南方医科大学学报 ›› 2026, Vol. 46 ›› Issue (9): 2123-2129.doi: 10.12122/j.issn.1673-4254.2026.09.12
• • 上一篇
李晓敏1,2(
), 徐洁1,2, 高彩月2,3, 朱季军1,2, 王玉2,3, 李冬冬2,3, 王晓燕1,2(
)
收稿日期:2026-02-28
出版日期:2026-09-20
发布日期:2026-09-30
通讯作者:
王晓燕
E-mail:lxm1980326@sina.com;17805296777@163.com
作者简介:李晓敏,副研究员,硕士生导师,E-mail: lxm1980326@sina.com
基金资助:
Xiaomin LI1,2(
), Jie XU1,2, Caiyue GAO2,3, Jijun ZHU1,2, Yu WANG2,3, Dongdong LI2,3, Xiaoyan WANG1,2(
)
Received:2026-02-28
Online:2026-09-20
Published:2026-09-30
Contact:
Xiaoyan WANG
E-mail:lxm1980326@sina.com;17805296777@163.com
Supported by:摘要:
目的 探索circUSP25编码蛋白的生物学功能及其潜在机制。 方法 通过circRNADb和circBank数据库预测circUSP25的编码潜能;采用Sanger测序验证circUSP25的剪接位点;构建circUSP25-Flag野生型及起始密码子ATG突变载体,转染结肠癌细胞SW620和HCT116,应用Western blotting、免疫沉淀、质谱及免疫荧光鉴定circUSP25编码的蛋白及其亚细胞定位;运用TargetP-2.0数据库预测蛋白的信号肽;采用CCK-8和Transwell小室迁移实验评估该蛋白对结肠癌细胞增殖及迁移的影响;通过免疫共沉淀及质谱筛选其相互作用蛋白,免疫荧光验证其与候选蛋白PHB2的共定位关系;应用CCK-8和Transwell小室迁移实验检测敲低PHB2对circUSP25编码蛋白促进增殖及迁移作用的回复。 结果 circUSP25由USP25基因第2、3外显子背向剪接形成,含有编码121个氨基酸的开放阅读框。Western blotting及质谱鉴定证实circUSP25可编码蛋白,该蛋白定位于结肠癌细胞的线粒体。TargetP-2.0预测显示其氨基端1-32aa内含有线粒体转运肽。过表达circUSP25编码蛋白可显著促进结肠癌细胞增殖及迁移(P<0.05)。免疫共沉淀联合质谱鉴定发现该蛋白可与线粒体蛋白PHB2等结合,免疫荧光证实二者在线粒体存在共定位,功能挽救实验表明敲低PHB2可以回复circUSP25编码蛋白对结肠癌细胞增殖及迁移的作用。 结论 circUSP25编码的蛋白定位于线粒体,可能通过与线粒体蛋白相互作用促进结肠癌细胞增殖与迁移。
李晓敏, 徐洁, 高彩月, 朱季军, 王玉, 李冬冬, 王晓燕. circUSP25编码的线粒体蛋白促进结肠癌细胞增殖及迁移[J]. 南方医科大学学报, 2026, 46(9): 2123-2129.
Xiaomin LI, Jie XU, Caiyue GAO, Jijun ZHU, Yu WANG, Dongdong LI, Xiaoyan WANG. The mitochondrial protein encoded by circUSP25 promotes colon cancer cell proliferation and migration[J]. Journal of Southern Medical University, 2026, 46(9): 2123-2129.
图1 环状RNAcircUSP25开放阅读框的预测
Fig.1 Prediction of the open reading frame (ORF) of circUSP25. A: Schematic diagram of the formation of circUSP25, which is generated from back-splicing of exons 2 and 3 of the parental gene USP25. Sanger sequencing confirms that the splice junction sequence of circUSP25 is completely consistent with the head-to-tail splicing of exons 2 and 3 of USP25. B: The ORF of circUSP25 (the green line). C: Schematic diagrams of the wild-type circUSP25-Flag vector containing the translation start codon ATG and the mutant circUSP25-Flag-Mut vector with ATG mutation. D: Sanger sequencing of circUSP25-Flag and circUSP25-Flag-Mut vectors confirms the correct sequences of the translation start codon ATG and its mutation.
