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丁硫氨酸亚砜胺联合PAK-104P逆转KB细胞中MRP介导的长春新碱耐药性

Reversal of MRP-mediated vincristine resistance in KB cells by buthionine sulfoximine in combination with PAK-104P.

作者信息

Chuman Y, Chen Z S, Seto K, Sumizawa T, Furukawa T, Tani A, Haraguchi M, Niwa K, Yamada K, Aikou T, Akiyama S

机构信息

The Institute for Cancer Research, Faculty of Medicine, Kagoshima University, Japan.

出版信息

Cancer Lett. 1998 Jul 3;129(1):69-76. doi: 10.1016/s0304-3835(98)00083-4.

Abstract

The mechanism of multidrug resistance protein (MRP)-mediated multidrug resistance (MDR) is still unclear. MRP reportedly transports some GSH conjugates. Recently, we demonstrated that a pyridine analog, 2-[4-(diphenylmethyl)-1-piperazinyl]ethyl 5-(trans-4,6-dimethyl-1,3,2-dioxaphosphorinan-2-yl)-2,6-dimethyl-4 -(3-nitrophenyl)-3-pyridinecarboxylate P-oxide (PAK-104P), that reversed P-glycoprotein (P-gp)-mediated MDR directly interacted with MRP and completely reversed the vincristine (VCR) resistance in MRP-mediated MDR C-A120 cells. We investigated the reversing effect of PAK-104P in C-A120 cells in combination with buthionine sulfoximine (BSO), another MDR-reversing agent with a different reversing mechanism. In immunoblots, MRP was overexpressed in C-A120 cells. The level of ATP-dependent [3H]VCR uptake was high in membrane vesicles from KB-C2 cells, but low in those from C-A120 and parental KB-3-1 cells. The sensitivity to VCR of C-A120 cells, but not of KB-C2 cells, was considerably increased by 100 microM BSO. VCR accumulation in C-A120 cells, but not in KB-C2 cells, was also enhanced by BSO. BSO did not inhibit ATP-dependent [3H]LTC4 uptake in C-A120 vesicles. The combination of BSO with PAK-104P at their low concentrations resulted in complete reversal of VCR resistance in C-A120 cells. These findings suggested that BSO might not directly interact with MRP and reversed resistance in MRP-mediated MDR cells by reducing the intracellular glutathione (GSH) level that was needed for the transport of drugs by MRP and suggested a role for the combination of drug resistance-modulating agents with different reversing mechanisms in the reversal of MRP-mediated MDR.

摘要

多药耐药蛋白(MRP)介导的多药耐药(MDR)机制仍不清楚。据报道,MRP可转运一些谷胱甘肽缀合物。最近,我们证明了一种吡啶类似物,2-[4-(二苯甲基)-1-哌嗪基]乙基5-(反式-4,6-二甲基-1,3,2-二氧磷杂环己烷-2-基)-2,6-二甲基-4-(3-硝基苯基)-3-吡啶羧酸酯P-氧化物(PAK-104P),可逆转P-糖蛋白(P-gp)介导的MDR,它直接与MRP相互作用,并完全逆转了MRP介导的MDR C-A120细胞中的长春新碱(VCR)耐药性。我们研究了PAK-104P与丁硫氨酸亚砜胺(BSO)联合使用对C-A120细胞的逆转作用,BSO是另一种具有不同逆转机制的MDR逆转剂。在免疫印迹中,MRP在C-A120细胞中过表达。ATP依赖性的[3H]VCR摄取水平在KB-C2细胞膜囊泡中较高,但在C-A120和亲本KB-3-1细胞膜囊泡中较低。100μM的BSO可显著提高C-A120细胞对VCR的敏感性,但对KB-C2细胞无效。BSO也增强了VCR在C-A120细胞中的蓄积,但对KB-C2细胞无效。BSO不抑制C-A120膜囊泡中ATP依赖性的[3H]白三烯C4摄取。低浓度的BSO与PAK-104P联合使用可完全逆转C-A120细胞中的VCR耐药性。这些发现表明,BSO可能不直接与MRP相互作用,而是通过降低MRP转运药物所需的细胞内谷胱甘肽(GSH)水平来逆转MRP介导的MDR细胞中的耐药性,并提示具有不同逆转机制的耐药性调节剂联合使用在逆转MRP介导的MDR中具有作用。

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