洛美沙星对Bloom综合征解旋酶生物学特性影响的机理研究
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国家重点基础研究发展计划(973)(2010CB534912), 教育部博士点基金(200806570003), 贵州省优秀人才省长基金(200822)和贵州省创新科研基金(SYN 2009005)资助项目


Study on The Mechanism of Effects of Lomefloxacin on Biological Properties of Bloom Syndrome Helicase
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This work was supported by grants from National Basic Research Program of China (2010CB534912), The Doctoral Program of the Ministry of Education (200806570003), The Government of Guizhou Province Talents Fund (200822) and Guizhou University Innovation Funds of Graduate Student (SYN 2009005)

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    摘要:

    Bloom 综合征解旋酶(BLM)是RecQ家族DNA解旋酶中的一个重要成员,参与了DNA复制、修复、转录、重组以及端粒的维持等细胞代谢过程,在维持染色体的稳定性中具有重要作用.BLM解旋酶的突变可导致Bloom综合征.Bloom综合征是一种罕见隐性常染色体遗传疾病,患者遗传不稳定,并易患多种类型癌症.洛美沙星(LMX)可以抑制细胞内多种酶,并通过结合DNA干扰DNA代谢,从而治疗多种疾病,但是其具体的作用机理还未完全清楚.运用荧光偏振技术和自由磷检测技术,研究了LMX对BLM642~1290解旋酶DNA结合活性、解链活性和ATP酶活性的影响.运用荧光及紫外吸收光谱法研究了LMX与解旋酶结合的结合常数、结合位点数、作用力类型、结合距离等参数.结果表明,LMX与解旋酶之间能自发进行反应,两种分子有一个结合位点,通过静电引力和疏水作用力形成稳定的BLM-LMX复合物,且解旋酶的内源荧光被LMX静态猝灭,主要原因是非辐射能量转移.在这一过程中,LMX能抑制解旋酶的解链活性和ATP酶活性,而促进解旋酶的DNA结合活性. LMX对BLM解旋酶生物学活性影响的机理可能是LMX使解旋酶通过别构机制影响其ATP酶活性,并使酶的构象维持在较低解链活性的状态,通过抑制ATP催化水解与解链过程的偶联和阻止解旋酶的易位,从而抑制其解链.LMX能够促进解旋酶的DNA结合活性,可能是因为其C-6和C-7上的取代功能基团可以增加酶活力,以及增强药物、酶和DNA的结合,从而形成药物-酶-DNA复合物.这些结果为研究以DNA解旋酶为药物靶标的分子机理和理解喹诺酮类药物的作用机理奠定相关理论基础.

    Abstract:

    Bloom syndrome helicase (BLM), an important member of RecQ family of DNA helicases, participates in cell metabolism including DNA repair, recombination, transcription, telomere maintenance, and plays key roles in maintaining chromosome stability. The mutation of BLM helicase may lead to Bloom syndrome. Bloom syndrome is a rare autosomal recessive genetic disorder characterized by genomic instability and the early development of many types of cancer. Lomefloxacin (LMX) may treat many diseases by inhibiting many enzymes in cells and interfering DNA metabolism through binding DNA, but the specific mechanism of action remains unclear. This study was conducted to determine the effects of LMX on DNA-binding activity, helicase activity, and ATPase activity of BLM642~1290 helicase by fluorescence polarized technology and free phosphorus assay technology; and the parameters of binding between LMX and helicase were studied by fluorescence and ultraviolet absorption spectroscopy, included binding constants, number of binding sites, the type of acting force, and binding distance. The results indicated that the reaction between the helicase and LMX was occurred spontaneously, there was one binding site between two molecules, the helicase and LMX might compound BLM-LMX complexes caused by electrostatic force and hydrophobic interaction force; moreover, the intrinsic fluorescence of the helicase was static quenched by LMX as a result of non-radioactive energy transfer. In this process, the helicase and ATPase activities were inhibited and DNA-binding activity of the helicase was promoted by LMX. The mechanism of effects of LMX on biological properties of BLM helicase may be included as below: LMX could inhibit the ATPase activity by allosteric mechanism and stabilize the conformation of the enzyme in low helicase activity state, destroy the coupling of ATP hydrolysis to unwinding, and inhibit the unwinding dsDNA by blocking helicase translocation. The reason that LMX could promote DNA-binding activity of the helicase may be the substitutional functional groups at C-6 and C-7 of LMX which may enhance enzymes activity and strengthen the attachment of drug-enzyme-DNA complex. The results may provide the relative theoretical basis for studying the molecular mechanism of DNA helicase as drug target and understanding the mechanism of action of quinolone drugs.

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骆衡,陈祥,丁玫,杨齐心,许厚强.洛美沙星对Bloom综合征解旋酶生物学特性影响的机理研究[J].生物化学与生物物理进展,2011,38(11):1060-1071

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  • 收稿日期:2011-04-23
  • 最后修改日期:2011-06-09
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  • 在线发布日期: 2011-06-17
  • 出版日期: 2011-11-20