参考文献/References:
[1]VASYUKOVA A, LYUBIMOVA K. The need for enrichment of meat products with micronutrients[J]. BIO Web of Conferences,2022,46:01011.
[2]ZHANG H, CHEN Q, NIU B. Risk assessment of veterinary drug residues in meat products[J]. Current Drug Metabolism,2020,21(10):779-789.
[3]BACANLI M G. The two faces of antibiotics:an overview of the effects of antibiotic residues in foodstuffs[J]. Archives of Toxicology,2024,98(6):1717-1725.
[4]安婧,丁子明,高程程,等. 畜禽粪便污染的环境风险与资源化处理技术分析[J]. 环境科学,2023,44(8):4764-4774.
[5]LI H X, ZHANG W H, YAN H M, et al. Understanding the toxi-city risk of antibiotic emissions of aquaculture from the perspective of fluctuations concentration[J]. Environmental Pollution,2024,351:124024.
[6]ZHANG Y, CHENG D M, XIE J, et al. Impacts of farmland application of antibiotic-contaminated manures on the occurrence of antibiotic residues and antibiotic resistance genes in soil:a meta-analysis study[J]. Chemosphere,2022,300:134529.
[7]FENG M M, LIU Y W, YANG L, et al. Antibiotics and antibiotic resistance gene dynamics in the composting of antibiotic fermentation waste-a review[J]. Bioresource Technology,2023,390:129861.
[8]YIN F B, DONG H M, ZHANG W Q, et al. Ability of anaerobic digestion to remove antibiotics contained in swine manure[J]. Biosystems Engineering,2021,212:175-184.
[9]GURMESSA B, PEDRETTI E F, COCCO S, et al. Manure anaerobic digestion effects and the role of pre- and post-treatments on veterinary antibiotics and antibiotic resistance genes removal efficiency[J]. Science of the Total Environment,2020,721:137532.
[10]刘云,秦秋红,周俊言. 黑水虻替代鱼粉在鱼类免疫增强应用中的研究进展[J]. 饲料研究,2023,46(21):180-184.
[11]强敬雯,王晚晴,唐曼玉,等. 黑水虻虫沙在肥料应用中的研究进展[J]. 中国农业科技导报,2023,25(5):158-167.
[12]TEPPER K, EDWARDS O, SUNNA A, et al. Diverting organic waste from landfills via insect biomanufacturing using engineered black soldier flies (Hermetia illucens)[J]. Communications Biology,2024,7(1):862.
[13]GANESAN A R, MOHAN K, KANDASAMY S, et al. Food waste-derived black soldier fly (Hermetia illucens) larval resource recovery:a circular bioeconomy approach[J]. Process Safety and Environmental Protection,2024,184:170-189.
[14]BANKS I J, GIBSON W T, CAMERON M M. Growth rates of black soldier fly larvae fed on fresh human faeces and their implication for improving sanitation[J]. Tropical Medicine & International Health,2014,19(1):14-22.
[15]ROSSI G, OJHA S, BERG W, et al. Estimating the dynamics of greenhouse gas emission during black soldier fly larvae growth under controlled environmental conditions[J]. Journal of Cleaner Production,2024,470:143226.
[16]XIANG F M, HAN L Y, JIANG S Y, et al. Black soldier fly larvae mitigate greenhouse gas emissions from domestic biodegradable waste by recycling carbon and nitrogen and reconstructing microb-ial communities[J]. Environmental Science and Pollution Research International,2024,31(23):33347-33359.
[17]王芳,张双全,戴祝英,等. 昆虫抗菌肽的基因克隆与表达[J]. 自然科学进展,1999,9(1):101-104.
[18]许晓燕,夏嫱. 昆虫抗菌肽免疫调控作用及机制研究进展[J]. 医学研究生学报,2020,33(7):771-776.
[19]ELEFTHERIANOS I, ZHANG W, HERYANTO C, et al. Diversity of insect antimicrobial peptides and proteins - A functional perspective:a review[J]. International Journal of Biological Macromolecules,2021,191:277-287.
[20]SHAO C X, WANG Y, LI G Y, et al. Novel design of simplified β-hairpin antimicrobial peptide as a potential food preservative based on trp-pocket backbone[J]. Food Chemistry,2024,448:139128.
