畜牧兽医学报 ›› 2025, Vol. 56 ›› Issue (5): 2325-2339.doi: 10.11843/j.issn.0366-6964.2025.05.030
乔亚蕊1,2(), 苗宇航1,2, 黄倩1,2, 周学章1,2,*(
)
收稿日期:
2024-06-17
出版日期:
2025-05-23
发布日期:
2025-05-27
通讯作者:
周学章
E-mail:15209665024@163.com;zhouxuezhang@nxu.edu.cn
作者简介:
乔亚蕊(1998-),女,宁夏石嘴山人,博士生,主要从事动物病原生物学研究,E-mail:15209665024@163.com
基金资助:
QIAO Yarui1,2(), MIAO Yuhang1,2, HUANG Qian1,2, ZHOU Xuezhang1,2,*(
)
Received:
2024-06-17
Online:
2025-05-23
Published:
2025-05-27
Contact:
ZHOU Xuezhang
E-mail:15209665024@163.com;zhouxuezhang@nxu.edu.cn
摘要:
旨在了解奶牛乳腺炎源粪肠球菌的耐药特征和毒力情况,本研究对107株患乳腺炎源粪肠球菌进行药物敏感性试验、耐药基因和毒力基因的检测;选取粪肠球菌F2为代表菌株,对该菌株进行全基因组测序和生物学特性研究,进一步用感染复数(MOI)为1 000的肠球菌JH2-2和粪肠球菌F2感染奶牛乳腺上皮细胞(BMECs),检测F2菌株对BMECs的黏附、入侵能力和菌株对BMECs增殖和损伤的影响;最后建立大蜡螟幼虫感染模型,通过幼虫生存率和病理组织切片两个方面验证该菌株对幼虫组织损伤的病理学特征。结果表明,乳腺炎源粪肠球菌对林可霉素、四环素、红霉素耐药率最高,为100%~90%;分离菌株中有95株粪肠球菌检测出携带耐药基因,84株粪肠球菌检测出携带毒力基因,耐药基因携带率最高的是ermB(91.6%),毒力基因的携带率最高的是esp(78.6%)。对F2菌株全基因测序结果显示该菌株对林可酰胺类、大环内酯类、喹诺酮类等23类抗生素耐药,存在3个携带耐药基因的接合转移元件(ICE)和efaA、gelE、ace、AS等91个相关毒力因子。F2菌株具有较强的环境耐受性,在高温、酸性和碱性环境下存活率较高,具有运动能力和较强的生物膜形成能力(OD570 nm值>2 ODc),细菌侵染BMECs 6 h后,F2菌株对BMECs的黏附、入侵能力极显著(P<0.001)高于对照组,随着时间的推移F2菌株对BMECs的毒性增加,细胞损伤严重、死亡数量增加;F2感染大蜡螟幼虫1 d后,幼虫死亡率为100%,幼虫体内有大量炎性细胞浸润且体腔破坏严重。本研究显示,乳腺炎源粪肠球菌耐药性严重,存在多重耐药现象,可引起BMECs的损伤;该试验结果为后续研究乳源粪肠球菌耐药性和致病性的传播提供实验基础。
中图分类号:
乔亚蕊, 苗宇航, 黄倩, 周学章. 奶牛乳腺炎源粪肠球菌生物学特性研究[J]. 畜牧兽医学报, 2025, 56(5): 2325-2339.
QIAO Yarui, MIAO Yuhang, HUANG Qian, ZHOU Xuezhang. Research on the Biological Characteristics of Enterococcus faecalis in Dairy Cow Mastitis in Ningxia[J]. Acta Veterinaria et Zootechnica Sinica, 2025, 56(5): 2325-2339.
