Journal of Shandong University (Health Sciences) ›› 2019, Vol. 57 ›› Issue (2): 80-87.doi: 10.6040/j.issn.1671-7554.0.2018.1165

Previous Articles    

Effect of FK506 binding protein 52 on proliferation of human endometrial stromal cells

YAN Huili1, WEI Muyun2, YAN Lei3, ZHAO Yueran2,3   

  1. 1. School of Medicine and Life Sciences, University of Jinan-Shandong Academy of Medical Sciences, Jinan 250062, Shandong, China;
    2. Department of Central Laboratory, Shandong Provincial Hospital Affiliated to Shandong University, Jinan 250021, Shandong, China;
    3. Center for Reproductive Medicine, Shandong University, Jinan 250021, Shandong, China
  • Published:2022-09-27

Abstract: Objective To explore the effects of FK506 binding protein 52(FKBP52)on proliferation of human endometrial stromal cells(HESCs), and provide the new basis and target for treatment of thin endometrium. Methods Normal HESCs were isolated and cultured. After infecting HESCs with lentiviruses contain GFP-FKBP52 or transfecting HESCs with FKBP52-targeting small interfering RNA(siRNA)to overexpress or knockdown FKBP52 respectively, the cells proliferation and colony-formation were compared with CCK8 assay and plate clone formation assay. Besides, changes in cell cycle were detected by flowcytometry and expression levels of FKBP52 and cell cycle-related proteins were examined by Western blotting. Results After overexpressing FKBP52, the proliferation activity of HESCs was enhanced(P<0.05), and the clone formation ability of cells was improved(P<0.01). The process of cell cycle was accelerated(P<0.01)and the expression levels of cell cycle dependent kinase 4(CDK4), CyclinD1, cell cycle dependent kinase 2(CDK2)and CyclinE1 were increased(P<0.05). Affected by FKBP52 knockdown in transfected cell, the proliferation capacity of endometrial stromal cells was reduced(P<0.05), and the clone formation capacity was weakened(P<0.05). The cell cycle process was blocked(P<0.05)and expression levels of CDK4, CyclinD1,CDK2 and CyclinE1 were suppressed(P<0.05). Conclusion FKBP52 can control the proliferation of HESCs by regulating the cell 山 东 大 学 学 报 (医 学 版)57卷2期 -阎慧丽,等.FK506结合蛋白52对人子宫内膜间质细胞增殖作用的影响 \=- cycle and can be considered as a target for the treatment of thin endometrium.

Key words: FK506 binding protein 52, Cell proliferation, Cell cycle, Thin endometrium, Endometrial stromal cell

CLC Number: 

