[1] Liu Z, Zhao Y, Kong P, et al. Integrated multi-omics profiling yields a clinically relevant molecular classification for esophageal squamous cell carcinoma [J]. Cancer Cell, 2023, 41(1): 181-195.e9. [2] Zhang C, Chen L, Xiu Y, et al.Burden of esophageal cancer in global, regional and national regions from 1990 to 2021 and its projection until 2050: results from the GBD study 2021[J]. Front Oncol, 2025, 14: 1518567. [3] Zhao YX, Zhao HP, Zhao MY, et al.Latest insights into the global epidemiological features, screening, early diagnosis and prognosis prediction of esophageal squamous cell carcinoma.[J]. World J Gastroenterol, 2024, 30(20): 2638-2656. [4] Sun G, Yang Y, Liu J, et al.Cancer stem cells in esophageal squamous cell carcinoma[J].Pathol Res Pract, 2022, 237: 154043. [5] Chen WM, Zhang XP, Sun X, et al.QSOX2-Mediated Disulfide Bond Modification Enhances Tumor Stemness and Chemoresistance by Activating TSC2/mTOR/c-Myc Feedback Loop in Esophageal Squamous Cell Carcinoma[J]. Adv Sci (Weinh), 2025, 12(31): e00597. [6] Ma RY, Black A, Qian BZ.Macrophage diversity in cancer revisited in the era of single-cell omics[J]. Trends Immunol, 2022, 43(7):546-563. [7] Bied M, Ho WW, Ginhoux F, et al.Roles of macrophages in tumor development: a spatiotemporal perspective[J]. Cell Mol Immunol, 2023, 20(9): 983-992. [8] Chu X, Tian Y, Lv C.Decoding the spatiotemporal heterogeneity of tumor-associated macrophages[J]. Mol Cancer, 2024, 23(1): 150. [9] Chen S, Saeed AFUH, Liu Q, et al.Macrophages in immunoregulation and therapeutics[J]. Signal Transduct Target Ther, 2023, 8(1): 207. [10] Strizova Z, Benesova I, Bartolini R, et al.M1/M2 macrophages and their overlaps - myth or reality?[J]. Clin Sci (Lond), 2023, 137(15):1067-1093. [11] Wang S, Wang J, Chen Z, et al.Targeting M2-like tumor-associated macrophages is a potential therapeutic approach to overcome antitumor drug resistance[J]. NPJ Precis Oncol, 2024, 8(1): 31. [12] Ji ZZ, Chan MK, Chan AS, et al.Tumour-associated macrophages: versatile players in the tumour microenvironment[J]. Front Cell Dev Biol, 2023, 11: 1261749. [13] Li X, Chen L, Peng X, et al.Progress of tumor-associated macrophages in the epithelial-mesenchymal transition of tumor[J]. Front Oncol, 2022, 12: 911410. [14] Boelaars K, Kooyk YV.Targeting myeloid cells for cancer immunotherapy: Siglec-7/9/10/15 and their ligands[J]. Trends Cancer, 2024, 10(3): 230-241. [15] Yin J, Lu Y, Liu Y, et al.SIGLEC11 promotes M2 macrophage polarization through AKT-mTOR signaling and facilitates the progression of gastric cancer[J]. J Immunother Cancer, 2025, 13(1): e010162. [16] Wang J, Sun J, Liu LN, et al.Siglec-15 as an immune suppressor and potential target for normalization cancer immunotherapy[J]. Nat Med, 2019, 25(4): 656-666. [17] Zhou S, Wang Y, Zhang R, et al.Association of Sialic Acid-Binding Immunoglobulin-Like Lectin 15 With Phenotypes in Esophageal Squamous Cell Carcinoma in the Setting of Neoadjuvant Chemoradiotherapy[J]. JAMA Netw Open, 2023, 6(1): e2250965. [18 Barkal AA, Brewer RE, Markovic M, et al. CD24 signalling through macrophage Siglec-10 is a target for cancer immunotherapy[J]. Nature, 2019, 572(7769): 392-396. [19] Hane M, Chen DY, Varki A.Human-specific microglial Siglec-11 transcript variant has the potential to affect polysialic acid-mediated brain functions at a distance[J]. Glycobiology, 2021, 31(3): 231-242. [20] Rodrigues E, Jung J, Park H, et al.A versatile soluble siglec scaffold for sensitive and quantitative detection of glycan ligands[J]. Nat Commun, 2020, 11(1): 5091. [21] Wall SVD, Santegoets KCM, Houtum EJHV, et al.Sialoglycans and Siglecs Can Shape the Tumor Immune Microenvironment[J]. Trends Immunol, 2020, 41(4): 274-285. [22] Läubli H, Nalle SC, Maslyar D.Targeting the Siglec-Sialic Acid Immune Axis in Cancer: Current and Future Approaches[J]. Cancer Immunol Res, 2022, 10(12): 1423-1432. [23] Houtum EJHV, Büll C, Cornelissen LAM, et al.Siglec Signaling in the Tumor Microenvironment[J]. Front Immunol, 2021, 12: 790317. [24] Cozac-Szőke A, Cozac DA, Negovan A, et al.Immune Cell Interactions and Immune Checkpoints in the Tumor Microenvironment of Gastric Cancer[J]. Int J Mol Sci, 2025, 26(3): 1156. [25] Lim J, Sari-Ak D, Bagga T.Siglecs as Therapeutic Targets in Cancer[J]. Biology (Basel), 2021, 10(11): 1178. [26] Stanczak MA, Läubli H.Siglec receptors as new immune checkpoints in cancer[J]. Mol Aspects Med, 2023, 90: 101112. [27] Shi H, Gao L, Zhang W, et al.Identification and validation of a siglec-based and aging-related 9-gene signature for predicting prognosis in acute myeloid leukemia patients[J]. BMC Bioinformatics, 2022, 23(1): 284. |