表 1
肠球菌PCR反应扩增引物"
基因种类 Type of genes | 基因 Genes | 引物序列(5′→ 3′) Sequence | 扩增长度/bp Fragments size | 退火温度/℃ Annealing temperature | 参考文献 Reference |
耐药基因 Drug resistance gene | tetM | F-GTGGACAAAGGTACAACGAG | 406 | 56 | [ |
R-CGGTAAAGTTCGTCACACAC | |||||
tetA | F-GCTACATCCTGCTTGCCTTC | 210 | 64 | ||
R-CATAGATCGCCGTGAAGAGG | |||||
tetB | F-GCCCAGTGCTGTTGTTGTCAT | 617 | 56 | ||
R-CGTTTTTTCGCCCCATTTAGT | |||||
tetC | F-CTTGAGAGCCTTCAACCCAG | 418 | 55 | ||
R-ATGGTCGTCATCTACCTGCC | |||||
tetX4 | F-CTGATTCGTGTGACATCATCTTTTG | 204 | 56 | ||
R-GTTAAATTTCCCATTGGTCAGATTA | |||||
tetX5 | F-GGTATCAACATTTCAATGCTTG | 265 | 56 | ||
R-CGATTCGTCCTGCGTATCTTTTG | |||||
mecA | F-TCCAGATTACAACTTCACCAGG | 162 | 54 | ||
R-CCACTTCATATCTTGTAACG | |||||
ermA | F-GGATCAGGAAAAGGACATTTTAC | 412 | 54 | ||
R-GTTCAAGAACAATCAATACAGAG | |||||
ermB | F-GAAATTGGAACAGGTAAAGGGC | 359 | 56 | ||
R-GAATCGAGACTTGAGTGTGC | |||||
ermC | F-GGATCAGGAAAAGGACATTTTAC | 572 | 55 | ||
R-GCTAATATTGTTTAAATCGTCAATTCC | |||||
lsaA | F-GGCAATCGCTTGTGTTTTAGCG | 1 200 | 61 | [ | |
R-GTGAATCCCATGATGTTGATACC | |||||
lsaE | F-TGTCAAATGGTGAGCAAACG | 496 | 54 | [ | |
R-TGTAAAACGGCTTCCTGATG | |||||
lnuA | F-GGTGGCTGGGGGGTAGATGTATTAACTGG | 323 | 54 | [ | |
R-GCTCTCTTTGAAATACATGGTATTTTTCGATC | |||||
lnuG | F-AAGGAACTAATGGCAAGGGT | 706 | 53 | [ | |
R-CCATAACGAGAAGCAAAGAG | |||||
毒力基因 Virulence genes | cylA | F-GACTCGGGGATTGATAGGC | 688 | 56 | [ |
R-GCTGCTAAAGCTGCGCTTAC | |||||
esp | F-TTGCTAATGCTAGTCCACGACC | 932 | 56 | ||
R-GCGTCAACACTTGCATTGCCGA | |||||
asa1 | F-CCAGCCAACTATGGCGGAATC | 529 | 56 | ||
R-CCTGTCGCAAGATCGACTGTA | |||||
efaA | F-GCCAATTGGGACAGACCCTC | 688 | 58 | ||
R-CGCCTTCTGTTCCTTCTTTGGC | |||||
gelE | F-ACCCCGTATCATTGGTTT | 405 | 56 | ||
R-ACGCATTGCTTTTCCATC | |||||
ace | F-GGAATGACCGAGAACGATGGC | 616 | 56 | ||
R-GCTTGATGTTGGCCTGCTTCCG | |||||
agg | F- AAGAAAAAGAAGTAGACCAAC | 1 553 | 58 | ||
R-AAACGGCAAGACAAGTAAATA | |||||
hyl | F-ACAGAAGAGCAGGAAATG | 276 | 56 | ||
R-GACTGACGTCCAAGTTTCCAA |
表 2
7对粪肠球菌MLST分型的管家基因引物"
基因 Genes | 引物序列(5′→ 3′) Sequence | 扩增长度/bp Product size | 退火温度/℃ Annealing temperatures |
adk | F-GAACCTCATTTTAATGGGG | 437 | 50 |
R-TGATGTTGATAGCCAGACG | |||
atpA | F-CGGTTCATACGGAATGGCACA | 556 | |
R-AAGTTCACGATAAGC CACGG | |||
