Journal of Southern Medical University ›› 2024, Vol. 44 ›› Issue (8): 1599-1604.doi: 10.12122/j.issn.1673-4254.2024.08.19
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Xiaohui WEN1,2(), Shiya HUANG1,2, Xuehong LIU1,2, Kunyin LI3, Yongge GUAN3
Received:
2024-01-24
Online:
2024-08-20
Published:
2024-09-06
Contact:
Yongge GUAN
E-mail:18816781135@163.com
Xiaohui WEN, Shiya HUANG, Xuehong LIU, Kunyin LI, Yongge GUAN. Role of Notch 1 signaling and glycolysis in the pathogenic mechanism of adenomyosis[J]. Journal of Southern Medical University, 2024, 44(8): 1599-1604.
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URL: https://www.j-smu.com/EN/10.12122/j.issn.1673-4254.2024.08.19
Primer | Sequence (5' to 3') |
---|---|
Notch1 | TGGACCAGATTGGGGAGTTC |
GCACACTCGTCTGTGTTGAC | |
GLUT1 | TGGCATCAACGCTGTCTTCT |
AGCCAATGGTGGCATACACA | |
HK2 | GTGAATCGGAGAGGTCCCAC |
GCTAACTTCGGCCACAGGAT | |
PKM | ATGTCGAAGCCCCATAGTGAA |
TGGGTGGTGAATCAATGTCCA | |
PDHA | ATGGAATGGGAACGTCTGTTG |
CCTCTCGGACGCACAGGATA | |
GAPDH | CAGGAGGCATTGCTGATGAT |
GAAGGCTGGGGCTCATTT |
Tab.1 Primer sequences for RT-qPCR
Primer | Sequence (5' to 3') |
---|---|
Notch1 | TGGACCAGATTGGGGAGTTC |
GCACACTCGTCTGTGTTGAC | |
GLUT1 | TGGCATCAACGCTGTCTTCT |
AGCCAATGGTGGCATACACA | |
HK2 | GTGAATCGGAGAGGTCCCAC |
GCTAACTTCGGCCACAGGAT | |
PKM | ATGTCGAAGCCCCATAGTGAA |
TGGGTGGTGAATCAATGTCCA | |
PDHA | ATGGAATGGGAACGTCTGTTG |
CCTCTCGGACGCACAGGATA | |
GAPDH | CAGGAGGCATTGCTGATGAT |
GAAGGCTGGGGCTCATTT |
Group | Age (year) | Uterine volume (cm3) | Number of pregnancies | Number of abortions | CA125 (U/mL) |
---|---|---|---|---|---|
CON | 46.63±2.78 | 280.38 (128.75-1009.46) | 3.00 (2.00-3.00) | 0.00 (0.00-1.75) | 14.44 (12.16-23.82) |
AM | 44.88±2.95 | 636.08 (396.14-1020.82) | 3.50 (2.25-5.00) | 1.50 (0.25-3.50) | 45.01 (28.51-73.14)** |
Tab.2 Baseline characteristics of the patients with adenomyosis and uterine fibroids [n=8, Mean±SD or M (P25-P75)]
Group | Age (year) | Uterine volume (cm3) | Number of pregnancies | Number of abortions | CA125 (U/mL) |
---|---|---|---|---|---|
CON | 46.63±2.78 | 280.38 (128.75-1009.46) | 3.00 (2.00-3.00) | 0.00 (0.00-1.75) | 14.44 (12.16-23.82) |
AM | 44.88±2.95 | 636.08 (396.14-1020.82) | 3.50 (2.25-5.00) | 1.50 (0.25-3.50) | 45.01 (28.51-73.14)** |
Group | Notch1 | GLUT1 | HK2 | PKM | PDHA |
---|---|---|---|---|---|
CON | 1.31±0.78 | 0.71 (0.65-1.13) | 1.01 (0.50-5.26) | 1.01 (0.29-3.63) | 1.78±1.68 |
AM | 5.12±3.46* | 3.04 (1.21-3.85) | 3.31 (1.58-12.38)* | 3.10 (1.40-8.02) | 6.92±5.05* |
Tab.3 Relative mRNA expressions of Notch1 signaling pathway and glycolysis-related factors in the endometrial tissue [n=8, Mean±SD or M (P25-P75)]
Group | Notch1 | GLUT1 | HK2 | PKM | PDHA |
---|---|---|---|---|---|
CON | 1.31±0.78 | 0.71 (0.65-1.13) | 1.01 (0.50-5.26) | 1.01 (0.29-3.63) | 1.78±1.68 |
AM | 5.12±3.46* | 3.04 (1.21-3.85) | 3.31 (1.58-12.38)* | 3.10 (1.40-8.02) | 6.92±5.05* |
Group | Notch1 | GLUT1 | HK2 | PKM | PDHA |
---|---|---|---|---|---|
CON | 0.21±0.11 | 0.15±0.09 | 0.85±0.07 | 0.16±0.05 | 0.21±003 |
AM | 0.60±0.28** | 0.36±0.22* | 0.24±0.13* | 0.31±0.14* | 0.40±0.14* |
Tab.4 Protein expressions of Notch1 signaling pathway and glycolysis-related factors in the endometrial tissue (n=7, Mean±SD)
Group | Notch1 | GLUT1 | HK2 | PKM | PDHA |
---|---|---|---|---|---|
