[1] 马明华, 汪晓河, 戴媛媛, 等. 夏枯草消瘤合剂对lewis肺癌小鼠的药效作用[J]. 药学实践杂志, 2020, 38(1):57-62.
[2] 贺天临, 谢国群, 陈洁, 等. 夏枯草消瘤合剂联合化疗治疗中晚期非小细胞肺癌30例[J]. 上海中医药大学学报, 2015, 29(5):29-32. doi:  10.16306/j.1008-861x.2015.05.007
[3] 戴媛媛, 汪晓河, 马明华, 等. 高效液相-高分辨飞行时间质谱对复方夏枯草消瘤方化学成分的鉴别[J]. 药学实践杂志, 2020, 38(2):138-142,155.
[4] MIN J, SHEN H, XI W, et al. Synergistic anticancer activity of combined use of caffeic acid with paclitaxel enhances apoptosis of non-small-cell lung cancer H1299 cells in vivo and in vitro[J]. Cell Physiol Biochem,2018,48(4):1433-1442. doi:  10.1159/000492253
[5] LI Y, JIANG F, CHEN L J, et al. Blockage of TGFβ-SMAD2 by demethylation-activated miR-148a is involved in caffeic acid-induced inhibition of cancer stem cell-like properties in vitro and in vivo[J]. FEBS Open Bio,2015,5(1):466-475. doi:  10.1016/j.fob.2015.05.009
[6] TYSZKA-CZOCHARA M, BUKOWSKA-STRAKOVA K, KOCEMBA-PILARCZYK K A, et al. Caffeic acid targets AMPK signaling and regulates tricarboxylic acid cycle anaplerosis while metformin downregulates HIF-1α-induced glycolytic enzymes in human cervical squamous cell carcinoma lines[J]. Nutrients,2018,10(7):841-862. doi:  10.3390/nu10070841
[7] LIAO X Z, GAO Y, SUN L L, et al. Rosmarinic acid reverses non-small cell lung cancer cisplatin resistance by activating the MAPK signaling pathway[J]. Phytother Res,2020,34(5):1142-1153. doi:  10.1002/ptr.6584
[8] XU Y, HAN S, LEI K, et al. Anti-Warburg effect of rosmarinic acid via miR-155 in colorectal carcinoma cells[J]. Eur J Cancer Prev,2016,25(6):481-489. doi:  10.1097/CEJ.0000000000000205
[9] 周勇, 王帅, 华银槐, 等. 迷迭香酸调节PD-1/B7-H1(PD-L1)信号通路对非小细胞肺癌细胞增殖的抑制研究[J]. 中华中医药学刊, 2020, 38(6):147-151,272. doi:  10.13193/j.issn.1673-7717.2020.06.035
[10] ZHANG L, LIU R, NIU W. Phytochemical and antiproliferative activity of proso millet[J]. PLoS One,2014,9(8):e104058. doi:  10.1371/journal.pone.0104058
[11] CHEEMANAPALLI S, ANURADHA C M, MADHUSUDHANA P, et al. Exploring the binding affinity of novel syringic acid analogues and critical determinants of selectivity as potent proteasome inhibitors[J]. Anti Cancer Agents Med Chem,2016,16(11):1496-1510. doi:  10.2174/1871520616666160513131928
[12] KARTHIK G, ANGAPPAN M, VIJAYAKUMAR A, et al. Syringic acid exerts antiangiogenic activity by downregulation of VEGF in zebrafish embryos[J]. Biomed Prev Nutr,2014,4(2):203-208. doi:  10.1016/j.bionut.2014.01.007
[13] 孔祥虎, 李志欣, 房丽君, 等. 芦丁对人肺癌A549/DDP细胞耐药性的逆转作用及其机制[J]. 中国免疫学杂志, 2019, 35(19):2332-2336. doi:  10.3969/j.issn.1000-484X.2019.19.006
[14] KHAN F, PANDEY P, UPADHYAY T K, et al. Anti-cancerous effect of rutin against HPV-C33A cervical cancer cells via G0/G1 cell cycle arrest and apoptotic induction[J]. Endocr Metab Immune Disord Drug Targets,2020,20(3):409-418. doi:  10.2174/1871530319666190806122257
[15] SALEH A, ELFAYOUMI H M, YOUNS M, et al. Rutin and orlistat produce antitumor effects via antioxidant and apoptotic actions[J]. Naunyn Schmiedebergs Arch Pharmacol,2019,392(2):165-175. doi:  10.1007/s00210-018-1579-0
[16] TIAN S, YU H D. Atractylenolide II inhibits proliferation, motility and induces apoptosis in human gastric carcinoma cell lines HGC-27 and AGS[J]. Molecules,2017,22(11):1886. doi:  10.3390/molecules22111886
[17] WANG J, NASSER M, ADLAT S, et al. Atractylenolide II induces apoptosis of prostate cancer cells through regulation of AR and JAK2/STAT3 signaling pathways[J]. Molecules,2018,23(12):3298. doi:  10.3390/molecules23123298
[18] ZHANG R, WANG Z, YU Q, et al. Atractylenolide II reverses the influence of lncRNA XIST/miR-30a-5p/ROR1 axis on chemo-resistance of colorectal cancer cells[J]. J Cell Mol Med,2019,23(5):3151-3165. doi:  10.1111/jcmm.14148
[19] JI G Q, CHEN R Q, WANG L. Anti-inflammatory activity of atractylenolide III through inhibition of nuclear factor-κB and mitogen-activated protein kinase pathways in mouse macrophages[J]. Immunopharmacol Immunotoxicol,2016,38(2):98-102. doi:  10.3109/08923973.2015.1122617
[20] YOOU M S, NAM S Y, JIN M H, et al. Ameliorative effect of atractylenolide III in the mast cell proliferation induced by TSLP[J]. Food Chem Toxicol, 2017, 106(pt a): 78-85.
[21] KONISHI Y, HITOMI Y, YOSHIDA M, et al. Pharmacokinetic study of caffeic and rosmarinic acids in rats after oral administration[J]. J Agric Food Chem,2005,53(12):4740-4746. doi:  10.1021/jf0478307
[22] 郭少波, 徐露露, 蒋丽娟, 等. 迷迭香酸的大鼠体内代谢产物及代谢途径分析[J]. 中国中药杂志, 2019, 44(21):4704-4712. doi:  10.19540/j.cnki.cjcmm.20190314.001
[23] WANG R, WANG G, HAO H, et al. Quantitative determination of atractylenolide III in rat plasma by liquid chromatography electrospray ionization mass spectrometry[J]. J Chromatogr B Analyt Technol Biomed Life Sci,2006,831(1-2):36-41. doi:  10.1016/j.jchromb.2005.11.026
[24] WAXMAN D J. Rat hepatic cytochrome P-450 isoenzyme 2c. Identification as a male-specific, developmentally induced steroid 16 alpha-hydroxylase and comparison to a female-specific cytochrome P-450 isoenzyme[J]. J Biol Chem,1984,259(24):15481-15490. doi:  10.1016/S0021-9258(17)42574-9
[25] WAXMAN D J, DANNAN G A, GUENGERICH F P. Regulation of rat hepatic cytochrome P-450: age-dependent expression, hormonal imprinting, and xenobiotic inducibility of sex-specific isoenzymes[J]. Biochemistry,1985,24(16):4409-4417. doi:  10.1021/bi00337a023
[26] 赵阳, 柳晓泉, 钱之玉, 等. 药物代谢的性别差异[J]. 药学进展, 2001, 25(5):289-293. doi:  10.3969/j.issn.1001-5094.2001.05.008