图2 circUSP25编码蛋白的鉴定
Fig.2 Identification of the protein encoded by circUSP25. A: Western blotting showing that the circUSP25-Flag vector translates the protein, while the ATG-mutated vector fails to translate. B: Immunoprecipitation coupled with mass spectrometry identifies peptides corresponding to the protein encoded by circUSP25-Flag. C: Immunofluorescence staining reveals that the protein encoded by circUSP25-Flag localizes to the cytoplasm of colon cancer cells (Scale bar=25 μm).
图3 circUSP25编码的蛋白定位于结肠癌细胞的线粒体
Fig.3 The protein encoded by circUSP25 localizes to the mitochondria of colon cancer cells. A: TargetP-2.0 database prediction shows that the N-terminal 1-32 amino acids of circUSP25-encoded protein contain a mitochondrial transit peptide. B: Immunofluorescence staining demonstrates that circUSP25-encoded protein localizes to the mitochondria of colon cancer cells.
图4 circUSP25编码的蛋白促进结肠癌细胞增殖和迁移
Fig.4 The protein encoded by circUSP25 promotes proliferation and migration of colon cancer cells. A: CCK8 assays showing that circUSP25-Flag transfection promotes proliferation of colon cancer cells. B: Transwell assays showing that transfection with circUSP25-Flag enhances migration of colon cancer cells (Scale bar=100 μm). *P<0.05, ***P<0.001, ****P<0.0001 vs NC group.
图5 circUSP25编码的蛋白与线粒体蛋白结合
Fig.5 The protein encoded by circUSP25 binds to mitochondrial proteins. A: Co-immunoprecipitation, electrophoretic separation, and silver nitrate staining reveal a differential band near 35 kD, identified subsequently by mass spectrometry as proteins interacting with the circUSP25-encoded protein. B: Mass spectrometry identifies 138 proteins, among which 15 match the expected molecular weight range. Ranked by confidence and the number of unique peptides, 3 of the top 4 proteins are mitochondrial proteins. C: Top 15 proteins matching the molecular weight range ranked by confidence and the number of unique peptides, with mitochondrial proteins highlighted in red. D: Immunofluorescence staining showing co-localization of the circUSP25-encoded protein with PHB2 in the mitochondria.
图6 敲低PHB2可回复circUSP25编码蛋白对结肠癌细胞增殖和迁移的影响
Fig.6 Knockdown of PHB2 reverses the effects of the circUSP25-encoded protein on colon cancer cell proliferation and migration. A: CCK8 assays showing that PHB2 knockdown reverses the proliferation-promoting effect of the circUSP25-encoded protein. B: Transwell assays showing that PHB2 knockdown reverses the migration-promoting effect of the circUSP25-encoded protein (Scale bars=100 μm). *P<0.05, **P<0.01, ***P<0.001, ****P<0.0001 vs circUSP25-Flag.