[21]王松山,曹雨欣,张勇. 黑水虻抗菌肽在动物养殖中应用的研究进展[J]. 饲料工业,2025,46(9):19-24.
[22]HU J R, LI S, ZHANG W, et al. Animal production predominantly contributes to antibiotic profiles in the Yangtze River[J]. Water Research,2023,242:120214.
[23]张丹,彭双,王丹青,等. 鸡粪和猪粪生物发酵过程中抗生素抗性基因的动态变化[J]. 环境科学,2023,44(3):1780-1791.
[24]LI Y X, ZHANG X L, LI W, et al. The residues and environmental risks of multiple veterinary antibiotics in animal faeces[J]. Environmental Monitoring and Assessment,2013,185(3):2211-2220.
[25]BOHM K, TAYLOR W, GYAWALI P,et al. Black soldier fly-based bioconversion of biosolids:microbial community dynamics and fate of antibiotic resistance genes[J]. Science of the Total Environment,2024,930:172823.
[26]CARLSON C, DEBLECOURT A, LING M. Abstract 1663 Providencia alcalifaciens is a highly antibiotic resistant microbe found in a suburban creek[J]. Journal of Biological Chemistry,2024,300(3):105857.
[27]SEONG H, LEE S K, CHEON J H, et al. Fecal microbiota transplantation for multidrug-resistant organism:efficacy and response prediction[J]. Journal of Infection,2020,81(5):719-725.
[28]PEI Y X, SUN M X, ZHANG J R, et al. Comparative metagenomic and metatranscriptomic analyses reveal the response of black soldier fly (Hermetia illucens) larvae intestinal microbes and reduction mechanisms to high concentrations of tetracycline[J]. Toxics,2023,11(7):611.
[29]CAO Q C, LIU C C, LI Y, et al. The underlying mechanisms of oxytetracycline degradation mediated by gut microbial proteins and metabolites in Hermetia illucens[J]. Science of the Total Environment,2024,946:174224.
[30]XIA J, GE C R, YAO H Y. Identification of functional microflora underlying the biodegradation of sulfadiazine-contaminated substrates by Hermetia illucens[J]. Journal of Hazardous Materials,2024,463:132892.
[31]SHI Z H, ZHANG J, JIANG Y J, et al. Two low-toxic Klebsiella pneumoniae strains from gut of black soldier fly Hermetia illucens are multi-resistance to sulfonamides and cadmium[J]. Environmental Pollution,2022,312:120062.
[32]MEI H J, LI C J, LI X L, et al. Characteristics of tylosin and enrofloxacin degradation in swine manure digested by black soldier fly (Hermetia illucens L.) larvae[J]. Environmental Pollution,2022,293:118495.
[33]LUO X Y, YANG Q, LIN Y T, et al. Black soldier fly larvae effectively degrade lincomycin from pharmaceutical industry wastes[J]. Journal of Environmental Management,2022,307:114539.
[34]YANG C R, MA S T, LI F, et al. Characteristics and mechanisms of ciprofloxacin degradation by black soldier fly larvae combined with associated intestinal microorganisms[J]. The Science of the Total Environment,2022,811:151371.
[35]CALLEGARI M, JUCKER C, FUSI M, et al. Hydrolytic profile of the culturable gut bacterial community associated with Hermetia illucens[J]. Frontiers in Microbiology,2020,11:1965.
[36]JIANG C L, JIN W Z, TAO X H, et al. Black soldier fly larvae (Hermetia illucens) strengthen the metabolic function of food waste biodegradation by gut microbiome[J]. Microbial Biotechnology,2019,12(3):528-543.
[37]叶小梅,尹寒,奚永兰,等. 黑水虻幼虫肠道微生物的功能及组学应用[J]. 环境昆虫学报,2024,46(1):52-63.
[38]韩璐滢,项方铭,孙佳杰,等. 黑水虻幼虫中肠区块化免疫表达促进特征肠道微生物群落形成[J]. 环境昆虫学报,2024,46(5):1104-1112.
