Hasan Imtiaj, Sugawara Shigeki, Fujii Yuki, Koide Yasuhiro, Terada Daiki, Iimura Naoya, Fujiwara Toshiyuki, Takahashi Keisuke G, Kojima Nobuhiko, Rajia Sultana, Kawsar Sarkar M A, Kanaly Robert A, Uchiyama Hideho, Hosono Masahiro, Ogawa Yukiko, Fujita Hideaki, Hamako Jiharu, Matsui Taei, Ozeki Yasuhiro
Department of Life and Environmental System Science, Graduate School of NanoBio Sciences, Yokohama City University, 22-2 Seto, Kanazawa-ku, Yokohama 236-0027, Japan.
Department of Biochemistry and Molecular Biology, Faculty of Science, University of Rajshahi, Rajshahi-6205, Bangladesh.
Mar Drugs. 2015 Dec 14;13(12):7377-89. doi: 10.3390/md13127071.
MytiLec; a novel lectin isolated from the Mediterranean mussel (Mytilus galloprovincialis); shows strong binding affinity to globotriose (Gb3: Galα1-4Galβ1-4Glc). MytiLec revealed β-trefoil folding as also found in the ricin B-subunit type (R-type) lectin family, although the amino acid sequences were quite different. Classification of R-type lectin family members therefore needs to be based on conformation as well as on primary structure. MytiLec specifically killed Burkitt's lymphoma Ramos cells, which express Gb3. Fluorescein-labeling assay revealed that MytiLec was incorporated inside the cells. MytiLec treatment of Ramos cells resulted in activation of both classical MAPK/ extracellular signal-regulated kinase and extracellular signal-regulated kinase (MEK-ERK) and stress-activated (p38 kinase and JNK) Mitogen-activated protein kinases (MAPK) pathways. In the cells, MytiLec treatment triggered expression of tumor necrosis factor (TNF)-α (a ligand of death receptor-dependent apoptosis) and activation of mitochondria-controlling caspase-9 (initiator caspase) and caspase-3 (activator caspase). Experiments using the specific MEK inhibitor U0126 showed that MytiLec-induced phosphorylation of the MEK-ERK pathway up-regulated expression of the cyclin-dependent kinase inhibitor p21, leading to cell cycle arrest and TNF-α production. Activation of caspase-3 by MytiLec appeared to be regulated by multiple different pathways. Our findings, taken together, indicate that the novel R-type lectin MytiLec initiates programmed cell death of Burkitt's lymphoma cells through multiple pathways (MAPK cascade, death receptor signaling; caspase activation) based on interaction of the lectin with Gb3-containing glycosphingolipid-enriched microdomains on the cell surface.
贻贝凝集素(MytiLec);一种从地中海贻贝(Mytilus galloprovincialis)中分离出的新型凝集素;对球三糖(Gb3:Galα1-4Galβ1-4Glc)具有很强的结合亲和力。贻贝凝集素显示出β-三叶折叠结构,这在蓖麻毒蛋白B亚基型(R型)凝集素家族中也有发现,尽管其氨基酸序列有很大差异。因此,R型凝集素家族成员的分类需要基于构象以及一级结构。贻贝凝集素能特异性杀死表达Gb3的伯基特淋巴瘤Ramos细胞。荧光素标记试验表明贻贝凝集素被摄入细胞内。用贻贝凝集素处理Ramos细胞会导致经典的丝裂原活化蛋白激酶/细胞外信号调节激酶(MAPK/ERK)和应激激活的(p38激酶和JNK)丝裂原活化蛋白激酶(MAPK)途径均被激活。在细胞中,贻贝凝集素处理会引发肿瘤坏死因子(TNF)-α(死亡受体依赖性凋亡的配体)的表达以及线粒体控制的半胱天冬酶-9(起始半胱天冬酶)和半胱天冬酶-3(激活半胱天冬酶)的激活。使用特异性MEK抑制剂U0126的实验表明,贻贝凝集素诱导的MEK-ERK途径磷酸化上调了细胞周期蛋白依赖性激酶抑制剂p21的表达,导致细胞周期停滞和TNF-α产生。贻贝凝集素对半胱天冬酶-3的激活似乎受多种不同途径调控。综合我们的研究结果表明,新型R型凝集素贻贝凝集素通过凝集素与细胞表面富含糖鞘脂的微结构域中含Gb3的糖脂相互作用,经多种途径(MAPK级联反应、死亡受体信号传导、半胱天冬酶激活)引发伯基特淋巴瘤细胞的程序性细胞死亡。