| [1] | Sung H, Ferlay J, Siegel RL, et al. Global cancer statistics 2020: GLOBOCAN estimates of incidence and mortality worldwide for 36 cancers in 185 countries[J]. CA A Cancer J Clin, 2021, 71(3): 209-49. doi:10.3322/caac.21660 |
| [2] | Zuo WR, Huang WZ, Chen HJ, et al. A novel protein encoded by circIMP3 promotes prostate cancer progression by regulating alternative splicing and tumor microenvironment[J]. Front Cell Dev Biol, 2026, 13: 1722674. doi:10.3389/fcell.2025.1722674 |
| [3] | Lv CZ, Huang JP, Ji XY, et al. circPTPRM can encode a functional polypeptide circPTPRM-187aa to promote papillary thyroid carcinoma progression[J]. Mol Cell Endocrinol, 2026, 614: 112734. doi:10.1016/j.mce.2026.112734 |
| [4] | Xiang XH, Fu YN, Zhao K, et al. Cellular senescence in hepatocellular carcinoma induced by a long non-coding RNA-encoded peptide PINT87aa by blocking FOXM1-mediated PHB2 [J]. Theranostics, 2021, 11(10): 4929-44. doi:10.7150/thno.55672 |
| [5] | Bakhti SZ, Latifi-Navid S. Non-coding RNA-encoded peptides/proteins in human cancer: the future for cancer therapy[J]. Curr Med Chem, 2022, 29(22): 3819-35. doi:10.2174/0929867328666211111163701 |
| [6] | Yi Q, Feng JG, Lan WW, et al. CircRNA and lncRNA-encoded peptide in diseases, an update review[J]. Mol Cancer, 2024, 23(1): 214. doi:10.1186/s12943-024-02131-7 |
| [7] | Li XM, Wang JJ, Zhang C, et al. Circular RNA circITGA7 inhibits colorectal cancer growth and metastasis by modulating the Ras pathway and upregulating transcription of its host gene ITGA7 [J]. J Pathol, 2018, 246(2): 166-79. doi:10.1002/path.5125 |
| [8] | Li XM, Wang JJ, Lin WH, et al. circEXOC6B interacting with RRAGB, an mTORC1 activator, inhibits the progression of colorectal cancer by antagonizing the HIF1A-RRAGB-mTORC1 positive feedback loop[J]. Mol Cancer, 2022, 21(1): 135. doi:10.1186/s12943-022-01600-1 |
| [9] | Li XM, Chen T, Cai YJ, et al. CircSETD3 interrupts the bidirectional positive feedback of ErbB3 and Akt by sponging miR-4667-5p to inhibit colorectal cancer progression and cetuximab resistance[J]. Int J Biol Macromol, 2025, 318: 145352. doi:10.1016/j.ijbiomac.2025.145352 |
| [10] | Hu JT, Shi JY, Wang JJ, et al. A novel polypeptide encoded by circSPIRE1 promotes prostate cancer proliferation and migration by restraining the ubiquitin-dependent degradation of LRP5[J]. J Exp Clin Cancer Res, 2025, 44(1): 218. doi:10.1186/s13046-025-03467-8 |
| [11] | Lai X, Zhang MK, He YJ, et al. Phase separation of circCHD6-encoded 216aa protein promotes colorectal cancer metastasis[J]. Int J Biol Macromol, 2025, 331: 148422. doi:10.1016/j.ijbiomac.2025.148422 |
| [12] | Lan T, Gao FW, Cai YS, et al. The protein circPETH-147aa regulates metabolic reprogramming in hepatocellular carcinoma cells to remodel immunosuppressive microenvironment[J]. Nat Commun, 2025, 16: 333. doi:10.1038/s41467-024-55577-0 |
