Department of Crop Plant Biology, University of Pisa, Pisa, Italy.
New Phytol. 2011 Apr;190(2):488-98. doi: 10.1111/j.1469-8137.2010.03503.x. Epub 2010 Oct 22.
• The unicellular green alga Chlamydomonas reinhardtii contains two iron (Fe)-hydrogenases which are responsible for hydrogen production under anoxia. In the present work the patterns of expression of alcohol dehydrogenase, a typical anaerobic gene in plants, of the hydrogenases genes (HYD1, HYD2) and of the genes responsible for their maturation (HYDEF, HYDG), were analysed. • The expression patterns were analysed by real-time reverse-transcription polymerase chain reaction in Chlamydomonas cultures during the day-night cycle, as well as in response to oxygen availability. • The results indicated that ADH1, HYD1, HYD2, HYDEF and HYDG were expressed following precise day-night fluctuations. ADH1 and HYD2 were modulated by the day-night cycle. Low oxygen plays an important role for the induction of HYD1, HYDEF and HYDG, while ADH1 and HYD2 expression was relatively insensitive to oxygen availability. • The regulation of the anaerobic gene expression in Chlamydomonas is only partly explained by responses to anoxia. The cell cycle and light-dark cycles are equally important elements in the regulatory network modulating the anaerobic response in Chlamydomonas.
• 单细胞绿藻莱茵衣藻含有两种铁(Fe)-氢化酶,负责在缺氧条件下产生氢气。本研究分析了植物中典型的厌氧基因醇脱氢酶、氢化酶基因(HYD1、HYD2)及其成熟基因(HYDEF、HYDG)的表达模式。• 通过实时逆转录聚合酶链反应分析了在莱茵衣藻培养物中的表达模式,以及对氧气可用性的响应。• 结果表明,ADH1、HYD1、HYD2、HYDEF 和 HYDG 遵循精确的昼夜波动表达。ADH1 和 HYD2 受昼夜周期调节。低氧对 HYD1、HYDEF 和 HYDG 的诱导起着重要作用,而 ADH1 和 HYD2 的表达对氧气可用性相对不敏感。• 莱茵衣藻中厌氧基因表达的调控并不能完全用缺氧反应来解释。细胞周期和明暗周期同样是调节莱茵衣藻厌氧反应的调控网络中的重要因素。