Bair Elisabeth L, Chen Man Ling, McDaniel Kathy, Sekiguchi Kiyotoshi, Cress Anne E, Nagle Raymond B, Bowden George Timothy
Cancer Biology Graduate Interdisciplinary Program, Arizona Cancer Center, University of Arizona, Tucson, AZ 85724, USA.
Neoplasia. 2005 Apr;7(4):380-9. doi: 10.1593/neo.04619.
Disruption of the extracellular matrix by proteases is crucial for tumor invasion. Laminin-10 (Ln-10) has previously been identified as a substrate for cell migration and cell adhesion, and is present in the basal lamina (BL) of both normal prostate and prostate cancer. Here, we investigate a role for membrane type 1 matrix metalloprotease (MT1-MMP) in modifying this Ln-10-rich BL. MT1-MMP is a transmembrane member of the MMP family that has been demonstrated to be upregulated as prostate cancer progresses from normal to prostate intraepithelial neoplasia to invasive cancer, suggesting a role for MT1-MMP in the invasion of prostate cancer. We show that MT1-MMP cleaves the alpha5 chain of purified human Ln-10 from its 350-kDa form into 310-, 190-, 160-, and 45-kDa fragments. This cleavage causes a decrease in DU-145 prostate cancer cell adhesion to purified Ln-10, and an increase in transmigration of DU-145 cells through cleaved Ln-10. We also show that prostate cancer cells expressing membrane-bound MT1-MMP cleave the alpha5 chain of Ln-10. Ln alpha5-chain cleavage is also observed in human prostate cancer tissues. These findings suggest that prostate cancer cells expressing high levels of MT1-MMP have increased invasive potential through their ability to degrade and invade Ln-10 barriers.
蛋白酶对细胞外基质的破坏作用对于肿瘤侵袭至关重要。层粘连蛋白-10(Ln-10)先前已被确定为细胞迁移和细胞黏附的底物,且存在于正常前列腺组织和前列腺癌的基底膜(BL)中。在此,我们研究膜型1基质金属蛋白酶(MT1-MMP)在修饰富含Ln-10的基底膜中的作用。MT1-MMP是基质金属蛋白酶家族的跨膜成员,已证明随着前列腺癌从正常发展到前列腺上皮内瘤变再到浸润性癌,其表达上调,这表明MT1-MMP在前列腺癌侵袭中发挥作用。我们发现MT1-MMP可将纯化的人Ln-10的α5链从其350 kDa的形式切割成310 kDa、190 kDa、160 kDa和45 kDa的片段。这种切割导致DU-145前列腺癌细胞对纯化的Ln-10的黏附减少,并且DU-145细胞通过切割后的Ln-10的迁移增加。我们还表明,表达膜结合型MT1-MMP的前列腺癌细胞可切割Ln-10的α5链。在人前列腺癌组织中也观察到Ln α5链的切割。这些发现表明,表达高水平MT1-MMP的前列腺癌细胞通过其降解和侵袭Ln-10屏障的能力而具有增强的侵袭潜力。