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Temperature-sensitive albino gene TCD5 encoding a monooxygenase affects chloroplast development at low temperatures

机译:温度敏感的白化基因TCD5编码单加氧酶在低温下影响叶绿体的发育

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摘要

Chloroplasts are essential for photosynthesis and play critical roles in plant development. In this study, we characterized the temperature-sensitive chlorophyll-deficient rice mutant tcd5, which develops albino leaves at low temperatures (20 °C) and normal green leaves at high temperatures (32 °C). The development of chloroplasts and etioplasts is impaired in tcd5 plants at 20 °C, and the temperature-sensitive period for the albino phenotype is the P4 stage of leaf development. The development of thylakoid membranes is arrested at the mid-P4 stage in tcd5 plants at 20 °C. We performed positional cloning of TCD5 and then complementation and knock-down experiments, and the results showed that the transcript LOC_Os05g34040.1 from the LOC_Os05g34040 gene corresponded to the tcd5 phenotype. TCD5 encodes a conserved plastid-targeted monooxygenase family protein which has not been previously reported associated with a temperature-sensitive albino phenotype in plants. TCD5 is abundantly expressed in young leaves and immature spikes, and low temperatures increased this expression. The transcription of some genes involved in plastid transcription/translation and photosynthesis varied in the tcd5 mutant. Although the phenotype and temperature dependence of the TCD5 orthologous mutant phenotype were different in rice and Arabidopsis, OsTCD5 could rescue the phenotype of the Arabidopsis mutant, suggesting that TCD5 function is conserved between monocots and dicots.
机译:叶绿体对于光合作用至关重要,并且在植物发育中起关键作用。在这项研究中,我们表征了对温度敏感的叶绿素缺陷型水稻突变体tcd5,该突变体在低温(20°C)下产生白化病叶片,而在高温(32°C)下产生正常的绿叶。在20°C的tcd5植物中,叶绿体和质体的发育受到损害,白化病表型的温度敏感期是叶片发育的P4阶段。类固醇膜的发育在20℃下在tcd5植物的P4中期被阻止。我们进行了TCD5的位置克隆,然后进行了互补和敲除实验,结果表明,来自LOC_Os05g34040基因的转录本LOC_Os05g34040.1与tcd5表型相对应。 TCD5编码保守的质体靶向单加氧酶家族蛋白,以前尚未报道过与植物中温度敏感的白化病表型有关。 TCD5在幼叶和未成熟穗中大量表达,而低温则增加了该表达。在tcd5突变体中,参与质体转录/翻译和光合作用的某些基因的转录各不相同。尽管在水稻和拟南芥中,TCD5直系同源突变体表型和温度依赖性不同,但OsTCD5可以挽救拟南芥突变体的表型,表明TCD5功能在单子叶植物和双子叶植物之间是保守的。

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