低钾胁迫对谷子幼苗叶片光合作用的影响
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财政部和农业农村部国家现代农业产业技术体系(CARS0613.5A28);


Effect of Low Potassium Stress on Leaf Photosynthesis of Millet Seedlings
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    摘要:

    为了探究低钾胁迫引起谷子幼苗光合作用改变的响应机制,以谷子品种‘晋谷21号’(钾敏感型)和 ‘龙谷25号’(钾非敏感型)为试验材料,设置正常供钾(5.0 mmol·L-1, K5)、低钾(1、0.1、0.01 mmol·L-1, K1、K0.1、K0.01)和无钾(0 mmol·L-1,K0)5个处理,通过营养液盆栽实验,分析不同程度低钾胁迫对谷子幼苗生长、光合气体交换参数、叶绿素荧光特性和碳同化关键酶活性的影响。结果表明:(1)低钾胁迫显著抑制了谷子幼苗的生长,株高、茎粗、叶面积及干物质显著降低,同时叶片钾含量减少,K0处理‘晋谷21号’和‘龙谷25号’叶片钾含量较K5处理分别显著降低了48.14%和37.85%。(2)K0处理谷子幼苗光合色素含量较K5处理显著降低,但K0.1和K1处理与K5处理差异不显著。(3)低钾胁迫导致谷子幼苗叶片净光合速率(Pn)降低,与K5处理相比,K0、K0.01、K0.1处理Pn、气孔导度(Gs)、蒸腾速率(Tr)、气孔限制值(Ls)显著降低,胞间CO2浓度(Ci)却显著增加,证明光合速率降低主要由非气孔限制引起。(4)低钾胁迫很易导致光系统Ⅱ(PSⅡ)和光系统Ⅰ(PSⅠ)光化学量子产量降低,K1处理叶片的PSⅡ实际光化学量子效率(ΦPSⅡ)、PSⅠ光化学量子产量[Y(Ⅰ)]分别降低了5.32%~9.57%和2.38%~5.63%,K0处理则分别显著降低了17.15%~20.15%和18.71%~21.28%。(5)K0处理下‘晋谷21号’的 1,5二磷酸核酮糖羧化酶(Rubisco)和磷酸烯醇式丙酮酸羧化酶(PEPC)活性较K5处理分别显著降低了42.86%和42.71%,相应处理的‘龙谷25号’则分别显著降低了26.85%和42.77%。研究发现,低钾胁迫下‘龙谷25号’对钾素吸收利用能力较强,各生长生理参数变化幅度较小,表现出较强的低钾耐性;低钾胁迫导致谷子幼苗净光合速率降低,K0和K0.1处理下光合速率降低主要与气孔导度降低、光系统的电子传递与能量转换抑制以及碳同化关键酶Rubisco、PEPC活性下降等有关。

    Abstract:

    In order to explore the response mechanism of photosynthesis changes of millet (Setaria italica) seedlings caused by low potassium stress, we used the potassium sensitive cultivar ‘Jingu 21’ and the nonpotassium sensitive cultivar ‘Longgu 25’ as experimental materials. Normal potassium supply (K5, 5.0 mmol·L-1), low potassium (K1, K0.1, K0.01, 1, 0.1, 0.01 mmol·L-1) and without potassium (K0, 0 mmol·L-1) were set. We analyzed the effects of different degrees of low potassium stress on the growth of millet seedlings, photosynthetic gas exchange parameters, chlorophyll fluorescence characteristics and activities of key enzymes of carbon assimilation. The results showed that: (1) low potassium stress significantly inhibited the growth of millet seedlings, and the plant height, stem diameter, leaf area and dry matter decreased significantly, while the potassium content was also decreased. Compared with K5 treatment, leaf while the potassium content of ‘Jingu21’ and ‘Longgu 25’ was significantly decreased by 48.14% and 37.85%, respectively. (2) The photosynthetic pigment content of millet seedlings under K0 treatment was significantly lower than that under K5 treatment, but the difference between K0.1 and K1 treatment was not significant compared with K5 treatment. (3) Low potassium stress reduced the net photosynthetic rate (Pn) of millet seedlings, Compared with K5 treatment, K0, K0.01 and K0.1 treatments significantly decreased Pn, stomatal conductance (Gs), transpiration rate (Tr) and stomatal limit value (Ls), but increased intercellular CO2 concentration (Ci), demonstrating that the photosynthetic rate reduction is mainly caused by nonstomatal limitation. (4) Low potassium stress can lead to the reduction of photochemical quantum yields of PSⅡ and PSⅠ. Under K1 treatment, the PSⅡ actual photochemical quantum efficiency (ΦPSⅡ) and PSⅠ photochemical quantum yield [Y(Ⅰ)] of leaves decreased by 5.32%-9.57% and 2.38%-5.63%, respectively. Under K0 treatment, ΦPSⅡ and Y(Ⅰ) significantly decreased by 17.15%-20.15% and 18.71%-21.28%, respectively. (5) Compared with K5 treatment, the activities of ribulose 1,5biphosphate carboxylase (Rubisco) and phosphoenolpyruvate carboxylase (PEPC)of ‘Jingu21’ were significantly decreased by 42.86% and 42.71%, respectively, under K0 treatment, ‘Longgu 25’ were significantly decreased by 26.85% and 42.77%, respectively. The study found that under the stress of potassium deficiency, ‘Longgu 25’ had stronger absorption and utilization capacity of potassium, and the variation range of each growth physiological parameter was small, showed stronger tolerance to potassium deficiency. Potassium deficiency stress led to the decrease of the net photosynthetic rate of millet seedlings. The decrease of photosynthetic rate under K0 and K0.1 treatments was mainly related to the decrease of stomatal conductance, the inhibition of electron transport and energy conversion in the photosystem, and the activities of Rubisco and PEPC decreased, etc.

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李艳芬,郑君岗,尹美强,等.低钾胁迫对谷子幼苗叶片光合作用的影响[J].西北植物学报,2022,42(6):1012-1021

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  • 在线发布日期: 2022-07-15
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