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Maize Kernel Oil and Episodes of Shading during the Grain-Filling Period

机译:玉米籽粒灌浆期油和遮光事件

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摘要

Previous studies documented the stability of maize (Zea mays L.) kernel oil concentration for a wide range of kernel weights promoted by contrasting post-flowering assimilate availabilities per kernel (i.e., source–sink ratios). These studies mainly modified the sink size with a low impact on the source size. In this study, we focused on kernel oil concentration response to source–sink ratio alterations promoted by different timings and intensities of shading during the effective grain-filling period. Two crosses with contrasting kernel oil concentration (‘DK752’ x DK752 and DK752 x ‘5MG’) were tested. Kernel oil concentration was positively related to the embryo–kernel ratio (r = 0.96, P < 0.001) and embryo oil concentration (r = 0.94, P < 0.001) and crosses differed in both traits. Severe shading (85% reduction of incident solar radiation) at early stages of kernel growth reduced the final embryo–kernel ratio and the embryo oil concentration of both crosses. Contrarily, moderate shading (45% reduction of incident solar radiation) did not modify the kernel oil determinants. Kernel oil concentration and kernel weight declined when severe shading shortened the kernel growth period. Our results collectively sustain the hypothesis that maize kernel oil concentration is commonly sink-limited. We established that kernel oil concentration of both crosses was reduced when post-flowering plant growth rate per kernel was less than 50% of kernel growth rate.
机译:以前的研究记录了通过对比开花后同化利用率 促进的玉米(Zea mays L。)玉米籽油浓度在各种籽粒重量 范围内的稳定性。 sup>每个内核(即,源/接收器之比)。这些研究主要 修改了油藏大小,而对油源大小的影响很小。 在本研究中,我们着重研究了仁油对油源的浓度响应 有效灌浆期期间,不同的 时间和阴影强度促进了–sink比率的变化。测试了两个籽粒油浓度相反的交叉 (“ DK752” x DK752和DK752 x“ 5MG”) 。籽油浓度与胚核比(r = 0.96,P <0.001)和 胚油浓度(r = 0.94,P <0.001)呈正相关,并与 在两个特征上有所不同。在籽粒生长的早期,严重的阴影(降低了入射 太阳辐射的85%)降低了 最终胚核比和胚油浓度 两个十字架。相反,中等阴影(入射太阳辐射减少45%)不会改变仁油的决定因素。 严重 阴影缩短了籽粒的生长期。我们的结果集体地 维持了以下假设,即玉米仁油浓度通常 受限制。我们确定,当开花后每个籽粒的植物生长率小于籽粒生长率的50%时,两个杂交品种的籽油浓度 都会降低。 >

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  • 来源
    《Crop Science》 |2009年第6期|2187-2197|共11页
  • 作者单位

    Dep. de Producción Vegetal, Fac. de Agronomía, Univ. de Buenos Aires, Av. San Martín 4453, Ciudad de Buenos Aires (C1417DSE), Argentina. Financial support, from the National Council for Research (CONICET. PIP 5540). G.A. Maddonni is a member of and W. Tanaka has a scholarship from CONICET;

    Dep. de Producción Vegetal, Fac. de Agronomía, Univ. de Buenos Aires, Av. San Martín 4453, Ciudad de Buenos Aires (C1417DSE), Argentina. Financial support, from the National Council for Research (CONICET. PIP 5540). G.A. Maddonni is a member of and W. Tanaka has a scholarship from CONICET;

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