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Photochemistry and Photobiology of the Spore Photoproduct: A Fifty Year Journey

机译:孢子光产品的光化学和光生物学:五十年历程

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摘要

Fifty years ago, a new thymine dimer was discovered as the dominant DNA photolesion in UV irradiated bacterial spores [Donnellan, J. & Setlow R. (1965) Science, >149, 308–310], which was later named the spore photoproduct (SP). Formation of SP is due to the unique environment in the spore core that features low hydration levels favoring an A-DNA conformation, high levels of calcium dipicolinate that acts as a photosensitizer, and DNA saturation with small, acid-soluble proteins that alters DNA structure and reduces side reactions. In vitro studies reveal that any of these factors alone can promote SP formation; however, SP formation is usually accompanied by the production of other DNA photolesions. Therefore, the nearly exclusive SP formation in spores is due to the combined effects of these three factors. SP photoreaction is proved to occur via a unique H-atom transfer mechanism between the two involved thymine residues. Successful incorporation of SP into an oligonucleotide has been achieved via organic synthesis, which enables structural studies that reveal minor conformational changes in the SP-containing DNA. Here, we review the progress on SP photochemistry and photobiology in the past fifty years, which indicates a very rich SP photobiology that may exist beyond endospores.
机译:五十年前,发现了一种新的胸腺嘧啶二聚体,它是紫外线辐射细菌孢子中的主要DNA光损伤[Donnellan,J.&Setlow R.(1965)Science,> 149 ,308-310],这是后来命名为孢子光产品(SP)。 SP的形成是由于孢子核心中的独特环境,具有低水合水平(有利于A-DNA构象),高水平的二吡啶甲酸钙(可作为光敏剂)和DNA饱和(带有可改变DNA结构的酸性小蛋白)并减少副反应。体外研究表明,任何这些因素都可以促进SP的形成。然而,SP的形成通常伴随着其他DNA光损伤的产生。因此,孢子中几乎唯一的SP形成是由于这三个因素的共同作用。事实证明,SP光反应是通过两个参与的胸腺嘧啶残基之间独特的H原子转移机制发生的。通过有机合成已成功地将SP掺入寡核苷酸,这使得能够进行结构研究,揭示含SP的DNA中微小的构象变化。在这里,我们回顾了过去五十年来SP光化学和光生物学的进展,这表明除孢子外可能存在非常丰富的SP光生物学。

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    Peter Setlow; Lei Li;

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  • 年(卷),期 -1(91),6
  • 年度 -1
  • 页码 1263–1290
  • 总页数 62
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