Journal of Southern Medical University ›› 2025, Vol. 45 ›› Issue (12): 2628-2638.doi: 10.12122/j.issn.1673-4254.2025.12.10
Chao LI1(
), Guozhi YIN2, Xiao CHENG3, Yezhen JIANG2,3(
)
Received:2025-05-29
Online:2025-12-20
Published:2025-12-22
Contact:
Yezhen JIANG
E-mail:doctorchaoli@163.com;jyzbhh@163.com
Chao LI, Guozhi YIN, Xiao CHENG, Yezhen JIANG. Angio-associated migratory cell protein is highly expressed in hepatocellular carcinoma and promotes tumor cell invasion and metastasis[J]. Journal of Southern Medical University, 2025, 45(12): 2628-2638.
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URL: https://www.j-smu.com/EN/10.12122/j.issn.1673-4254.2025.12.10
Fig.1 Bioinformatics analysis of AAMP expression in HCC. A-D: Data from different HCC datasets from GEO (A, B), ICGC (C) and TCGA (D) databases all show up-regulated AAMP expression in HCC. ***P<0.001 vs tumor-adjacent tissues. E: AAMP expression is higher in advanced TNM stages. **P<0.01 vs I+II. F: High expression of AAMP predicted unfavorable prognosis.
Fig.3 Knockdown of AAMP in HCC cells by lentivirus transduction. A: Expression of AAMP in 4 HCC cell lines (Hep3B, Li-7, Huh-7, and Mahlavu). B, C: Lentivirus-mediated knockdown of AAMP in Mahlavu (B) and Huh-7 (C) cells, *P<0.05 vs sh-ctrl group.
Fig.4 Knockdown of AAMP does not affect proliferation or apoptosis of HCC cells. A, B: Knockdown of AAMP does not affect proliferation of Mahlavu (A) and Huh-7 (B) cells. C, D: Knockdown of AAMP does not affect apoptosis of Mahlavu (C) and Huh-7 (D) cells.
Fig. 5 Knockdown of AAMP inhibits migration and invasion of HCC cells. A, B: Knockdown of AAMP inhibits wound healing of Mahlavu (A) and Huh-7 (B) cells (*P<0.05 vs sh-ctrl group). C, D: Knockdown of AAMP attenuates Transwell migration ability of Mahlavu (C) and Huh-7 (D) cells (**P<0.01 vs sh-ctrl group). E, F: Knockdown of AAMP suppresses Transwell invasion ability of Mahlavu (E) and Huh-7 (F) cells (*P<0.05 vs sh-ctrl group, **P<0.01 vs sh-ctrl group). n=3 per group.
| Clinical features | AAMP expression | χ2 | P | ||
|---|---|---|---|---|---|
| Low (n=30) | High (n=30) | ||||
| Gender | Male | 21 | 22 | 0.082 | 0.774 |
| Female | 9 | 8 | |||
| Age (year) | <60 | 5 | 3 | 0.144 | 0.704 |
| ≥60 | 25 | 27 | |||
| HBsAg | Negative | 5 | 7 | 0.417 | 0.519 |
| Positive | 25 | 23 | |||
| Liver cirrhosis | Absent | 10 | 8 | 0.317 | 0.573 |
| Present | 20 | 22 | |||
| Tumor size(cm) | ≤5 | 15 | 10 | 1.714 | 0.190 |
| >5 | 15 | 20 | |||
| Venous infiltration | No | 18 | 9 | 5.455 | 0.020 |
| Yes | 12 | 21 | |||
| Edmondson-steiner grading | I+II | 19 | 10 | 5.406 | 0.020 |
| III+IV | 11 | 20 | |||
| Serum AFP level (ng/mL) | <400 | 16 | 9 | 3.360 | 0.067 |
| ≥400 | 14 | 21 | |||
| TNM stage | I+II | 17 | 9 | 4.344 | 0.037 |
| III+IV | 13 | 21 | |||
Tab.1 Clinical significance of high AAMP expression level in HCC
| Clinical features | AAMP expression | χ2 | P | ||
|---|---|---|---|---|---|
| Low (n=30) | High (n=30) | ||||
| Gender | Male | 21 | 22 | 0.082 | 0.774 |
| Female | 9 | 8 | |||
| Age (year) | <60 | 5 | 3 | 0.144 | 0.704 |
| ≥60 | 25 | 27 | |||
| HBsAg | Negative | 5 | 7 | 0.417 | 0.519 |
| Positive | 25 | 23 | |||
| Liver cirrhosis | Absent | 10 | 8 | 0.317 | 0.573 |
| Present | 20 | 22 | |||
| Tumor size(cm) | ≤5 | 15 | 10 | 1.714 | 0.190 |
| >5 | 15 | 20 | |||
| Venous infiltration | No | 18 | 9 | 5.455 | 0.020 |
| Yes | 12 | 21 | |||
| Edmondson-steiner grading | I+II | 19 | 10 | 5.406 | 0.020 |
| III+IV | 11 | 20 | |||
| Serum AFP level (ng/mL) | <400 | 16 | 9 | 3.360 | 0.067 |
| ≥400 | 14 | 21 | |||
| TNM stage | I+II | 17 | 9 | 4.344 | 0.037 |
| III+IV | 13 | 21 | |||
Fig.6 Knockdown of AAMP suppresses HCC lung metastasis in nude mice. A, B: Knockdown of AAMP decreases lung metastatic nodule numbers formed by Mahlavu (A) and Huh-7 (B) cells in nude mice (×100). *P<0.05 vs sh-ctrl group (n=5).
