Department of Chemistry and Biomolecular Sciences, Macquarie University, NSW 2109 Australia.
Mol Cell Proteomics. 2011 Sep;10(9):M900538MCP200. doi: 10.1074/mcp.M900538-MCP200. Epub 2010 Feb 18.
Cancer is well known to be associated with alterations in membrane protein glycosylation (Bird, N. C., Mangnall, D., and Majeed, A. W. (2006) Biology of colorectal liver metastases: A review. J. Surg. Oncol. 94, 68-80; Dimitroff, C. J., Pera, P., Dall'Olio, F., Matta, K. L., Chandrasekaran, E. V., Lau, J. T., and Bernacki, R. J. (1999) Cell surface n-acetylneuraminic acid alpha2,3-galactoside-dependent intercellular adhesion of human colon cancer cells. Biochem. Biophys. Res. Commun. 256, 631-636; and Arcinas, A., Yen, T. Y., Kebebew, E., and Macher, B. A. (2009) Cell surface and secreted protein profiles of human thyroid cancer cell lines reveal distinct glycoprotein patterns. J. Proteome Res. 8, 3958-3968). Equally, it has been well established that tumor-associated inflammation through the release of pro-inflammatory cytokines is a common cause of reduced hepatic drug metabolism and increased toxicity in advanced cancer patients being treated with cytotoxic chemotherapies. However, little is known about the impact of bearing a tumor (and downstream effects like inflammation) on liver membrane protein glycosylation. In this study, proteomic and glycomic analyses were used in combination to determine whether liver membrane protein glycosylation was affected in mice bearing the Engelbreth-Holm Swarm sarcoma. Peptide IPG-IEF and label-free quantitation determined that many enzymes involved in the protein glycosylation pathway specifically; mannosidases (Man1a-I, Man1b-I and Man2a-I), mannoside N-acetylglucosaminyltransferases (Mgat-I and Mgat-II), galactosyltransferases (B3GalT-VII, B4GalT-I, B4GalT-III, C1GalT-I, C1GalT-II, and GalNT-I), and sialyltransferases (ST3Gal-I, ST6Gal-I, and ST6GalNAc-VI) were up-regulated in all livers of tumor-bearing mice (n = 3) compared with nontumor bearing controls (n = 3). In addition, many cell surface lectins: Sialoadhesin-1 (Siglec-1), C-type lectin family 4f (Kupffer cell receptor), and Galactose-binding lectin 9 (Galectin-9) were determined to be up-regulated in the liver of tumor-bearing compared with control mice. Global glycan analysis identified seven N-glycans and two O-glycans that had changed on the liver membrane proteins derived from tumor-bearing mice. Interestingly, α (2,3) sialic acid was found to be up-regulated on the liver membrane of tumor-bearing mice, which reflected the increased expression of its associated sialyltransferase and lectin receptor (siglec-1). The overall increased sialylation on the liver membrane of Engelbreth-Holm Swarm bearing mice correlates with the increased expression of their associated glycosyltransferases and suggests that glycosylation of proteins in the liver plays a role in tumor-induced liver inflammation.
众所周知,癌症与膜蛋白糖基化的改变有关(Bird,N.C.,Mangnall,D.和 Majeed,A.W.(2006)结直肠肝转移的生物学:综述。J.Surg.Oncol.94,68-80;Dimitroff,C.J.,Pera,P.,Dall'Olio,F.,Matta,K.L.,Chandrasekaran,E.V.,Lau,J.T.和 Bernacki,R.J.(1999)人结肠癌细胞间细胞表面 N-乙酰神经氨酸 α2,3-半乳糖依赖性粘附。生物化学。生物物理。Res.Commun.256,631-636;和 Arcinas,A.,Yen,T.Y.,Kebebew,E.和 Macher,B.A.(2009)人甲状腺癌细胞系的细胞表面和分泌蛋白谱揭示了独特的糖蛋白模式。J.Proteome Res.8,3958-3968)。同样,已经确定肿瘤相关炎症通过释放促炎细胞因子是导致接受细胞毒性化学疗法治疗的晚期癌症患者肝脏药物代谢减少和毒性增加的常见原因。然而,人们对携带肿瘤(和下游影响如炎症)对肝脏膜蛋白糖基化的影响知之甚少。在这项研究中,使用蛋白质组学和糖组学分析相结合的方法来确定携带 Engelbreth-Holm Swarm 肉瘤的小鼠的肝脏膜蛋白糖基化是否受到影响。肽 IPG-IEF 和无标记定量确定许多参与蛋白质糖基化途径的酶,特别是甘露糖苷酶(Man1a-I、Man1b-I 和 Man2a-I)、甘露糖苷 N-乙酰葡萄糖胺基转移酶(Mgat-I 和 Mgat-II)、半乳糖基转移酶(B3GalT-VII、B4GalT-I、B4GalT-III、C1GalT-I、C1GalT-II 和 GalNT-I)和唾液酸转移酶(ST3Gal-I、ST6Gal-I 和 ST6GalNAc-VI)在所有携带肿瘤的小鼠肝脏中均上调(n=3)与非肿瘤对照(n=3)相比。此外,许多细胞表面凝集素:唾液酸结合凝集素-1(Siglec-1)、C 型凝集素家族 4f(Kupffer 细胞受体)和半乳糖结合凝集素 9(Galectin-9)在携带肿瘤的小鼠肝脏中被确定为上调与对照小鼠相比。全局聚糖分析确定了七种 N-聚糖和两种 O-聚糖在源自携带肿瘤的小鼠的肝脏膜蛋白上发生了变化。有趣的是,发现α(2,3)唾液酸在携带肿瘤的小鼠的肝细胞膜上上调,这反映了其相关唾液酸转移酶和凝集素受体(siglec-1)的表达增加。携带 Engelbreth-Holm Swarm 肿瘤的小鼠肝细胞膜上总体增加的唾液酸化与相关糖基转移酶和糖基受体的表达增加相关,表明肝脏蛋白质的糖基化在肿瘤诱导的肝脏炎症中起作用。