[39]QUEREJETA M, HERV V, PERDEREAU E, et al. Changes in bacterial community structure across the different life stages of black soldier fly (Hermetia illucens)[J]. Microbial Ecology,2023,86(2):1254-1267.
[40]LIAO X B, ZOU R S, LI B X, et al. Biodegradation of chlortetracycline by acclimated microbiota[J]. Process Safety and Environmental Protection,2017,109:11-17.
[41]王佳庆,撒梦尧,王存文. 黑水虻幼虫降解磺胺类抗生素及其营养成分分析[J]. 中国饲料,2024(15):193-197.
[42]LIU C C, YAO H Y, CHAPMAN S J, et al. Changes in gut bacterial communities and the incidence of antibiotic resistance genes during degradation of antibiotics by black soldier fly larvae[J]. Environment International,2020,142:105834.
[43]YANG Q X, TIAN T T, NIU T Q, et al. Molecular characterization of antibiotic resistance in cultivable multidrug-resistant bacteria from livestock manure[J]. Environmental Pollution,2017,229:188-198.
[44]XU C M, KONG L Q, GAO H F, et al. A review of current bacterial resistance to antibiotics in food animals[J]. Frontiers in Microbiology,2022,13:822689.
[45]LIU C C, YAO H Y, CAO Q C, et al. The enhanced degradation behavior of oxytetracycline by black soldier fly larvae with tetracycline resistance genes in the larval gut:kinetic process and mechanism[J]. Environmental Research,2022,214:114211.
[46]JANG H M, SHIN J, CHOI S, et al. Fate of antibiotic resistance genes in mesophilic and thermophilic anaerobic digestion of chemically enhanced primary treatment (CEPT) sludge[J]. Bioresource Technology,2017,244:433-444.
[47]QIAN X, SUN W, GU J, et al. Reducing antibiotic resistance genes,integrons,and pathogens in dairy manure by continuous thermophilic composting[J]. Bioresource Technology,2016,220:425-432.
[48]HE Y, YUAN Q B, MATHIEU J, et al. Antibiotic resistance genes from livestock waste:occurrence,dissemination,and treatment[J]. NPJ Clean Water,2020,3:4.
[49]CHEN L, WANG G, SONG H, et al. Adding fruit fermentation liquid improves the efficiency of the black soldier fly in converting chicken manure and reshapes the structure of its intestinal micro-bial community [J]. Insects,2025,16(5):472
[50]ENGEL P, MORAN N A. The gut microbiota of insects-diversity in structure and function[J]. FEMS Microbiology Reviews,2013,37(5):699-735.
[51]KAYAMA H, TAKEDA K. Functions of innate immune cells and commensal bacteria in gut homeostasis[J]. Journal of Biochemistry,2016,159(2):141-149.
[52]WEI H, JIANG J, ZHAO Y, et al. Potential of lavender essential oil to inhibit tetracycline resistance and modulate gut microbiota in black soldier fly larvae [J]. Journal of Hazardous Materials,2025,488:137345.
[53]LI F, ZENG Z, WU Y, et al. Characteristics of microplastics in typical poultry farms and the association of environment microplastics colonized-microbiota, waterfowl gut microbiota, and antibiotic resistance genes [J]. Journal of Hazardous Materials, 2025, 490: 137808.
[54]CAI M M, MA S T, HU R Q, et al. Systematic characterization and proposed pathway of tetracycline degradation in solid waste treatment by Hermetia illucens with intestinal microbiota[J]. Environmental Pollution,2018,242:634-642.
[55]OGUNWANDE G A, OSUNADE J A, ADEKALU K O, et al. Nitrogen loss in chicken litter compost as affected by carbon to nitrogen ratio and turning frequency[J]. Bioresource Technology,2008,99(16):7495-7503.
[56]AO Y, YANG C R, WANG S C, et al. Characteristics and nutrient function of intestinal bacterial communities in black soldier fly (Hermetia illucens L.) larvae in livestock manure conversion[J]. Microbial Biotechnology,2021,14(3):886-896.
[57]ZALEWSKA M, BAZEJEWSKA A, CZAPKO A, et al. Antibiotics and antibiotic resistance genes in animal manure-consequences of its application in agriculture[J]. Frontiers in Microbiology,2021,12:610656.
