Das Suman, Dasgupta Dipak
Biophysics Division, Saha Institute of Nuclear Physics, Block-AF, Sector-I, Kolkata 700 064, India.
J Inorg Biochem. 2005 Mar;99(3):707-15. doi: 10.1016/j.jinorgbio.2004.11.027. Epub 2005 Jan 5.
Mithramycin (MTR), a member of aureolic group of anticancer antibiotic, binds reversibly to double stranded DNA via minor groove with (G.C) base specificity. It leads to inhibition of replication and transcription. Results from different laboratories have shown that at and above physiological pH, Mg2+ is an obligatory factor for the DNA binding and subsequent transcription inhibitory property of mithramycin. Zn2+ is another physiologically important bivalent cation. Its coordination property leads to its important role as a cofactor in different enzymes and nucleosomal DNA binding proteins. Characterization of the complex between mithramycin and Zn2+ using spectroscopic methods shows that the drug forms single type of complex with Zn2+ in the mole ratio of 2:1 in terms of antibiotic: Zn2+. DNA binding properties of the (MTR)2Zn2+ complex has been studied using calf thymus DNA, rat liver chromatin and nucleosome core. (MTR)2Zn2+ complex binds to calf thymus DNA with affinity higher than the corresponding dimer complex with Mg2+ ion. The presence of histone proteins in chromatin and nucleosome reduces the accessibility and hence binding potential of (MTR)2Zn2+ complex to nucleosomal DNA. We have also examined the effect of (MTR)2Zn2+ complex upon the stability of nucleosome core particle. The complex disassembles nucleosome structure leading to the release of nucleosomal DNA. Significance of the results to understand the molecular basis of the action of the drug in vivo is discussed.
光神霉素(MTR)是抗癌抗生素金霉素族的一员,它通过小沟以(G.C)碱基特异性与双链DNA可逆结合。这会导致复制和转录受到抑制。不同实验室的结果表明,在生理pH及以上时,Mg2+是光神霉素与DNA结合以及随后产生转录抑制特性的必需因子。Zn2+是另一种具有生理重要性的二价阳离子。其配位特性使其在不同酶和核小体DNA结合蛋白中作为辅助因子发挥重要作用。使用光谱方法对光神霉素与Zn2+之间的复合物进行表征表明,就抗生素与Zn2+的摩尔比而言,该药物与Zn2+形成单一类型的复合物,比例为2:1。已使用小牛胸腺DNA、大鼠肝脏染色质和核小体核心研究了(MTR)2Zn2+复合物的DNA结合特性。(MTR)2Zn2+复合物与小牛胸腺DNA的结合亲和力高于与Mg2+离子形成的相应二聚体复合物。染色质和核小体中组蛋白的存在降低了(MTR)2Zn2+复合物与核小体DNA的可及性,从而降低了其结合潜力。我们还研究了(MTR)2Zn2+复合物对核小体核心颗粒稳定性的影响。该复合物会拆解核小体结构,导致核小体DNA释放。文中讨论了这些结果对于理解该药物在体内作用分子基础的意义。