| [13] | Lu L, Guo GQ, Guo JH, et al. A novel protein encoded by circUBE2G1 suppresses glycolysis in gastric cancer through binding to ENO1[J]. Cell Death Discov, 2025, 11: 350. doi:10.1038/s41420-025-02644-0 |
| [14] | Mondal J, Biswas S, Roy S, et al. The structural view of the protein PGD-219aa encoded by the circular RNA CircPGD[J]. J Mol Model, 2025, 31(9): 236. doi:10.1007/s00894-025-06454-0 |
| [15] | Wang Q, Li YD, Yang ZQ, et al. circSCAP-encoded SCAP-129aa mediates platinum resistance in triple-negative breast cancer via the PI3K/AKT pathway[J]. Sci China Life Sci, 2026, 69(3): 921-36. doi:10.1007/s11427-024-2946-1 |
| [16] | Zhang JB, Zhao ZB, Wu JY, et al. A novel protein cRERE encoded by a circular RNA directly targets ERK signaling to alleviate chemotherapy-induced neuropathic pain[J]. Cell Commun Signal, 2025, 23(1): 445. doi:10.1186/s12964-025-02455-x |
| [17] | Li FY, Tang HX, Zhao SJ, et al. Circ-E-Cad encodes a protein that promotes the proliferation and migration of gastric cancer via the TGF‑β/Smad/C-E-Cad/PI3K/AKT pathway[J]. Mol Carcinog, 2023, 62(3): 360-8. doi:10.1002/mc.23491 |
| [18] | Song RJ, Ma SQ, Xu JJ, et al. A novel polypeptide encoded by the circular RNA ZKSCAN1 suppresses HCC via degradation of mTOR[J]. Mol Cancer, 2023, 22(1): 16. doi:10.1186/s12943-023-01719-9 |
| [19] | Yang Y, Fan XJ, Mao MW, et al. Extensive translation of circular RNAs driven by N6-methyladenosine[J]. Cell Res, 2017, 27(5): 626-41. doi:10.1038/cr.2017.31 |
| [20] | Shi Y, Jia X, Xu J. The new function of circRNA: translation[J]. Clin Transl Oncol, 2020, 22(12): 2162-9. doi:10.1007/s12094-020-02371-1 |
| [21] | Chen LL, Bindereif A, Bozzoni I, et al. A guide to Naming eukaryotic circular RNAs[J]. Nat Cell Biol, 2023, 25(1): 1-5. doi:10.1038/s41556-022-01066-9 |
| [22] | Ren CF, Zhang ZM, Wang SH, et al. Circular RNA hsa_circ_0001178 facilitates the invasion and metastasis of colorectal cancer through upregulating ZEB1 via sponging multiple miRNAs[J]. Biol Chem, 2020, 401(4): 487-96. doi:10.1515/hsz-2019-0350 |
| [23] | van Heesch S, Witte F, Schneider-Lunitz V, et al. The translational landscape of the human heart[J]. Cell, 2019, 178(1): 242-60. |
| [24] | Chen XP, Han P, Zhou T, et al. circRNADb: a comprehensive database for human circular RNAs with protein-coding annotations[J]. Sci Rep, 2016, 6: 34985. doi:10.1038/srep34985 |
| [25] | Liu M, Wang Q, Shen J, et al. Circbank: a comprehensive database for circRNA with standard nomenclature[J]. RNA Biol, 2019, 16(7): 899-905. doi:10.1080/15476286.2019.1600395 |
| [26] | Boos F, Mühlhaus T, Herrmann J. Detection of internal matrix targeting signal-like sequences (iMTS-ls) in mitochondrial precursor proteins using the TargetP prediction tool[J]. Bio Protoc, 2018, 8(17): e2474. doi:10.21769/bioprotoc.2474 |