CON | 0.21±0.11 | 0.15±0.09 | 0.85±0.07 | 0.16±0.05 | 0.21±003 |
AM | 0.60±0.28** | 0.36±0.22* | 0.24±0.13* | 0.31±0.14* | 0.40±0.14* |
Group | Glucose | Lactate |
---|---|---|
CON | 88.8±24.82 | 50.16±4.09 |
AM | 50.51±23.50* | 74.34±8.00** |
Tab.5 Glucose and lactic acid levels in the endometrial tissue (n=5, Mean±SD)
Group | Glucose | Lactate |
---|---|---|
CON | 88.8±24.82 | 50.16±4.09 |
AM | 50.51±23.50* | 74.34±8.00** |
Group | Migration cells | Invasion cells |
---|---|---|
ov-NC | 4.78±1.68 | 9.89±4.00 |
ov-Notch1 | 64.56±17.67* | 140.89±48.49* |
Tab.6 Effects of overexpression of Notch1 signaling on migration and invasion of Ishikawa cells (n=3, Mean±SD)
Group | Migration cells | Invasion cells |
---|---|---|
ov-NC | 4.78±1.68 | 9.89±4.00 |
ov-Notch1 | 64.56±17.67* | 140.89±48.49* |
Group | Fermentation capacity | Fermentation reserve |
---|---|---|
ov-NC | 10.43±1.27 | 9.61±1.88 |
ov-Notch1 | 17.13±1.68** | 16.20±1.62* |
Tab.7 Effect of overexpression of Notch1 signaling on glycolysis capacity of Ishikawa cells (n=3, Mean±SD)
Group | Fermentation capacity | Fermentation reserve |
---|---|---|
ov-NC | 10.43±1.27 | 9.61±1.88 |
ov-Notch1 | 17.13±1.68** | 16.20±1.62* |
1 | Guo SW. The pathogenesis of adenomyosis vis-à-vis endometriosis[J]. J Clin Med, 2020, 9(2): 485. |
2 | Harada T, Khine YM, Kaponis A, et al. The impact of adenomyosis on women's fertility[J]. Obstet Gynecol Surv, 2016, 71(9): 557-68. |
3 | Vannuccini S, Tosti C, Carmona F, et al. Pathogenesis of adenomyosis: an update on molecular mechanisms[J]. Reprod Biomed Online, 2017, 35(5): 592-601. |
4 | Mehasseb MK, Taylor AH, Pringle JH, et al. Enhanced invasion of stromal cells from adenomyosis in a three-dimensional coculture model is augmented by the presence of myocytes from affected uteri[J]. Fertil Steril, 2010, 94(7): 2547-51. |
5 | Struble J, Reid S, Bedaiwy MA. Adenomyosis: a clinical review of a challenging gynecologic condition[J]. J Minim Invasive Gynecol, 2016, 23(2): 164-85. |
6 | Wang J, Deng XH, Yang Y, et al. Expression of GRIM-19 in adenomyosis and its possible role in pathogenesis[J]. Fertil Steril, 2016, 105(4): 1093-101. |
7 | Yoo JY, Ku BJ, Kim TH, et al. β-catenin activates TGF-β-induced epithelial-mesenchymal transition in adenomyosis[J]. Exp Mol Med, 2020, 52(10): 1754-65. |
8 | Gu NH, Li GJ, Yang BX, et al. Hypo-expression of tuberin promotes adenomyosis via the mTOR1-autophagy axis[J]. Front Cell Dev Biol, 2021, 9: 710407. |
9 | Stratopoulou CA, Donnez J, Dolmans MM. Origin and pathogenic mechanisms of uterine adenomyosis: what is known so far[J]. Reprod Sci, 2021, 28(8): 2087-97. |
10 | Zhai JY, Li S, Sen S, et al. Transcriptomic analysis supports collective endometrial cell migration in the pathogenesis of adenomyosis[J]. Reprod Biomed Online, 2022, 45(3): 519-30. |
11 | 邓显光, 阮 慧, 李 恋. 有氧糖酵解在乳腺癌中的作用及中医药干预研究进展[J]. 中国实验方剂学杂志, 2024, 30(13): 1-13. |
12 | Hirschhaeuser F, Sattler UGA, Mueller-Klieser W. Lactate: a metabolic key player in cancer[J]. Cancer Res, 2011, 71(22): 6921-5. |
13 | Jin L, Chun J, Pan C, et al. Phosphorylation-mediated activation of LDHA promotes cancer cell invasion and tumour metastasis[J]. Oncogene, 2017, 36(27): 3797-806. |
14 | Yan XL, Zhang XB, Ao R, et al. Effects of shRNA-mediated silencing of PKM2 gene on aerobic glycolysis, cell migration, cell invasion, and apoptosis in colorectal cancer cells[J]. J Cell Biochem, 2017, 118(12): 4792-803. |