  • R711.7
[1] Zhu H, Hou CC, Luo LF, et al. Endometrial stromal cells and decidualized stromal cells:origins, transformation and functions[J]. Gene, 2014, 551(1):1-14.
[2] Salamonsen LA, Nie GY, Hannan NJ, et al. Society for Reproductive Biology Founders Lecture 2009. Preparing fertile soil:the importance of endometrial receptivity[J]. Reprod Fertil Dev, 2009, 21(7):923-934.
[3] Kader MA, Abdelmeged A, Mahran A, et al. The usefulness of endometrial thickness, morphology and vasculature by 2D Doppler ultrasound in prediction of pregnancy in IVF/ICSI cycles[J]. The Egyptian Journal of Radiology and Nuclear Medicine, 2016, 47(1):341-346.
[4] Zhang T, Li Z, Ren XL, et al. Endometrial thickness as a predictor of the reproductive outcomes in fresh and frozen embryo transfer cycles: a retrospective cohort study of 1512 IVF cycles with morphologically good-quality blastocyst[J]. Medicine(Baltimore), 2018, 97(4):e9689. doi:10.1097/MD.0000000000009689.
[5] Riad ON, Hak AA. Assessment of endometrial receptivity using Doppler ultrasonography in infertile women undergoing intrauterine insemination[J]. Gynecol Endocrinol, 2014, 30(1):70-73.
[6] Aydin T, Kara M, Nurettin T. Relationship between endometrial thickness and in vitro fertilization-intracytoplasmic sperm injection outcome[J]. Int J Fertil Steril, 2013, 7(1):29-34.
[7] Liu SM, Zhou YZ, Wang HB, et al. Factors associated with effectiveness of treatment and reproductive outcomes in patients with thin endometrium undergoing estrogen treatment[J]. Chin Med J, 2015, 128(23):3173-3177.
[8] Eftekhar M, Tabibnejad N, Tabatabaie AA. The thin endometrium in assisted reproductive technology:an ongoing challenge[J]. Middle East Fertility Society Journal, 2018, 23(1):1-7.
[9] Bedaiwy MA, Abdelaleem MA, Hussein M, et al. Hormonal, follicular and endometrial dynamics in letrozole-treated versus natural cycles in patients undergoing controlled ovarian stimulation[J]. Reprod Biol Endocrinol, 2011, 9:83. doi:10.1186/1477-7827-9-83.
[10] Young SL. Oestrogen and progesterone action on endometrium:a translational approach to understanding endometrial receptivity[J]. Reprod Biomed Online, 2013, 27(5):497-505.
[11] 俞凌, 王淑芳, 叶明侠, 等. 薄型子宫内膜治疗新进展[J]. 国际生殖健康/计划生育杂志, 2016, 35(2):165-169. YU Ling, WANG Shufang, YE Mingxia, et al. Treatment of thin endometrium: a brief review[J]. Journal of International Reproductive Health/Family Planning, 2016, 35(2):165-169.
[12] Guy NC, Garcia YA, Cox MB. Therapeutic targeting of the FKBP52 co-chaperone in steroid hormone receptor-regulated physiology and disease[J]. Curr Mol Pharmacol, 2015, 9(2):109-125.
[13] Hong CQ, Li T, Zhang F, et al. Elevated FKBP52 expression indicates a poor outcome in patients with breast cancer[J]. Oncol Lett, 2017, 14(5):5379-5385.
[14] Daikoku T, Tranguch S, Friedman DB, et al. Proteomic analysis identifies immunophilin FK506 binding protein 4(FKBP52)as a downstream target of Hoxa10 in the periimplantation mouse uterus[J]. Mol Endocrinol, 2005, 19(3):683-697.
[15] Chen JC, Roan NR. Isolation and culture of human endometrial epithelial cells and stromal fibroblasts[J]. Bio Protoc, 2015, 5(20). pii:e1623.
[16] Matthews CJ, Redfern CP, Hirst BH, et al. Characterization of human purified epithelial and stromal cells from endometrium and endometriosis in tissue culture[J]. Fertil Steril, 1992, 57(5):990-997.
[17] Kim SM, Kim JS. A review of mechanisms of implantation[J]. Dev Reprod, 2017, 21(4):351-359.
[18] Wang W, Taylor RN, Bagchi IC, et al. Regulation of human endometrial stromal proliferation and differentiation by C/EBPβ involves cyclin E-cdk2 and STAT3[J]. Mol Endocrinol, 2012, 26(12):2016-2030.
[19] Bhowal A, Majumder S, Ghosh S, et al. Pathway-based expression profiling of benign prostatic hyperplasia and prostate cancer delineates an immunophilin molecule associated with cancer progression[J]. Sci Rep, 2017, 7(1):9763. doi:10.1038/s41598-017-10068-9.
[20] Wolf E, Lin CY, Eilers M, et al. Taming of the beast:shaping Myc-dependent amplification[J]. Trends Cell Biol, 2015, 25(4):241-248.
[21] Zhang DD, Qi JP, Liu R, et al. c-Myc plays a key role in TADs-induced apoptosis and cell cycle arrest in human hepatocellular carcinoma cells[J]. Am J Cancer Res, 2015, 5(3):1076-1088.
[22] Storer Samaniego C, Suh JH, Chattopadhyay A, et al. The FKBP52 cochaperone acts in synergy with β-catenin to potentiate androgen receptor signaling[J]. PLoS One, 2015, 10(7):e0134015. doi:10.1371/journal.pone.0134015.
[23] Kumar P, Mark PJ, Ward BK, et al. Estradiol-regulated expression of the immunophilins cyclophilin 40 and FKBP52 in MCF-7 breast cancer cells[J]. Biochem Biophys Res Commun, 2001, 284(1):219-225.
[24] Jeong YY, Her J, Oh SY, et al. Hsp90-binding immunophilin FKBP52 modulates telomerase activity by promoting the cytoplasmic retrotransport of hTERT[J]. Biochem J, 2016, 473(20):3517-3532.
