Division of Pulmonary, Critical Care & Sleep Medicine, Department of Medicine, University of Florida Gainesville, FL 32601, USA ; Biomaterials Center, Department of Materials Sciences and Engineering, University of Florida P. O. Box 116400, Gainesville, FL 32611-6400, USA.
Am J Cancer Res. 2013 Jun 20;3(3):266-77. Print 2013.
Arginine is one of the essential amino acid involved in numerous biosynthetic pathways that significantly influence tumor growth. It has been demonstrated that arginine is effective to inhibit proliferation of cancer cells when an appropriate dose is applied. Generally, induction of cell death requires high concentration of arginine while low concentration of arginine facilitates cell proliferation. In addition to the apoptosis induced by metabolism of arginine, it has also been reported that in an ideal solution environment, arginine may assemble into arginine clusters to kill cancer cells. Therefore, to make the arginine an effective anticancer agent, arginine/albumin microspheres were designed and synthesized to provide a localized high concentration of arginine on tumor sites. In addition, the arginine/albumin mesospheres (AAMS) are also expected to provide an arginine-rich surface on microspheres, which is similar to the arginine cluster, to effectively inhibit tumor growth. In this study, the AAMS were synthesized through a water/organic solvent emulsion system and the surface properties were characterized. The in vitro effects of AAMS on A549, CRL-2081, MAK9 lung cancer cells (LCC) proliferation, migration, and tumor growth were determined. The expression of oncogenic protein EphA2 and transcription factor slug was also determined. AAMS significantly inhibited the cell proliferation, cell migration and tumor growth in all the three LCC, while same concentration of free arginine promoted the LCC tumor growth and migration. Our studies indicate that the synthesized AAMS has a more effective inhibiting effect on proliferation, migration and tumor growth of LCC than freely released arginine. The expression of EphA2 receptor mRNA was significantly decreased when compared to control cells. In addition the mRNA expression of transcription factor slug was also inhibited by AAMS suggesting that AAMS affects the expression of EphA2 and slug and may regulate LCC proliferation and migration. These data suggests that the AAMS can be an ideal delivery vehicle for therapeutic interventions against LCCs.
精氨酸是参与众多生物合成途径的必需氨基酸之一,这些途径对肿瘤生长有重要影响。研究表明,当应用适当剂量时,精氨酸能有效抑制癌细胞增殖。一般来说,诱导细胞死亡需要高浓度的精氨酸,而低浓度的精氨酸则促进细胞增殖。除了精氨酸代谢诱导的细胞凋亡外,还有报道称,在理想的溶液环境中,精氨酸可能会组装成精氨酸簇杀死癌细胞。因此,为了使精氨酸成为有效的抗癌药物,设计并合成了精氨酸/白蛋白微球,以在肿瘤部位提供局部高浓度的精氨酸。此外,还期望精氨酸/白蛋白介孔球(AAMS)在微球表面提供富含精氨酸的表面,类似于精氨酸簇,以有效抑制肿瘤生长。在这项研究中,通过水/有机溶剂乳液系统合成了 AAMS,并对其表面性质进行了表征。测定了 AAMS 对 A549、CRL-2081、MAK9 肺癌细胞(LCC)增殖、迁移和肿瘤生长的体外影响。还测定了致癌蛋白 EphA2 和转录因子 slug 的表达。AAMS 显著抑制了所有三种 LCC 的细胞增殖、细胞迁移和肿瘤生长,而相同浓度的游离精氨酸则促进了 LCC 肿瘤的生长和迁移。我们的研究表明,与游离释放的精氨酸相比,合成的 AAMS 对 LCC 的增殖、迁移和肿瘤生长具有更有效的抑制作用。与对照细胞相比,EphA2 受体 mRNA 的表达显著降低。此外,AAMS 还抑制了转录因子 slug 的 mRNA 表达,这表明 AAMS 影响 EphA2 和 slug 的表达,并可能调节 LCC 的增殖和迁移。这些数据表明,AAMS 可以作为治疗性干预治疗 LCC 的理想载体。