Viruses. 2019; 11(7):615.