| 1 |
HE W , MA S , LEI L , et al. Prevalence, etiology, and economic impact of clinical mastitis on large dairy farms in China[J]. Vet Microbiol, 2020, 242, 108570.
doi: 10.1016/j.vetmic.2019.108570
|
| 2 |
GAO J , BARKEMA H W , ZHANG L , et al. Incidence of clinical mastitis and distribution of pathogens on large Chinese dairy farms[J]. J Dairy Sci, 2017, 100 (6): 4797- 4806.
doi: 10.3168/jds.2016-12334
|
| 3 |
ZHOU M , YANG Y , WU M , et al. Role of long polar fimbriae type 1 and 2 in pathogenesis of mammary pathogenic Escherichia coli[J]. J Dairy Sci, 2021, 104 (7): 8243- 8255.
doi: 10.3168/jds.2021-20122
|
| 4 |
DOGAN B , KLAESSIG S , RISHNIW M , et al. Adherent and invasive Escherichia coli are associated with persistent bovine mastitis[J]. Vet Microbiol, 2006, 116 (4): 270- 282.
doi: 10.1016/j.vetmic.2006.04.023
|
| 5 |
GILBERT F B , CUNHA P , JENSEN K , et al. Differential response of bovine mammary epithelial cells to Staphylococcus aureus or Escherichia coli agonists of the innate immune system[J]. Vet Res, 2013, 44 (1): 40- 63.
doi: 10.1186/1297-9716-44-40
|
| 6 |
GONEN E , VALLON-EBERHARD A , ELAZAR S , et al. Toll-like receptor 4 is needed to restrict the invasion of Escherichia coli P4 into mammary gland epithelial cells in a murine model of acute mastitis[J]. Cell Microbiol, 2007, 9 (12): 2826- 2838.
doi: 10.1111/j.1462-5822.2007.00999.x
|
| 7 |
CORNUT M , BOURDONNAY E , HENRY T . Transcriptional regulation of inflammasomes[J]. Int J Mol Sci, 2020, 21 (21): 8087.
doi: 10.3390/ijms21218087
|
| 8 |
GOULART D B , MELLATA M . Escherichia coli mastitis in dairy cattle: Etiology, diagnosis, and treatment challenges[J]. Front Microbiol, 2022, 13, 928346.
doi: 10.3389/fmicb.2022.928346
|
| 9 |
XIA X , HOU J , REN P , et al. Coexpression analysis of lncRNAs and mRNAs identifies potential regulatory long noncoding RNAs involved in the inflammatory effects of lipopolysaccharide on bovine mammary epithelial cells[J]. BMC Vet Res, 2023, 19 (1): 209- 221.
doi: 10.1186/s12917-023-03780-4
|
| 10 |
LUO H , XU C , LE W , et al. lncRNA CASC11 promotes cancer cell proliferation in bladder cancer through miRNA-150[J]. J Cell Biochem, 2019, 120 (8): 13487- 13493.
doi: 10.1002/jcb.28622
|
| 11 |
YAN L , WU X , ZHANG Y , et al. LncRNA ENST00000370438 promotes cell proliferation by upregulating DHCR24 in breast cancer[J]. Mol Carcinog, 2023, 62 (6): 855- 865.
doi: 10.1002/mc.23529
|
| 12 |
WANG J P , HU Q C , YANG J , et al. Differential expression profiles of lncRNA following LPS-induced inflammation in bovine mammary epithelial cells[J]. Front Vet Sci, 2021, 8, 758488.
doi: 10.3389/fvets.2021.758488
|
| 13 |
WANG D , YANG H , MA S , et al. Transcriptomic changes and regulatory networks associated with resistance to mastitis in Xinjiang brown cattle[J]. Genes (Basel), 2024, 15 (4): 465- 483.
doi: 10.3390/genes15040465
|
| 14 |
WANG J , WANG X , FENG F , et al. LncRNA HULIB promotes LPS induced inflammatory response in bovine mammary epithelial cells via PP2AB[J]. Int Immunopharmacol, 2024, 143 (Pt 3): 113496.
|
| 15 |
CHU S , ZHAO T , LI M , et al. Long non-coding RNA (CMR) involved in autoprotection in S. aureus mastitis in dairy cows by regulating miR-877/FOXM1[J]. Ecotoxicol Environ Saf, 2024, 278, 116456.
doi: 10.1016/j.ecoenv.2024.116456
|
| 16 |
SUN Y , ZHAO T , MA Y , et al. Multiple roles of LncRNA-BMNCR on cell proliferation and apoptosis by targeting miR-145/CBFB axis in BMECs[J]. Vet Q, 2023, 43 (1): 1- 11.
|
| 17 |
YANG J , HU Q C , WANG J P , et al. RNA-Seq reveals the role of miR-29c in regulating inflammation and oxidative stress of bovine mammary epithelial cells[J]. Front Vet Sci, 2022, 9, 865415.
