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首页> 外文期刊>Physiologia plantarum >Each of the chloroplast potassium efflux antiporters affects photosynthesis and growth of fully developed Arabidopsis rosettes under short-day photoperiod
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Each of the chloroplast potassium efflux antiporters affects photosynthesis and growth of fully developed Arabidopsis rosettes under short-day photoperiod

机译:在短期光周期下,每种叶绿体钾外向反转运蛋白都会影响拟南芥玫瑰花结的光合作用和生长。

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In Arabidopsis thaliana, the chloroplast harbors three potassium efflux antiporters (KEAs), namely KEA1 and KEA2 in the inner envelope and KEA3 in the thylakoid membrane. They may play redundant physiological roles as in our previous analyses of young developing Arabidopsis rosettes under long-day photoperiod (16 h light per day), chloroplast kea single mutants resembled the wild-type plants, whereas kea1kea2 and kea1kea2kea3 mutants were impaired in chloroplast development and photosynthesis resulting in stunted growth. Here, we aimed to study whether chloroplast KEAs play redundant roles in chloroplast function of older Arabidopsis plants with fully developed rosettes grown under short-day photoperiod (8 h light per day). Under these conditions, we found defects in photosynthesis and growth in the chloroplast kea single mutants, and most dramatic defects in the kea1kea2 double mutant. The mechanism behind these defects in the single mutants involves reduction in the electron transport rate (kea1 and kea3), and stomata conductance (kea1, kea2 and kea3), which in turn affect CO2 fixation rates. The kea1kea2 mutant, in addition to these alterations, displayed reduced levels of photosynthetic machinery. Taken together, our data suggest that, in addition to the previously reported roles in chloroplast development in young rosettes, each chloroplast KEA affects photosynthesis and growth of Arabidopsis fully developed rosettes.
机译:在拟南芥中,叶绿体具有三个钾外向反转运蛋白(KEA),即内包膜中的KEA1和KEA2和类囊体膜中的KEA3。它们可能扮演多余的生理角色,就像我们先前在长期光周期(每天16 h光照)下对拟南芥年轻发育的花环的分析中一样,叶绿体kea单个突变体类似于野生型植物,而kea1kea2和kea1kea2kea3突变体在叶绿体发育中受损和光合作用导致生长受阻。在这里,我们旨在研究叶绿体KEA是否在衰老的拟南芥植物的叶绿体功能中扮演多余的角色,而后者在短时光周期(每天8 h光照)下生长完全成熟的玫瑰花结。在这些条件下,我们在叶绿体kea单突变体中发现了光合作用和生长方面的缺陷,而在kea1kea2双突变体中发现了最明显的缺陷。单个突变体中这些缺陷的背后机制涉及电子传输速率(kea1和kea3)的降低以及气孔电导(kea1,kea2和kea3)的降低,进而影响CO2固定率。除这些改变外,kea1kea2突变体还显示出降低的光合作用水平。两者合计,我们的数据表明,除了先前报道的在年轻玫瑰花结中叶绿体发育中的作用外,每个叶绿体KEA还影响拟南芥完全发育的玫瑰花结的光合作用和生长。

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