ddl | F-GAGACATTGAATATGCCTTATG | 465 | |
R-AAAAAGAAATCGCACCG | |||
gyd | F-CAAACTGCTTAGCTCCAAGGC | 395 | |
R-CATTTCGTTGTCATACCAAGC | |||
gdh | F-GGCGCACTAAAAGATATGGT | 530 | |
R-CCAAGATTGGGCAACTTCGTC | |||
purk | F-CAGATTGGCACATTGAAAG | 492 | |
R-TTCATTCACATATAGCCCG | |||
pstS | F-TTGAGCCAAGTCGAAGCTGGA | 583 | |
R-CGTGATCACGTTCTACTTCC |
表 3
107株奶牛乳腺炎粪肠球菌药敏试验结果"
抗生素种类 Types of antibiotics | 敏感 Susceptible | 中介 Mediator | 耐药 Resistant | |||||
菌株数 Number of strains | 检出率/% Detection rate | 菌株数 Number of strains | 检出率/% Detection rate | 菌株数 Number of strains | 检出率/% Detection rate | |||
青霉素 Penicillin | 87 | 81.3 | - | - | 20 | 18.7 | ||
庆大霉素 Gentamicin | 77 | 72.0 | 6 | 5.6 | 24 | 22.4 | ||
四环素 Tetracycline | 101 | 94.4 | 2 | 1.9 | 4 | 3.7 | ||
红霉素 Erythromycin | 98 | 91.6 | 2 | 1.9 | 7 | 6.5 | ||
林可霉素 Lincomycin | 107 | 100 | - | - | - | - | ||
恩诺沙星 Enrofloxacin | 73 | 68.2 | 8 | 7.5 | 26 | 24.3 | ||
头孢唑林 Cephazolin | 81 | 75.7 | 10 | 9.3 | 16 | 15.0 |
表 6
粪肠球菌基因组抗性基因预测结果"
菌株 Sample | 抗生素耐药性类型 Type of antibiotic resistance | ||
F2 | Lincosamide | Macrolide | Gentamincin-b |
Streptogramin-b | Fluoroquinolone | Amikacin | |
Spectomycin | Streptomycin | Paromomycin | |
Tetracycline | Tobramycin | Ribostamycin | |
Chloramphenicol | Sisomicin | Butirosin | |
Lincomycin | Dibekacin | Lividomycin | |
Amikacin | Neomycin | Isepamicin | |
Netilmicin | Kanamycin |
表 7
粪肠球菌基因组毒力因子预测结果"
菌株 Sample | 毒力因子 Virulence factors | |||
F2 | DnaK | GAPDH | KatA | MgtBC |
degP | Ybt | Lap | LysA | |
SlrA | T6SS-Ⅱ | ClpB | PDH-B | |
PEB1 | AllB/C/D | YbtQ | SigA | |
ML1683 | Hyaluronidase | HtrA | Hemolysin Ⅲ | |
RegX | LPS | VctC/D | UgpC | |
carB/A | AgrA/C | SrtA | Lsp | |
PurM | STP | PiuA | HA | |
GelE | ClpC | Fss1/2 | Lgt | |
ENO | MprAB | EfaA | TTSS | |
HemH | Lmb | EF | SprE | |
EF-Tu | AdsA | ArgK | RelA | |
GspG | RegX3 | FagC | EPS | |
SitC | FBPs | Ebp pili | GS | |
IlpA | AS | CbrC | RmlC | |
PsaA | FlmH | HitABC | Wzt2 | |
GlnA1 | LOS | GalE | SSA | |
Capsule | AI-2 | T4SS | BopD | |
DltA | Ace | ctpV | FbpABC | |
LplA1 | VirR/S | AatC | LytR | |
BSH | Hemolysin | Nuc | GroEL | |
SodB | NDKs | PgdA | GtcA | |
RopA | LisR/K | ClpE/P | CdsA |
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