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在豆科-谷类间作系统中,植物-植物促进作用因土壤水分和磷有效性的变化而发生转变。

Transition in plant-plant facilitation in response to soil water and phosphorus availability in a legume-cereal intercropping system.

机构信息

State Key Laboratory of Grassland Agro-Ecosystems, College of Ecology, Lanzhou University, Lanzhou, 730000, China.

School of Ecology and Environmental Science, Yunnan University, Kunming, 650091, China.

出版信息

BMC Plant Biol. 2022 Jun 28;22(1):311. doi: 10.1186/s12870-022-03706-6.

Abstract

BACKGROUND

The tradeoff between negative and positive interactions of facilitated species and facilitators may depend on the degree of resource availability in agroecosystems. However, the rhizospheric mechanisms driving trade-offs that occur along phosphorus (P) and water availability gradients have not yet been systematically clarified. We established three types of root isolation conditions (no barrier, nylon barrier and solid barrier) at different P and water addition levels to address the above issue in a maize-grass pea intercropping system.

RESULTS

The total yield and biomass net effect (NE) and the relative interaction index (RII) were significantly higher than 0 under all environmental conditions, demonstrating that plant-plant interactions generated positive effects in the intercropping system. The maize yield and biomass RII were 0.029-0.095 and 0.018-0.066, respectively, which indicated that maize growth was constantly facilitated. However, the RII for grass pea yield and biomass exhibited a different trend in comparison with maize. It was higher than 0 (as the facilitated species) under low soil P and moisture conditions and transitioned to values lower than 0 (facilitator species) under high P and moisture conditions, which showed that the type and intensity of plant-plant interactions steadily shifted with the applied stressors. Direct interactions decreased the maize rhizospheric soil pH by 1.5% and 1.9% under Low-P conditions. Notably, the rhizospheric soil acid and alkaline phosphatase secretions of maize and grass pea increased by 17.4-27.4% and 15.3-27.7%, respectively, in P-deficient soils. These results show that plant-plant interactions can effectively relieve P stress by mineralizing organophosphorus in P-deficient soils. Furthermore, the above tendency became more pronounced under drought-stressed conditions. The nylon barrier partially restricted the exchange and utilization of available nutrients and decreased the total yield and biomass by 1.8-7.8% and 1.1-7.8%, respectively. The presence of a solid barrier completely restricted interspecific rhizospheric interactions and decreased the total yield and biomass by 2.1-13.8% and 1.6-15.7%, respectively. Phytate and KHPO addition intensified asymmetric interspecific competition, and grass pea was consistently subjected to competitive pressures.

CONCLUSION

Briefly, the tradeoff between facilitation and competition was driven by rhizospheric interactions, and the transition in the intensity and type of interaction was highly dependent on resource availability in a biologically diverse system.

摘要

背景

在农业生态系统中,促进物种和促进者之间的负面和正面相互作用的权衡可能取决于资源的可利用程度。然而,沿磷(P)和水分可利用性梯度发生的权衡的根际机制尚未得到系统阐明。我们在不同的 P 和水分添加水平下建立了三种类型的根隔离条件(无障碍、尼龙障碍和固体障碍),以解决玉米-豌豆间作系统中存在的上述问题。

结果

在所有环境条件下,总产量和生物量净效应(NE)和相对相互作用指数(RII)均显著高于 0,表明植物-植物相互作用在间作系统中产生了积极的影响。玉米产量和生物量的 RII 分别为 0.029-0.095 和 0.018-0.066,表明玉米生长一直受到促进。然而,与玉米相比,豌豆产量和生物量的 RII 表现出不同的趋势。在低土壤 P 和水分条件下,它高于 0(作为促进物种),而在高 P 和水分条件下,它低于 0(促进物种),这表明植物-植物相互作用的类型和强度随着应用的胁迫而稳定变化。在低 P 条件下,直接相互作用使玉米根际土壤 pH 值降低了 1.5%和 1.9%。值得注意的是,在缺磷土壤中,玉米和豌豆的根际土壤酸性和碱性磷酸酶分泌分别增加了 17.4-27.4%和 15.3-27.7%。这些结果表明,植物-植物相互作用可以通过矿化有机磷有效地缓解 P 胁迫。此外,在干旱胁迫条件下,上述趋势更加明显。尼龙障碍部分限制了有效养分的交换和利用,使总产量和生物量分别降低了 1.8-7.8%和 1.1-7.8%。固体障碍完全限制了种间根际相互作用,使总产量和生物量分别降低了 2.1-13.8%和 1.6-15.7%。植酸钠和 KHPO 的添加加剧了非对称种间竞争,豌豆一直受到竞争压力。

结论

简而言之,促进和竞争之间的权衡是由根际相互作用驱动的,在生物多样性系统中,相互作用的强度和类型的转变高度依赖于资源的可利用性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1ce3/9238078/364ba2d9537f/12870_2022_3706_Fig1_HTML.jpg

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