| [27] | Wu B, Chang N, Xi HT, et al. PHB2 promotes tumorigenesis via RACK1 in non-small cell lung cancer[J]. Theranostics, 2021, 11(7): 3150-66. doi:10.7150/thno.52848 |
| [28] | Shen YM, Gao Y, Yuan H, et al. Prohibitin-2 negatively regulates AKT2 expression to promote prostate cancer cell migration[J]. Int J Mol Med, 2018, 41(2): 1147-55. |
| [29] | Bentayeb H, Aitamer M, Petit B, et al. Prohibitin (PHB) expression is associated with aggressiveness in DLBCL and flavagline-mediated inhibition of cytoplasmic PHB functions induces anti-tumor effects[J]. J Exp Clin Cancer Res, 2019, 38(1): 450. doi:10.1186/s13046-019-1440-4 |
| [30] | Xu L, Xiang WY, Yang JZ, et al. PHB2 promotes SHIP2 ubiquitination via the E3 ligase NEDD4 to regulate AKT signaling in gastric cancer[J]. J Exp Clin Cancer Res, 2024, 43(1): 17. doi:10.1186/s13046-023-02937-1 |
| [31] | Wei YJ, Chiang WC, Sumpter R, et al. Prohibitin 2 is an inner mitochondrial membrane mitophagy receptor[J]. Cell, 2017, 168(1/2): 224-38.e10. doi:10.1016/j.cell.2016.11.042 |
| [1] | 王琳钰, 王晓燕, 朱季军, 蒋波, 徐洁, 高彩月, 李冬冬, 王玉, 李晓敏. CFL1及p-CFL在结肠癌中高表达预示结肠癌患者预后不良并促进癌细胞迁移[J]. 南方医科大学学报, 2026, 46(7): 1533-1542. |
| [2] | 宋淇乐, 苗益恺, 冯小桐, 王一凡, 刘伟, 魏琪, 于新汝, 陈文文, 付晓艳. 硒代胱氨酸通过诱导活性氧产生启动氧化应激损伤抑制结肠癌细胞生长[J]. 南方医科大学学报, 2026, 46(3): 532-540. |
| [3] | 马思源, 张博超, 浦春. Circ_0000437通过靶向let-7b-5p/CTPS1轴促进乳腺癌细胞的增殖、侵袭、迁移及上皮间质转化[J]. 南方医科大学学报, 2025, 45(8): 1682-1696. |
| [4] | 王康, 李海宾, 余靖, 孟源, 张虹丽. ELFN1高表达是结肠癌的预后生物标志物并促进结肠癌细胞的增殖转移[J]. 南方医科大学学报, 2025, 45(7): 1543-1553. |
| [5] | 蔡蕊, 黄卓, 贺文霞, 艾添红, 宋晓伟, 胡淑婷. 剪接因子HNRNPH1通过调控Circ-MYOCD的反向剪接影响心肌肥厚的发生[J]. 南方医科大学学报, 2025, 45(3): 587-594. |
| [6] | 高志强, 林洁, 洪鹏, 胡再宏, 崔孔孔, 王语, 董军君, 石秦林, 田小毛, 魏光辉. 高通量环状RNA测序揭示hsa_circ_0001900在肾母细胞瘤中特异性高表达且与不良预后相关[J]. 南方医科大学学报, 2025, 45(11): 2466-2474. |
| [7] | 孙 硕, 黄 鑫, 李国东, 张春云, 卢泽梅, 张伟伟, 李泽彦, 杨清竹. 敲低结肠癌转移相关基因1促进RSL3诱导的结直肠癌细胞铁死亡[J]. 南方医科大学学报, 2024, 44(1): 173-178. |
| [8] | 刘 迁, 戴宇阳, 于华裔, 沈 颖, 邓建忠, 陆文斌, 金建华. NKD1可促进结肠癌细胞的葡萄糖吸收:基于激活YWHAE基因的转录活性[J]. 南方医科大学学报, 2023, 43(4): 585-589. |
| [9] | 张 铃, 赵春雨, 许瑶瑶, 陈炎森, 蔡志雄, 林浩伟, 蔡巧燕. 环状RNA hsa_circ_0006834可作为肝细胞癌患者预后的潜在生物标志物[J]. 南方医科大学学报, 2023, 43(11): 1850-1856. |
| [10] | 赵海远, 刘 刚, 李 阳, 杨年钊, 赵 军. ANKRD6高表达是结肠癌不良预后的有效预测指标[J]. 南方医科大学学报, 2023, 43(10): 1715-1724. |
| [11] | 周佩涛, 程炳霖, 孙一宁, 吴德华, 陈宇翰. 环状RNA circRSF1结合HuR促进辐射诱导的肝星状细胞炎性表型[J]. 南方医科大学学报, 2023, 43(1): 46-51. |
| [12] | 陈建新, 袁燕文, 彭伟谦, 唐煜欣, 陈新岐, 王毅钧, 沈海平, 李瑞平. 三维重建技术在腹腔镜右半结肠癌D3根治术中的应用[J]. 南方医科大学学报, 2022, 42(5): 760-765. |
| [13] | 陈曙冉, 董 锐, 李 艳, 吴华彰, 刘牧林. m7G相关lncRNAs是影响结肠癌患者预后和肿瘤微环境的潜在生物标志物[J]. 南方医科大学学报, 2022, 42(5): 681-689. |
| [14] | 王 康, 张 军, 邓牧文, 剧永乐, 欧阳满照. 甲基转移酶样蛋白27是结肠癌预后的生物标志物并与免疫浸润相关[J]. 南方医科大学学报, 2022, 42(4): 486-497. |
| [15] | 詹炜杰, 严 涛, 高嘉文, 宋旻恺, 王 婷, 林 菲, 周海榆, 李 栎, 张 超. 环状RNA在免疫相关疾病中的作用[J]. 南方医科大学学报, 2022, 42(2): 163-170. |
| 阅读次数 | ||||||
|
全文 |
|
|||||
|
摘要 |
|
|||||