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首页> 外文期刊>Microgravity science and technology >Differential Regulation of cGMP Signaling in Human Melanoma Cells at Altered Gravity: Simulated Microgravity Down-Regulates Cancer-Related Gene Expression and Motility
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Differential Regulation of cGMP Signaling in Human Melanoma Cells at Altered Gravity: Simulated Microgravity Down-Regulates Cancer-Related Gene Expression and Motility

机译:人黑素瘤细胞中重力改变时cGMP信号的差异调节:模拟微重力下调癌症相关基因的表达和运动性。

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Altered gravity is known to affect cellular function by changes in gene expression and cellular signaling. The intracellular signaling molecule cyclic guanosine-3_(′),5_(′)-monophosphate (cGMP), a product of guanylyl cyclases (GC), e.g., the nitric oxide (NO)-sensitive soluble GC (sGC) or natriuretic peptide-activated GC (GC-A/GC-B), is involved in melanocyte response to environmental stress. NO-sGC-cGMP signaling is operational in human melanocytes and non-metastatic melanoma cells, whereas up-regulated expression of GC-A/GC-B and inducible NO synthase (iNOS) are found in metastatic melanoma cells, the deadliest skin cancer. Here, we investigated the effects of altered gravity on the mRNA expression of NOS isoforms, sGC, GC-A/GC-B and multidrug resistance-associated proteins 4/5 (MRP4/MRP5) as selective cGMP exporters in human melanoma cells with different metastatic potential and pigmentation. A specific centrifuge (DLR, Cologne Germany) was used to generate hypergravity (5 g for 24 h) and a fast-rotating 2-D clinostat (60 rpm) to simulate microgravity values ≤ 0.012 g for 24 h. The results demonstrate that hypergravity up-regulates the endothelial NOS-sGC-MRP4/MRP5 pathway in non-metastatic melanoma cells, but down-regulates it in simulated microgravity when compared to 1 g. Additionally, the suppression of sGC expression and activity has been suggested to correlate inversely to tumor aggressiveness. Finally, hypergravity is ineffective in highly metastatic melanoma cells, whereas simulated microgravity down-regulates predominantly the expression of the cancer-related genes iNOS and GC-A/GC-B (shown additionally on protein levels) as well as motility in comparison to 1 g. The results suggest that future studies in real microgravity can benefit from considering GC-cGMP signaling as possible factor for melanocyte transformation.
机译:已知重力的改变会通过基因表达和细胞信号传导的变化影响细胞功能。细胞内信号分子环状鸟苷-3 _('),5 _(')-单磷酸(cGMP),鸟苷酸环化酶(GC)的产物,例如一氧化氮(NO)敏感的可溶性GC(sGC)或利钠肽激活的GC(GC-A / GC-B)参与了黑素细胞对环境压力的反应。 NO-sGC-cGMP信号在人黑素细胞和非转移性黑素瘤细胞中起作用,而在转移性黑素瘤细胞(最致命的皮肤癌)中发现GC-A / GC-B和诱导型NO合酶(iNOS)的表达上调。在这里,我们研究了重力变化对人黑色素瘤细胞中不同的cGMP选择性输出蛋白NOS亚型,sGC,GC-A / GC-B和多药耐药相关蛋白4/5(MRP4 / MRP5)mRNA表达的影响。转移潜力和色素沉着。使用特定的离心机(DLR,德国科隆)产生超重力(24小时内为5 g)和快速旋转的2-clinostat(60 rpm)以模拟24小时内≤0.012 g的微重力值。结果表明,超重力在非转移性黑色素瘤细胞中上调内皮NOS-sGC-MRP4 / MRP5途径,但与1 g相比在模拟微重力中下调。另外,已经提出抑制sGC表达和活性与肿瘤侵袭性成反比。最后,超重力在高度转移的黑色素瘤细胞中无效,而模拟的微重力主要下调与癌症相关的基因iNOS和GC-A / GC-B的表达(另外在蛋白质水平上显示)以及与1相比的运动性。 G。结果表明,将来真正的微重力研究可以受益于将GC-cGMP信号作为黑素细胞转化的可能因素。

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