doi: 10.3389/fvets.2022.865415
|
| 18 |
FENG F , LI Y , WANG J , et al. LncRNA CA12-AS1 targets miR-133a to promote LPS-induced inflammatory response in bovine mammary epithelial cells[J]. Int J Biol Macromol, 2024, 261 (Pt 1): 129710.
|
| 19 |
王晋鹏, 罗仍卓么, 李彦霞, 等. lncRNA RRAS2-AS1在LPS诱导奶牛乳腺上皮细胞炎症中的功能[J]. 中国农业科学, 2024, 57 (14): 2874- 2891.
|
|
WANG J P , LUORENG Z M , LI Y X , et al. Function of lncRNA RRAS2-AS1 in LPS-induced inflammation of bovine mammary epithelial cells[J]. Chinese Journal of Agricultural Sciences, 2024, 57 (14): 2874- 2891.
|
| 20 |
LI Y , REN Q , WANG X , et al. Bta-miR-199a-3p Inhibits LPS-induced inflammation in bovine mammary epithelial cells via the PI3K/AKT/NF-kappa B signaling pathway[J]. Cells, 2022, 11 (21): 3518- 3532.
doi: 10.3390/cells11213518
|
| 21 |
LI R , FANG H , SHEN J , et al. Curcumin alleviates LPS-induced oxidative stress, inflammation and apoptosis in bovine mammary epithelial cells via the NFE2L2 signaling pathway[J]. Toxins (Basel), 2021, 13 (3): 1- 15.
|
| 22 |
LIU J , GAO Y , ZHANG X , et al. Transcriptome sequencing analysis of bovine mammary epithelial cells induced by lipopolysaccharide[J]. Anim Biotechnol, 2024, 35 (1): 2290527.
doi: 10.1080/10495398.2023.2290527
|
| 23 |
LIN T , BAI X , GAO Y , et al. CTH/H (2) S regulates LPS-induced inflammation through IL-8 signaling in MAC-T cells[J]. Int J Mol Sci, 2022, 23 (19): 11822.
doi: 10.3390/ijms231911822
|
| 24 |
LAI Y C , FUJIKAWA T , MAEMURA T , et al. Inflammation-related microRNA expression level in the bovine milk is affected by mastitis[J]. PLoS One, 2017, 12 (5): e0177182.
doi: 10.1371/journal.pone.0177182
|
| 25 |
SRIKOK S , PATCHANEE P , BOONYAYATRA S , et al. Potential role of microRNA as a diagnostic tool in the detection of bovine mastitis[J]. Prev Vet Med, 2020, 182, 105101.
doi: 10.1016/j.prevetmed.2020.105101
|
| 26 |
JIA L , WANG J , LUORENG Z , et al. Progress in expression pattern and molecular regulation mechanism of lncRNA in bovine mastitis[J]. Animals (Basel), 2022, 12 (9): 1059- 1070.
|
| 27 |
WANG H , WANG X , LI X , et al. A novel long non-coding RNA regulates the immune response in MAC-T cells and contributes to bovine mastitis[J]. FEBS J, 2019, 286 (9): 1780- 1795.
doi: 10.1111/febs.14783
|
| 28 |
YANG W , LI X , QI S , et al. lncRNA H19 is involved in TGF-beta1-induced epithelial to mesenchymal transition in bovine epithelial cells through PI3K/AKT signaling pathway[J]. PeerJ, 2017, 5, e3950.
doi: 10.7717/peerj.3950
|
| 29 |
LI X , WANG H , ZHANG Y , et al. Overexpression of lncRNA H19 changes basic characteristics and affects immune response of bovine mammary epithelial cells[J]. PeerJ, 2019, 7, e6715.
doi: 10.7717/peerj.6715
|
| 30 |
YI Y , YANG N , YANG Z , et al. LncRNA TM1-3P regulates proliferation, apoptosis and inflammation of fibroblasts in osteoarthritis through miR-144-3p/ONECUT2 axis[J]. Orthop Surg, 2022, 14 (11): 3078- 3091.
doi: 10.1111/os.13530
|
| 31 |
KLEC C , PRINZ F , PICHLER M . Involvement of the long noncoding RNA NEAT1 in carcinogenesis[J]. Mol Oncol, 2019, 13 (1): 46- 60.
doi: 10.1002/1878-0261.12404
|
| 32 |
MA J , ZHAO N , DU L , et al. Downregulation of lncRNA NEAT1 inhibits mouse mesangial cell proliferation, fibrosis, and inflammation but promotes apoptosis in diabetic nephropathy[J]. Int J Clin Exp Pathol, 2019, 12 (4): 1174- 1183.
|
| 33 |
WANG L , QU P , YIN W , et al. Lnc-NEAT1 induces cell apoptosis and inflammation but inhibits proliferation in a cellular model of hepatic ischemia/reperfusion injury[J]. J Int Med Res, 2021, 49 (3): 1- 11.
|
| 34 |
LU J , GU B , LU W , et al. Lnc-ANRIL modulates the immune response associated with NF-kappaB pathway in LPS-stimulated bovine mammary epithelial cells[J]. Immun Inflamm Dis, 2023, 11 (12): e1125.
doi: 10.1002/iid3.1125
|