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商陆抗病毒蛋白对病毒感染原生质体的作用。

Actions of pokeweed antiviral protein on virus-infected protoplasts.

作者信息

Watanabe K, Kawasaki T, Sako N, Funatsu G

机构信息

Department of Applied Biological Sciences, Saga University, Japan.

出版信息

Biosci Biotechnol Biochem. 1997 Jun;61(6):994-7. doi: 10.1271/bbb.61.994.

Abstract

Pokeweed antiviral protein (PAP) belongs to a group of ribosome-inactivating proteins (RIPs) that inactivate ribosomes by depurinating rRNA at a specific site. To study the mechanism for the antiviral activity of PAP, the actions of PAP on TMV-infected and uninfected tobacco protoplasts were investigated. The addition of 0.33 microM PAP to TMV-inoculated protoplasts caused a complete inhibition of TMV production. The same concentration of PAP was found to inhibit protein synthesis in the virus-infected protoplasts and to kill the cells, but it had no effect on the uninfected protoplasts. The concentration dependence of protein synthesis-inhibition by PAP was related to that of inhibition of viral multiplication. Furthermore, two other RIPs (ricin A-chain and luffin-a), which showed 240 and 430-fold less activity on tobacco ribosomes than PAP in a cell-free system, did not inhibit viral multiplication even at a concentration of 3.3 microM. The analysis of RNAs from the virus-infected and PAP-treated protoplasts demonstrated that 25S rRNA was depurinated by PAP in the infected cells. These results suggest that PAP, which is normally unable to penetrate the plasma membrane of uninfected protoplasts, gains entrance to the cytosol of infected cells and prevents viral multiplication by inactivating ribosomes.

摘要

商陆抗病毒蛋白(PAP)属于一类核糖体失活蛋白(RIPs),这类蛋白通过使核糖体RNA在特定位点脱嘌呤来使核糖体失活。为了研究PAP抗病毒活性的机制,研究了PAP对感染烟草花叶病毒(TMV)和未感染TMV的烟草原生质体的作用。向接种TMV的原生质体中添加0.33微摩尔的PAP可完全抑制TMV的产生。发现相同浓度的PAP可抑制病毒感染的原生质体中的蛋白质合成并杀死细胞,但对未感染的原生质体没有影响。PAP对蛋白质合成抑制的浓度依赖性与对病毒增殖抑制的浓度依赖性相关。此外,另外两种RIPs(蓖麻毒蛋白A链和丝瓜素-a),在无细胞系统中对烟草核糖体的活性比PAP低240倍和430倍,即使在浓度为3.3微摩尔时也不抑制病毒增殖。对病毒感染并经PAP处理的原生质体的RNA分析表明,感染细胞中的25S核糖体RNA被PAP脱嘌呤。这些结果表明,通常无法穿透未感染原生质体细胞膜的PAP进入感染细胞的细胞质,并通过使核糖体失活来阻止病毒增殖。

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