Antizyme induction mediates feedback limitation of the incorporation of specific polyamine analogues in tissue culture

多胺 精胺 腐胺 亚精胺 鸟氨酸脱羧酶抗体 中国仓鼠卵巢细胞 生物化学 鸟氨酸脱羧酶 细胞培养 仓鼠 生物 体外 化学 分子生物学 细胞生物学 受体 遗传学
作者
John L. A. MITCHELL,Carrie Simkus,Thynn K. Thane,Phil TOKARZ,Michelle M. BONAR,Benjamín Frydman,Aldonia Valasinas,Venodhar K. REDDY,Laurence J. Marton
出处
期刊:Biochemical Journal [Portland Press]
卷期号:384 (2): 271-279 被引量:32
标识
DOI:10.1042/bj20040972
摘要

Spermidine, spermine and putrescine are essential for mammalian cell growth, and there has been a pervasive effort to synthesize analogues of these polyamines that will disrupt their function and serve as tools to inhibit cell proliferation. Recently, we demonstrated that a number of such polyamine analogues are also capable of inducing the regulatory protein AZ (antizyme). In the present study the incorporation of a few sample analogues [mimics of bis(ethyl)spermine] was shown to be significantly limited by a decrease in the Vmax for the polyamine transport system in response to analogue-induced AZ. This creates an unusual circumstance in which compounds that are being designed for therapeutic use actually inhibit their own incorporation into targeted cells. To explore the impact of this feedback system, cultures of rat hepatoma HTC cells were pre-treated to exhibit either low or high polyamine uptake activity and then exposed to polyamine analogues. As predicted, regardless of initial uptake activity, all cultures eventually achieved the same steady-state levels of the cellular analogue and AZ. Importantly, analogue-induced AZ levels remained elevated with respect to controls even after the native polyamines were reduced by more than 70%. To model the insufficient AZ expression found in certain tumours, GS-CHO (GS Chinese-hamster ovary) cells were transfected to express high levels of exogenic AZI (AZ inhibitor). As anticipated, this clone incorporated significantly higher levels of the polyamine analogues examined. This study reveals a potential limitation in the use of polyamine-based compounds as therapeutics, and strategies are presented to either circumvent or exploit this elegant transport feedback system.

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