15 | 余 功, 陈江涛, 胡 桥, 等. 清燥救肺汤对荷Lewis小鼠肺癌细胞糖酵解关键限速酶HK2, PFK2, PKM2的影响[J]. 中国实验方剂学杂志, 2020, 26(4): 54-8. |
16 | 蔡 哲, 刘繁荣. 淋巴瘤发病机制中Notch1的作用及研究进展[J]. 临床与实验病理学杂志, 2023, 39(3): 343-6. |
17 | Mitsuhashi Y, Horiuchi A, Miyamoto T, et al. Prognostic significance of Notch signalling molecules and their involvement in the invasiveness of endometrial carcinoma cells[J]. Histopathology, 2012, 60(5): 826-37. |
18 | Brustugun OT. A NOTCH added to metabolomics[J]. Br J Cancer, 2019, 121(1): 3-4. |
19 | Liu YQ, Wang XY, Wan L, et al. TIPE2 inhibits the migration and invasion of endometrial cells by targeting β‑catenin to reverse epithelial-mesenchymal transition[J]. Hum Reprod, 2020, 35(6): 1377-90. |
20 | Jin TT, Li MQ, Li T, et al. The inactivation of hippo signaling pathway promotes the development of adenomyosis by regulating EMT, proliferation, and apoptosis of cells[J]. Reprod Sci, 2023, 30(9): 2715-27. |
21 | Peterson R, Minchella P, Cui W, et al. RPLP1 is up-regulated in human adenomyosis and endometrial adenocarcinoma epithelial cells and is essential for cell survival and migration in vitro [J]. Int J Mol Sci, 2023, 24(3): 2690. |
22 | Pollacco J, Sacco K, Portelli M, et al. Molecular links between endometriosis and cancer[J]. Gynecol Endocrinol, 2012, 28(8): 577-81. |
23 | Wang BY, Yang Y, Deng XH, et al. Interaction of M2 macrophages and endometrial cells induces downregulation of GRIM-19 in endometria of adenomyosis[J]. Reprod Biomed Online, 2020, 41(5): 790-800. |
24 | Yu O, Schulze-Rath R, Grafton J, et al. Adenomyosis incidence, prevalence and treatment: united States population-based study 2006-2015[J]. Am J Obstet Gynecol, 2020, 223(1): 94. e1-94. e10. |
25 | Larsen SB, Lundorf E, Forman A, et al. Adenomyosis and junctional zone changes in patients with endometriosis[J]. Eur J Obstet Gynecol Reprod Biol, 2011, 157(2): 206-11. |
26 | Maruyama S, Imanaka S, Nagayasu M, et al. Relationship between adenomyosis and endometriosis; Different phenotypes of a single disease?[J]. Eur J Obstet Gynecol Reprod Biol, 2020, 253: 191-7. |
27 | Qi SS, Zhao XB, Li MJ, et al. Aberrant expression of Notch1/numb/snail signaling, an epithelial mesenchymal transition related pathway, in adenomyosis[J]. Reprod Biol Endocrinol, 2015, 13: 96. |
28 | Kasvandik S, Samuel K, Peters M, et al. Deep quantitative proteomics reveals extensive metabolic reprogramming and cancer-like changes of ectopic endometriotic stromal cells[J]. J Proteome Res, 2016, 15(2): 572-84. |
29 | Zhang MM, Wang SX, Tang L, et al. Downregulated circular RNA hsa_circ_0067301 regulates epithelial-mesenchymal transition in endometriosis via the miR-141/Notch signaling pathway[J]. Biochem Biophys Res Commun, 2019, 514(1): 71-7. |
30 | Moriyama H, Moriyama M, Isshi H, et al. Role of Notch signaling in the maintenance of human mesenchymal stem cells under hypoxic conditions[J]. Stem Cells Dev, 2014, 23(18): 2211-24. |
31 | 王享利. 缺氧对前列腺癌细胞糖酵解及迁移侵袭能力的影响[J]. 中国现代医学杂志, 2016, 26(23): 32-6. |
32 | Kuwabara S, Yamaki M, Yu HQ, et al. Notch signaling regulates the expression of glycolysis-related genes in a context-dependent manner during embryonic development[J]. Biochem Biophys Res Commun, 2018, 503(2): 803-8. |
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