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苜蓿根瘤菌溶磷和分泌植物生长素能力研究 被引量:29
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作者 师尚礼 曹致中 刘建荣 《草业学报》 CSCD 2007年第1期105-111,共7页
对甘肃庆阳、天水、定西、武威和甘南5个不同生态区域栽培的陇东苜蓿和阿尔冈金苜蓿根瘤菌资源进行调查、分离和纯化,获得730多个分离物。分离物回接到原宿主植物检测其促生能力,筛选出29个较好的根瘤菌株,对其溶磷、分泌植物生长素能... 对甘肃庆阳、天水、定西、武威和甘南5个不同生态区域栽培的陇东苜蓿和阿尔冈金苜蓿根瘤菌资源进行调查、分离和纯化,获得730多个分离物。分离物回接到原宿主植物检测其促生能力,筛选出29个较好的根瘤菌株,对其溶磷、分泌植物生长素能力进行了初步研究。结果表明,供试菌株都能够溶解有机磷(蛋黄卵磷脂EYPC),而不能溶解无机磷[Ca3(PO4)2];均能够分泌植物生长素(IAA),其中34.5%分泌能力较强,55.2%分泌能力中强,10.3%分泌能力较弱,分泌IAA的菌株数量比率高于禾本科根际分泌IAA菌株数量比率。 展开更多
关键词 苜蓿根瘤菌 溶磷 分泌植物生长素
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刺槐根瘤菌溶磷和分泌植物生长素特性的研究 被引量:5
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作者 冀玉良 《江西农业学报》 CAS 2014年第6期34-37,41,共5页
采用溶磷圈法、钼锑抗比色法和Salkowski比色法,对分离自陕西6个区(县)的25株刺槐根瘤菌菌株进行了溶磷和分泌植物生长素(IAA)能力的定性和定量测定。在溶磷能力的定性测定中,菌株SLCH171对有机磷和无机磷的溶解能力均最强;在定量测定中... 采用溶磷圈法、钼锑抗比色法和Salkowski比色法,对分离自陕西6个区(县)的25株刺槐根瘤菌菌株进行了溶磷和分泌植物生长素(IAA)能力的定性和定量测定。在溶磷能力的定性测定中,菌株SLCH171对有机磷和无机磷的溶解能力均最强;在定量测定中,菌株SLCH171对有机磷的溶解能力最强,SLCH184对无机磷的溶解能力最强,有10株菌既能溶解无机磷又能溶解有机磷。分泌IAA测定显示,有21个菌株具有分泌IAA的能力,以SLCH184的分泌能力最强;各菌株分泌IAA能力的定量测定结果与定性测定结果基本相符。 展开更多
关键词 刺槐 根瘤菌 溶磷 分泌植物生长素
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Plant Enzymes, Root Exudates, Cluster Roots and Mycorrhizal Symbiosis are the Drivers of P Nutrition in Native Legumes Growing in P Deficient Soil of the Cape Fynbos in South Africa 被引量:6
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作者 Sipho Thulane Maseko Felix Dapare Dakora 《Journal of Agricultural Science and Technology(A)》 2013年第5期331-340,共10页
The Cape fynbos is characterised by highly leached, sandy, acidic soils with very low nutrient concentrations. Plant-available P levels range from 0.4 μg P g-1 to 3.7 μg P g-I soil, and 1-2 mg N gl soil. Despite the... The Cape fynbos is characterised by highly leached, sandy, acidic soils with very low nutrient concentrations. Plant-available P levels range from 0.4 μg P g-1 to 3.7 μg P g-I soil, and 1-2 mg N gl soil. Despite these low nutrient concentrations, the fynbos is home to 9,030 vascular plant species with 68.7% endemicity. How native plant species survive such low levels of available P is intriguing, and indeed the subject of this review. In the fynbos soils, P is easily precipitated with cations such as Fe and Al, forming AI-P and Fe-P in acidic soils, or Ca-P in neutral-to-alkaline soils. The mechanisms for promoting P availability and enhancing P nutrition include the development of mycorrhizal symbiosis (with 80%-90% of higher plants, e.g., Cyclopia, Aspalathus, Psoralea and Leucadendron etc.) which exhibits 3-5 times much greater P acquisition than non-mycorrhizal roots. Formation of cluster roots by the Leguminosae (Fabaceae) and their exudation of Kreb cycle intermediates (organic acids) for solubilizing P, secretion of root exudate compounds (organic acids, phenolics, amino acids, etc.) that mobilize P. The synthesis and release of acid and alkaline phosphatase enzyme that catalyze the cleavage of mineral P from organic phosphate esters in acidic and alkaline soils, and the development of deep tap roots as well as massive secondary roots within the uppermost 15 cm of soil for capturing water and nutrients. Some fynbos legumes employ all these adaptive mechanisms for enhancing P nutrition and plant growth. Aspalathus and Cyclopia species typically form mycorrhizal and rhizobial symbiosis for improving P and N nutrition, produce cluster roots and acid phosphatases for increasing P supply, and release root exudates that enhance P solubilisation and uptake. 展开更多
关键词 Cape fynbos CYCLOPIA Aspalathus phosphorus MYCORRHIZA phosphatases.
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