Fig.7 Knockdown of AAMP inhibits expressions of EMT-related proteins in HCC cells. A, C: AAMP knockdown increases E-cadherin expression and reduces N-cadherin, vimentin and Snail protein expressions in Mahlavu (A) and Huh-7 (C) cells (*P<0.05 vs sh-ctrl group, n=3). B, D: Immunofluorescence staining for detecting the proteins in Mahlavu (B) and Huh-7 (D) cells.
Fig.8 Knockdown of AAMP promotes degradation of RhoA protein in HCC cells. A: Knockdown of AAMP does not affect mRNA expression levels of RhoA in Mahlavu or Huh-7 cells. B: Knockdown of AAMP down-regulates protein expression levels of RhoA in Mahlavu and Huh-7 cells (*P<0.05 vs sh-ctrl group). C: MG-132 treatment restores protein expression levels of RhoA in Mahlavu and Huh-7 cells with AAMP knockdown. D: CHX treatment does not rescue RhoA protein expression in Mahlavu or Huh-7 cells with AAMP knockdown (**P<0.01 vs sh-ctrl group, n=3). E: RhoA and AAMP expressions are positively correlated in HCC tissues.
| [1] | Siegel RL, Kratzer TB, Giaquinto AN, et al. Cancer statistics, 2025[J]. CA A Cancer J Clinicians, 2025, 75(1): 10-45. doi:10.3322/caac.21871 |
| [2] | Beckner ME, Krutzsch HC, Stracke ML, et al. Identification of a new immunoglobulin superfamily protein expressed in blood vessels with a heparin-binding consensus sequence[J]. Cancer Res, 1995, 55(10): 2140-9. |
| [3] | Wang X, Chen S, Gao Y, et al. microRNA-125b inhibits the proliferation of vascular smooth muscle cells induced by platelet-derived growth factor BB[J]. Exp Ther Med, 2021, 22(2): 791-8. doi:10.3892/etm.2021.10223 |
| [4] | Reid HM, Wikström K, Kavanagh DJ, et al. Interaction of angio-associated migratory cell protein with the TPα and TPβ isoforms of the human thromboxane A₂ receptor[J]. Cell Signal, 2011, 23(4): 700-17. doi:10.1016/j.cellsig.2010.12.003 |
| [5] | Xu Y, Tian J, Wang M, et al. Co-regulated CeRNA network mediated by circRNA and lncRNA in patients with gouty arthritis[J]. BMC Med Genomics, 2024, 17(1): 264. doi:10.1186/s12920-024-02038-8 |
| [6] | 陈 奇, 武惠韬, 孙金秀, 等. 胃癌转移的分子特征分析及预后评估[J]. 解放军医学院学报, 2019, 40(8):745-9. |
| [7] | Oreskovic E, Wheeler EC, Mengwasser KE, et al. Genetic analysis of cancer drivers reveals cohesin and CTCF as suppressors of PD-L1[J]. Proc Natl Acad Sci USA, 2022, 119(7): e2120540119. doi:10.1073/pnas.2120540119 |
| [8] | Ning Y, Zheng M, Zhang Y, et al. RhoA-ROCK2 signaling possesses complex pathophysiological functions in cancer progression and shows promising therapeutic potential[J]. Cancer Cell Int, 2024, 24(1): 339. doi:10.1186/s12935-024-03519-7 |
| [9] | Zhang X, Zhao YY, Li M, et al. A synergistic regulation works in matrix stiffness-driven invadopodia formation in HCC[J]. Cancer Lett, 2024, 582: 216597. doi:10.1016/j.canlet.2023.216597 |
| [10] | 牛小行, 蒋立柱, 罗胜勇, 等. RNF8调控肝细胞癌增殖和迁移的作用及机制[J]. 中国药理学通报, 2025, 41(7): 1305-11. |
| [11] | Podieh F, Overboom MC, Knol JC, et al. AAMP and MTSS1 are novel negative regulators of endothelial barrier function identified in a proteomics screen[J]. Cells, 2024, 13(19): 1609. doi:10.3390/cells13191609 |
| [12] | Vogt F, Zernecke A, Beckner M, et al. Blockade of angio-associated migratory cell protein inhibits smooth muscle cell migration and neointima formation in accelerated atherosclerosis[J]. J Am Coll Cardiol, 2008, 52(4): 302-11. doi:10.1016/j.jacc.2008.03.055 |
| [13] | 李 超, 陈双江, 姜业臻. 过表达miR-607通过下调TRPC5表达抑制肝细胞癌的生长和转移[J]. 南方医科大学学报, 2022, 42(11):1587-93. |
