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Improvement of yields of common beans (Phaseolus vulgaris L.) by increased nitrogen fixation in soils with low phosphorus levels.

机译:通过在低磷水平的土壤中增加固氮作用来提高普通豆(菜豆)的产量。

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Farmers in parts of Latin America and Africa could increase bean production on poor soils if bean cultivars capable of maintaining a sufficient level of N2 fixation at low P were identified and disseminated. In the present study 51 Phaseolus vulgaris L. genotypes each inoculated with the Rhizobium tropici strain UMR1899 were screened for growth and N2 fixation at 5 and 140 μM phosphorus (P) supplied as rock phosphate to a peat moss growth medium. Two genotypes (ANT22 and E295) with good growth and N2 fixation and one (G19833) with poor growth at low soil P were identified. ANT22 and E295 had greater nodule mass, higher nitrogenase activity and accumulated more plant P and N than G19833, and maintained a higher nodule P concentration. Greater efficiency of ANT22 and E295 than G19833 in utilizing P from rock phosphate and/or organic matter at low P while reliant on N2 fixation led to a study of root/soil/microbe interaction in the three genotypes. ANT22 reacted to P deficiency by reducing rhizosphere pH. When N2 dependent, the root acid phosphatase secretion was significantly lower in G19833 than in E295, and ANT22 and E295 had significantly longer root hair than G19833 at low P. No organic acids could be detected in drainage water from any of the genotypes. Nodule occupancy was affected by both genotype and P level. About two thirds of the nodules were occupied by R. etli. However, strains belonging to minority clusters appear to be more low P tolerant than R. etli. At low P, rhizosphere soil from ANT22 contained fewer colony forming units (cfu) but a higher percent of colonies had phosphate solubilizing activity than for G19833, which may have increased P nutrition of this genotype. The study underscores the importance of evaluating genotypes for low P tolerance in different growth systems and various soil conditions. It also shows the importance of including studies of interaction between genotypes, rhizobia, and other microorganisms in the rhizosphere that may affect P and N nutrition and plant growth.
机译:如果能够识别并传播能够在低P下保持足够水平的N 2 固定能力的大豆品种,那么拉丁美洲和非洲部分地区的农民就可以增加土壤贫瘠的大豆产量。在本研究中,分别筛选了分别接种了 Rhizobium tropici 菌株UMR1899的51个菜豆 L。基因型,并在5和5筛选了N 2 固定。 140μM磷(P)作为磷矿石供应到泥炭藓生长培养基中。在低土壤磷条件下,鉴定出两种生长良好,N 2 固定的基因型(ANT22和E295)和一种生长不良的基因型(G19833)。 ANT22和E295比G19833具有更大的根瘤质量,更高的固氮酶活性和积累更多的植物P和N,并保持较高的根瘤P浓度。与G19833相比,ANT22和E295在利用低磷条件下的磷矿物质和/或有机质中磷的同时,还依赖于N 2 固定的效率更高,这导致了对三种基因型的根/土/微生物相互作用的研究。 。 ANT22通过降低根际pH来应对磷缺乏症。当依赖N 2 时,低P时G19833的根酸磷酸酶分泌显着低于E295,而ANT22和E295的根毛明显长于G19833。在排水中未检测到有机酸。来自任何基因型。基因型和P水平均影响根瘤的占有率。约三分之二的结节被 R占据。 etli 。但是,属于少数族群的菌株对P的耐受性似乎比 R低。 etli 。在低磷条件下,来自ANT22的根际土壤含有较少的菌落形成单位(cfu),但比G19833更高的菌落具有磷酸盐增溶活性,这可能增加了该基因型的磷素养分。该研究强调了评估不同生长系统和不同土壤条件下低磷耐受性的基因型的重要性。它还显示了研究基因型,根瘤菌和根际中其他微生物之间相互作用的重要性,这些相互作用可能影响磷和氮的营养以及植物的生长。

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