[58]DANDACHI I, SOKHN E S, DAHDOUH E A, et al. Prevalence and characterization of multi-drug-resistant Gram-negative Bacilli isolated from Lebanese poultry:a nationwide study[J]. Frontiers in Microbiology,2018,9:550.
[59]AMADOR P, FERNANDES R, PRUDNCIO C, et al. Prevalence of antibiotic resistance genes in multidrug-resistant Enterobacteriaceae on Portuguese livestock manure[J]. Antibiotics,2019,8(1):23.
[60]TZAVARAS I, SIARKOU V I, ZDRAGAS A, et al. Diversity of vanA-type vancomycin-resistant Enterococcus faecium isolated from broilers,poultry slaughterers and hospitalized humans in Greece[J]. The Journal of Antimicrobial Chemotherapy,2012,67(8):1811-1818.
[61]MIIC M, KOCIC B, ARSOVIC A, et al. Human enterococcal isolates as reservoirs for macrolide-lincosamide-streptogramin and other resistance genes[J]. The Journal of Antibiotics,2022,75(7):396-402.
[62]FELER A T, WANG Y, WU C M, et al. Mobile macrolide resistance genes in Staphylococci[J]. Plasmid,2018,99:2-10.
[63]BAKER-AUSTIN C, WRIGHT M S, STEPANAUSKAS R, et al. Co-selection of antibiotic and metal resistance[J]. Trends in Microbiology,2006,14(4):176-182.
[64]LI Y J, YUAN Y, TAN W B, et al. Antibiotic resistance genes and heavy metals in landfill:a review[J]. Journal of Hazardous Materials,2024,464:132395.
[65]XU Z M, WU X Y, ZHANG J X, et al. Microplastics existence intensified bloom of antibiotic resistance in livestock feces transformed by black soldier fly[J]. Environmental Pollution,2023,317:120845.
[66]WANG J Q, LIU C C, CAO Q C, et al. Enhanced biodegradation of microplastic and phthalic acid ester plasticizer:the role of gut microorganisms in black soldier fly larvae[J]. Science of the Total Environment,2024,924:171674.
[67]CAO Q C, LIU C C, CHEN L, et al. Synergistic impacts of antibiotics and heavy metals on Hermetia illucens:unveiling dynamics in larval gut bacterial communities and microbial metabolites[J]. Journal of Environmental Management,2024,365:121632.
[68]许方正,夏万军,陈卓志,等. 昆虫抗菌肽的炎症抑制功能及研究进展[J]. 广东蚕业,2025,59(1):51-58.
[69]楼彤,白秀琴,贺小燕,等. 抗菌肽在海洋防污领域的研究进展[J]. 中国表面工程,2022,35(2):1-11.
[70]EFIMOVA S S, MEDVEDEV R Y, CHULKOV E G, et al. Regulation of the pore-forming activity of cecropin a by local anesthetics[J]. Cell and Tissue Biology,2018,12(4):331-341.
[71]SHEVCHENKO N, GUSEVA Y, VASILIEV A, et al. RETRACTED:black soldier fly (Hermetia illucens),a source of antimicrobial peptides[J]. E3S Web of Conferences,2023,420:09011.
[72]PENG J, LI L, WAN Y, et al. Molecular characterization and antimicrobial activity of cecropin family in Hermetia illucens[J]. Developmental & Comparative Immunology,2024,152:105111.
[73]ZHANG J J, LI J H, PENG Y Z, et al. Structural and functional characterizations and heterogenous expression of the antimicrobial peptides,Hidefensins,from black soldier fly,Hermetia illucens (L.)[J]. Protein Expression and Purification,2022,192:106032.
[74]TONK M, PIERROT C, CABEZAS-CRUZ A, et al. The Drosophila melanogaster antimicrobial peptides Mtk-1 and Mtk-2 are active against the malarial parasite Plasmodium falciparum[J]. Parasitology Research,2019,118(6):1993-1998.
[75]LI Z Z, MAO R Y, TENG D, et al. Antibacterial and immunomodulatory activities of insect defensins-DLP2 and DLP4 against multidrug-resistant Staphylococcus aureus[J]. Scientific Reports,2017,7(1):12124.
