Redinbaugh M G, Sabre M, Scandalios J G
Department of Genetics, North Carolina State University, Raleigh 27695-7614.
Proc Natl Acad Sci U S A. 1990 Sep;87(17):6853-7. doi: 10.1073/pnas.87.17.6853.
The accumulation of Cat3 catalase mRNA in the green leaves of maize (Zea mays) exhibits an unusual circadian rhythm. The steady-state level of the Cat3 transcript varies dramatically over the day in seedlings grown on a 12-hr photoperiod. Low or undetectable levels of the Cat3 mRNA are found late in the dark and early in the light period, while the transcript accumulates to high levels late in the light and early in the dark period. This dramatic diurnal variation in mRNA level does not occur with the maize Cat1 or Cat2 catalase transcripts. The diurnal fluctuation in Cat3 mRNA persists when the seedlings are transferred to continuous light or darkness, which indicates the influence of a circadian rhythm. The lack of influence of red and/or far-red light on this diurnal variation in transcript level indicates that the circadian rhythm is not regulated by phytochrome. Run-on transcription assays show that changes in the rate of Cat3 gene transcription closely parallel the observed changes in steady-state mRNA levels. This circadian rhythm in Cat3 gene expression and the resulting high levels of mRNA which accumulate late in the light period suggest that the catalase 3 (CAT-3) isozyme is being synthesized for accumulation in the dark period. This, together with the high level of Cat3 mRNA and CAT-3 protein accumulation in dark-grown maize shoots, suggests that the activity of the CAT-3 isozyme might be associated with a metabolic process important in shoot cells in the dark.
玉米(Zea mays)绿叶中Cat3过氧化氢酶mRNA的积累呈现出一种不同寻常的昼夜节律。在12小时光周期下生长的幼苗中,Cat3转录本的稳态水平在一天中变化显著。在黑暗后期和光照初期,Cat3 mRNA水平较低或无法检测到,而在光照后期和黑暗初期,转录本积累到高水平。玉米Cat1或Cat2过氧化氢酶转录本没有出现这种mRNA水平的显著昼夜变化。当幼苗转移到持续光照或黑暗条件下时,Cat3 mRNA的昼夜波动仍然存在,这表明存在昼夜节律的影响。红光和/或远红光对转录本水平的这种昼夜变化缺乏影响,表明昼夜节律不受光敏色素调节。连续转录分析表明,Cat3基因转录速率的变化与观察到的稳态mRNA水平变化密切平行。Cat3基因表达中的这种昼夜节律以及在光照后期积累的高水平mRNA表明,过氧化氢酶3(CAT-3)同工酶正在合成,以便在黑暗期积累。这与黑暗生长的玉米芽中高水平的Cat3 mRNA和CAT-3蛋白积累一起,表明CAT-3同工酶的活性可能与黑暗中芽细胞中重要的代谢过程相关。