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DNA Damage Levels Determine Cyclobutyl Pyrimidine Dimer Repair Mechanisms in Alfalfa Seedlings.

机译:DNA损伤水平决定了苜蓿幼苗中环丁基嘧啶二聚体的修复机理。

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摘要

Ultraviolet radiation in sunlight damages DNA in plants, but little is understood about the types, lesion capacity, and coordination of repair pathways. We challenged intact alfalfa seedlings with UV doses that induced different initial levels of cyclobutyl pyrimidine dimers and measured repair by excision and photoreactivation. By using alkaline gel electrophoresis of nonradioactive DNAs treated with a cyclobutyl pyrimidine dimer-specific UV endonuclease, we quantitated ethidium-stained DNA by electronic imaging and calculated lesion frequencies from the number average molecular lengths. At low initial dimer frequencies (less than ~30 dimers per million bases), the seedlings used only photoreactivation to repair dimers; excision repair was not significant. At higher damage levels, both excision and photorepair contributed significantly. This strategy would allow plants with low damage levels to use error-free repair requiring only an external light energy source, whereas seedlings subjected to higher damage frequencies could call on additional repair processes requiring cellular energy. Characterization of repair in plants thus requires an investigation of a range of conditions, including the level of initial damage.
机译:阳光下的紫外线辐射会破坏植物的DNA,但人们对其类型,病变能力和修复途径的协调了解甚少。我们用紫外线剂量挑战了完整的苜蓿幼苗,该剂量诱导了不同水平的环丁基嘧啶二聚体的初始水平,并通过切除和光活化测定了修复作用。通过使用经环丁基嘧啶二聚体特异性UV核酸内切酶处理的非放射性DNA的碱性凝胶电泳,我们通过电子成像定量了乙锭染色的DNA,并从数均分子长度计算了病灶频率。在较低的初始二聚体频率下(每百万碱基少于约30个二聚体),幼苗仅使用光活化来修复二聚体。切除修复不明显。在较高的损伤水平下,切除和光修复都发挥了重要作用。这种策略将允许具有低损伤水平的植物仅使用外部光源就可以进行无错误的修复,而遭受较高损伤频率的幼苗可能需要进行其他需要细胞能量的修复过程。因此,鉴定植物修复的特性需要研究一系列条件,包括初始损害的程度。

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