Tuteja N, Phan T N
International Centre for Genetic Engineering and Biotechnology, New Delhi, India.
Biochem Biophys Res Commun. 1998 Mar 27;244(3):861-7. doi: 10.1006/bbrc.1998.8363.
DNA helicases unwind the duplex DNA in an ATP dependent manner and thus play an essential role in DNA replication, repair, recombination and transcription. Any DNA-interacting ligand which will modulate DNA helicase activity may interrupt practically all kinds of DNA transactions. There are no studies on the effect of various cytotoxic DNA-interacting ligands on organelle helicases. We have determined the effect of camptothecin, VP-16 (etoposide), ellipticine, genistein, novobiocin, m-AMSA, actinomycin C1, ethidium bromide, daunorubicin and nogalamycin on unwinding and ATPase activities of purified chloroplast DNA helicase from pea (Pisum sativum). Our study has shown that DNA-intercalating ligands actinomycin C1, ethidium bromide, daunorubicin and nogalamycin were inhibiting the DNA unwinding activity with an apparent Ki of 2.9 microM, 3.0 microM, 1.4 microM and 1.0 microM, respectively. These four inhibitors also inhibited the ATPase activity of pea chloroplast DNA helicase. These results indicate that the intercalation of the inhibitors into DNA generates a complex that impedes the translocation of chloroplast DNA helicase, resulting in both inhibition of unwinding activity and ATP hydrolysis. This study would be useful for understanding the mechanism of organelle DNA helicase unwinding and the mechanism by which these DNA-interacting ligands inhibit cellular function.
DNA解旋酶以ATP依赖的方式解开双链DNA,因此在DNA复制、修复、重组和转录中发挥着至关重要的作用。任何能够调节DNA解旋酶活性的与DNA相互作用的配体实际上都可能干扰几乎所有类型的DNA事务。目前尚无关于各种细胞毒性与DNA相互作用的配体对细胞器解旋酶影响的研究。我们已经测定了喜树碱、VP-16(依托泊苷)、椭圆玫瑰树碱、染料木黄酮、新生霉素、m-AMSA、放线菌素C1、溴化乙锭、柔红霉素和诺加霉素对从豌豆(Pisum sativum)中纯化的叶绿体DNA解旋酶的解旋活性和ATP酶活性的影响。我们的研究表明,DNA嵌入配体放线菌素C1、溴化乙锭、柔红霉素和诺加霉素抑制DNA解旋活性,其表观Ki分别为2.9 microM、3.0 microM、1.4 microM和1.0 microM。这四种抑制剂也抑制了豌豆叶绿体DNA解旋酶的ATP酶活性。这些结果表明,抑制剂嵌入DNA中会形成一种复合物,阻碍叶绿体DNA解旋酶的移位,从而导致解旋活性和ATP水解均受到抑制。这项研究将有助于理解细胞器DNA解旋酶的解旋机制以及这些与DNA相互作用的配体抑制细胞功能的机制。