[76]JZEFIAK A, ENGBERG R. Insect proteins as a potential source of antimicrobial peptides in livestock production.a review[J]. Journal of Animal and Feed Sciences,2017,26(2):87-99.
[77]SATO H, FEIX J B. Peptide-membrane interactions and mechanisms of membrane destruction by amphipathic alpha-helical antimicrobial peptides[J]. Biochimica et Biophysica Acta,2006,1758(9):1245-1256.
[78]VO T D, SPAHN C, HEILEMANN M, et al. Microbial cationic peptides as a natural defense mechanism against insect antimicrobial peptides[J]. ACS Chemical Biology,2021,16(3):447-451.
[79]FENG M, FEI S G, XIA J M, et al. Antimicrobial peptides as potential antiviral factors in insect antiviral immune response[J]. Frontiers in Immunology,2020,11:2030.
[80]KRISHNAN M, CHOI J, JANG A, et al. Molecular mechanism underlying the TLR4 antagonistic and antiseptic activities of papiliocin,an insect innate immune response molecule[J]. Proceedings of the National Academy of Sciences of the United States of America,2022,119(10):2115669119.
[81]CHEN K K, WANG X Y, WEI X Y, et al. Nitric oxide-induced calcineurin a mediates antimicrobial peptide production through the IMD pathway[J]. Frontiers in Immunology,2022,13:905419.
[82]MENG Y Q, ZHANG X X, ZHANG Z L, et al. Effects of microorganisms on growth performance,body composition,digestive enzyme activity,intestinal bacteria flora and antimicrobial peptide (AMP) content of black soldier fly larvae (Hermetia illucens)[J]. Animals,2023,13(17):2722.
[83]NAKAGAWA A, SAKAMOTO T, KANOST M R, et al. The development of new methods to stimulate the production of antimicrobial peptides in the larvae of the black soldier fly Hermetia illucens[J]. International Journal of Molecular Sciences,2023,24(21):15765.
[84]LZR V, MARTINS A, SPOHN R, et al. Antibiotic-resistant bacteria show widespread collateral sensitivity to antimicrobial peptides[J]. Nature Microbiology,2018,3(6):718-731.
[85]XIA J, GE C R, YAO H Y. Antimicrobial peptides:an alternative to antibiotic for mitigating the risks of antibiotic resistance in aquaculture[J]. Environmental Research,2024,251:118619.
[86]ZHANG Z L, MENG Y Q, LI J J, et al. Effects of antimicrobial peptides from dietary Hermetia illucens larvae on the growth,immunity,gene expression,intestinal microbiota and resistance to Aeromonas hydrophila of juvenile red claw crayfish (Cherax quadricarinatus)[J]. Fish & Shellfish Immunology,2024,147:109437.
[87]DENG X, LIU L L, DENG J, et al. Specific expression of antimicrobial peptides from the black soldier fly in the midgut of silkworms (Bombyx mori) regulates silkworm immunity[J]. Insects,2023,14(5):443.
[88]胡清泉,沙茜,鲍晓伟,等. 黑水虻幼虫处理猪粪的应用成效研究[J]. 家畜生态学报,2024,45(3):81-87.
[89]VAN DER FELS-KLERX H J, MEIJER N, NIJKAMP M M, et al. Chemical food safety of using former foodstuffs for rearing black soldier fly larvae (Hermetia illucens) for feed and food use[J]. Journal of Insects as Food and Feed,2020,6(5):475-488.
[90]DENG B, WANG G Q, YUAN Q X, et al. Enrichment and speciation changes of Cu and Cd in black soldier fly (Hermetia illucens) larval compost and their effects on larval growth performance[J]. Science of the Total Environment,2022,845:157299.
[91]LALANDER C, SENECAL J, GROS CALVO M, et al. Fate of pharmaceuticals and pesticides in fly larvae composting[J]. Science of the Total Environment,2016,565:279-286.
[92]VAN DONGEN K C W, DE LANGE E, VAN ASSELDONK L L M, et al. Safety and transfer of veterinary drugs from substrate to black soldier fly larvae[J]. Animal,2024,18(7):101214.