| [14] | 陈芊伊, 尚书涵, 鲁 欢, 等. 金盏花苷E通过自噬途径下调GPX4和SLC7A11抑制肝癌细胞的增殖和迁移[J]. 南方医科大学学报, 2024, 44(7): 1327-35. |
| [15] | Wang Y, Liu T, Zhang K, et al. Pan-cancer analysis from multi-omics data reveals AAMP as an unfavourable prognostic marker[J]. Eur J Med Res, 2023, 28(1): 258. doi:10.1186/s40001-023-01234-z |
| [16] | Ghosh S, Datta R, Thakur S. Network-based meta-analysis of gene expression reveals novel prognostic biomarkers for the progression of hepatocellular carcinoma from non-alcoholic fatty liver disease[J]. Hum Gene, 2024, 42: 201357. doi:10.1016/j.humgen.2024.201357 |
| [17] | 国际肝胆胰协会中国分会, 中国抗癌协会肝癌专业委员会, 中国研究型医院学会肝胆胰外科专业委员会, 等. 乙肝病毒相关肝细胞癌抗病毒治疗中国专家共识(2023版)[J]. 中华消化外科杂志, 2023, 22(1): 29-41. |
| [18] | Yin Y, Sanders AJ, Jiang WG. The impact of angio-associated migratory cell protein (AAMP) on breast cancer cells in vitro and its clinical significance[J]. Anticancer Res, 2013, 33(4): 1499-509. |
| [19] | Yao S, Shi FF, Wang YY, et al. Angio-associated migratory cell protein interacts with epidermal growth factor receptor and enhances proliferation and drug resistance in human non-small cell lung cancer cells[J]. Cell Signal, 2019, 61: 10-9. doi:10.1016/j.cellsig.2019.05.004 |
| [20] | Yao S, Shi FF, Mu N, et al. Angio-associated migratory cell protein (AAMP) interacts with cell division cycle 42 (CDC42) and enhances migration and invasion in human non-small cell lung cancer cells[J]. Cancer Lett, 2021, 502: 1-8. doi:10.1016/j.canlet.2020.11.050 |
| [21] | 林 杰, 区活辉, 王卫东, 等. 过表达CLEC5A基因抑制肝细胞癌增殖和转移并逆转上皮-间质转化[J]. 南方医科大学学报, 2023, 43(1):85-91. |
| [22] | 邓乾蓉, 占方彪, 谢朝政, 等. AAMP通过调节YAP信号通路促进骨肉瘤细胞转移的机制研究[J]. 肿瘤防治研究, 2024, 51(6):440-7. |
| [23] | Wang T, Rao D, Yu C, et al. RHO GTPase family in hepatocellular carcinoma[J]. Exp Hematol Oncol, 2022, 11(1): 91-102. doi:10.1186/s40164-022-00344-4 |
| [24] | Yan Z, Guo D, Tao R, et al. Fluid shear stress induces cell migration via RhoA-YAP1-autophagy pathway in liver cancer stem cells[J]. Cell Adh Migr, 2022, 16(1): 94-106. doi:10.1080/19336918.2022.2103925 |
| [25] | Gao JH, He AD, Liu LM, et al. Direct interaction of platelet with tumor cell aggravates hepatocellular carcinoma metastasis by activating TLR4/ADAM10/CX3CL1 axis[J]. Cancer Lett, 2024, 585: 216674. doi:10.1016/j.canlet.2024.216674 |
| [26] | Li H, Wang ZW, Zhang W, et al. Fbxw7 regulates tumor apoptosis, growth arrest and the epithelial-to-mesenchymal transition in part through the RhoA signaling pathway in gastric cancer[J]. Cancer Lett, 2016, 370(1): 39-55. doi:10.1016/j.canlet.2015.10.006 |
| [27] | Guo DF, Rahmouni K. The Bardet-Biedl syndrome protein complex regulates cell migration and tissue repair through a Cullin-3/RhoA pathway[J]. Am J Physiol Cell Physiol, 2019, 317(3): C457-65. doi:10.1152/ajpcell.00498.2018 |
| [28] | Niu H, Bi F, Zhao W, et al. Smurf1 regulates ameloblast polarization by ubiquitination-mediated degradation of RhoA[J]. Cell Prolif, 2023, 56(4): e13387. doi:10.1111/cpr.13387 |
| [29] | Wu Y, Liu B, Lin W, et al. AAMP promotes colorectal can-cermetastasis by suppressing SMURF2-mediatedubiquitination and degradation of RhoA[J]. Mol Ther Oncolytics, 2021, 23: 515-30. doi:10.1016/j.omto.2021.11.007 |
| [30] | Hu JJ, Qiu JH, Zheng YM, et al. AAMP regulates endothelial cell migration and angiogenesis through RhoA/rho kinase signaling[J]. Ann Biomed Eng, 2016, 44(5): 1462-74. doi:10.1007/s10439-015-1442-0 |
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