[25] Fu XJ, Li HX, Yang K, et al. The important tumor suppressor role of PER1 in regulating the cyclin-CDK-CKI network in SCC15 human oral squamous cell carcinoma cells[J]. Onco Targets Ther, 2016, 9:2237-2245. doi:10.2147/OTT.S100952.
[26] Havens CG, Ho A, Yoshioka N, et al. Regulation of late G1/S phase transition and APC Cdh1 by reactive oxygen species[J]. Mol Cell Biol, 2006, 26(12):4701-4711.
[27] 陈希彦, 王琪, 顾伟亭, 等. 干扰TAZ基因对舌鳞癌细胞CAL27增殖凋亡的影响及其机制[J]. 山东大学学报(医学版), 2018, 56(10):79-85. CHEN Xiyan, WANG Qi, GU Weiting, et al. Effects of TAZ knockdown on the proliferation and apoptosis of TSCC cell line CAL27 and the molecular mechanism[J]. Journal of Shandong University(Health Science), 2018, 56(10):79-85.
[28] Satoh T, Kaida D. Upregulation of p27 cyclin-dependent kinase inhibitor and a C-terminus truncated form of p27 contributes to G1 phase arrest[J]. Sci Rep, 2016, 6:27829. doi:10.1038/srep27829.
[1] ZHAO Ge, ZOU Cunhua, SONG Dongdong, ZHAO Shuping. Effects of tanshinone IIA on the proliferation and apoptosis of endometrial carcinoma cells [J]. Journal of Shandong University (Health Sciences), 2022, 60(9): 53-58.
[2] LIU Teng, MA Yingchun. Expression of ECT2 in uterine corpus endometrial carcinoma and its clinical significance based on bioinformatics database [J]. Journal of Shandong University (Health Sciences), 2022, 60(8): 63-71.
[3] WANG Zhengyang, XIA Yan, SHI Kaixuan, TAO Kun, WANG Xiaojie. Effects of Trametinib on PAX8 expression in ovarian cancer [J]. Journal of Shandong University (Health Sciences), 2021, 59(10): 23-29.
[4] DU Tiantian, LI Juan, ZHAO Yinghui, DUAN Weili, WANG Jing, WANG Yunshan, DU Lutao, WANG Chuanxin. Expression profiles of long non-coding RNA LINC02474 and effects on cell proliferation in colorectal cancer [J]. Journal of Shandong University (Health Sciences), 2021, 59(10): 57-67.
[5] LI Wenqing, YE Lan, JIANG Yuhua. CDK7 inhibitor THZ1 increases the radiosensitivity of human glioma cell line U251 [J]. Journal of Shandong University (Health Sciences), 2021, 59(1): 8-13.
[6] MA Qingyuan, PU Peidong, HAN Fei, WANG Chao, ZHU Zhoujun, WANG Weishan, SHI Chenhui. Effect of miR-27b-3p regulating SMAD1 on osteosarcoma cell proliferation, migration and invasion [J]. Journal of Shandong University (Health Sciences), 2020, 1(7): 32-37.
[7] ZHANG Baowen, LEI Xiangli, LI Jinna, LUO Xiangjun, ZOU Rong. miR-21-5p targeted TIMP3 to inhibit proliferation and extracellular matrix accumulation of mesangial cells in Type II diabetic nephropathy mice [J]. Journal of Shandong University (Health Sciences), 2020, 1(7): 7-14.
[8] LI Xiaofeng, DU Xiaoyi, LIU Hainan, LIU Cheng, FAN Yidong. Berberines effects on the proliferation, apoptosis and DNA damage and repair of human renal cell carcinoma cells [J]. Journal of Shandong University (Health Sciences), 2018, 56(3): 54-59.
[9] HUANG Ping, ZHANG Kun, LI Fang, HUANG Guobao, YAN Bing,XIAO Dongjie, WANG Yunshan, LIU Hua. Comparative study on biological characteristics of mesenchymal stem cells from human umbilical cord and adipose [J]. Journal of Shandong University (Health Sciences), 2018, 56(3): 72-78.
[10] LI Jie, HE Dong, ZHANG Rui, YANG Fan, FENG Shaobin, YANG Yihang, XIN Tao. Expression of karyopherin α2 and its effect on the biological behaviors of glioma [J]. Journal of Shandong University (Health Sciences), 2018, 56(12): 47-54.
[11] CHEN Xiyan, WANG Qi, GU Weiting, WEN Yong. Effects of TAZ knockdown on the proliferation and apoptosis of TSCC cell line CAL27 and the molecular mechanism [J]. Journal of Shandong University (Health Sciences), 2018, 56(10): 79-85.
[12] WANG Yong, JIANG Chen, ZHOU Shiying, YANG Xiaomei. Effect of IQ motif-containing GTPase activating protein 3 on the proliferation and migration of cervical cancer cells [J]. Journal of Shandong University (Health Sciences), 2018, 56(10): 103-109.
[13] YANG Feilong, ZHOU Zunlin, REN Juchao, YAN Lei, LIU Hainan, ZHANG Wenhua, YU Nengwang, LI Dawei, XU Zhonghua. Effects and mechanisms of hepatoma-derived growth factor on the proliferation of prostate cancer cells [J]. Journal of Shandong University (Health Sciences), 2018, 56(1): 62-69.
[14] CHEN Yan, LIU Juan, CHEN Hanxiang, ZHANG Weifang, ZHAO Weiming. Effects of miR-17 on the senescence of human foreskin fibroblasts [J]. JOURNAL OF SHANDONG UNIVERSITY (HEALTH SCIENCES), 2015, 53(5): 55-59.
[15] LI Tao, WU Hongxi, ZHANG Yongchao, ZHENG Zhiming, ZHANG Zhen, TENG Liangzhu. The inhibitory effect of nitidine chloride on pituitary adenoma GH3 cells [J]. JOURNAL OF SHANDONG UNIVERSITY (HEALTH SCIENCES), 2015, 53(10): 6-10.
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed   
No Suggested Reading articles found!