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长期氮添加对水曲柳和落叶松人工林细根生物量、生产量和形态特征的影响
Effects of long-term nitrogen addition on fine root biomass, production and morphological characteristics of Fraxinus mandshurica and Larix gmelinii plantations
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摘要: 为揭示长期氮添加对不同土层吸收根和运输根的生物量、生产、形态特征的影响,基于黑龙江省帽儿山实验林场水曲柳(Fraxinus mandshurica)和落叶松(Larix gmelinii)人工林长期(19年)氮添加实验平台,采用根钻法和内生长法研究氮添加对不同土层吸收根和运输根的生物量、生产和形态的影响。结果表明:长期氮添加下,水曲柳吸收根在0~10 cm土层比根长显著增加26.5%,10~20 cm土层根组织密度显著增加30.8%;水曲柳运输根及落叶松细根形态均无显著变化。在0~30 cm土层中,水曲柳吸收根生物量显著增加76.9%,10~20 cm与20~30 cm土层吸收根和运输根生物量均显著增加,且10~20 cm土层吸收根与运输根生物量比值显著升高。而落叶松在10~20 cm土层中的吸收根生物量显著降低(P<0.05),在20~30 cm土层中吸收根生产量由4.98 g/m2显著增至14.07 g/m2。长期氮添加下,水曲柳通过吸收根形态可塑性与生物量分配调整积极响应,落叶松则表现为亚表层吸收根生物量降低、深层生产量增加。综合来看,长期氮添加下,水曲柳和落叶松细根生物量、生产和形态的响应存在明显的种间和土层差异,且吸收根均比运输根更为敏感。Abstract: The objective of this study was to reveal the effects of long-term nitrogen addition on the different soil layers of the biomass, production and morphology of absorption roots and transportation roots, providing valuable insights for further understanding the adaptation strategies of fine roots under nitrogen deposition. Based on the long-term (19 years) nitrogen addition experimental platform of Fraxinus mandshurica and Larix gmelinii plantations in Maoershan, Heilongjiang Province, China, we investigated the effect of nitrogen addition on the biomass, production and morphology of absorption roots and transportation roots in different soil depths by root drilling method and in-growth core approach. Long-term nitrogen addition significantly increased the specific root length of absorption roots of F. mandshurica by 26.5% in the 0~10 cm soil layer. Additionally, nitrogen addition significantly increased root tissue density of absorption roots of F. mandshurica by 30.8% in the 10~20 cm soil layer. In contrast, nitrogen addition had no significant effects on the morphological traits of transportation roots of F. mandshurica and fine roots of L. gmelinii across all soil depths. In the 0~30 cm soil layer, the biomass of absorption roots of F. mandshurica significantly increased by 76.9%. In the 10~20 cm and 20~30 cm soil layers, both absorption and transportation roots biomass significantly increased, and the ratio of absorption to transportation root biomass in the 10~20 cm layer also significantly increased(P<0.05). For L. gmelinii, the biomass of absorption roots in the 10~20 cm soil layer decreased significantly(P<0.05), while the production of absorption root significantly increased in the 20~30 cm layer from 4.98 g/m2 to 14.07 g/m2. F. mandshurica responded positively to the prolonged N addition by adjusting morphological plasticity of absorption roots and vertical distribution of biomass. L. gmelinii exhibited a decrease in absorption root biomass in the subsurface layer and an increase in production in deeper layers. Overall, the responses of fine root biomass, production and morphology of F. mandshurica and L. gmelinii to long-term nitrogen addition were significantly different among species and soil layers, and the absorption roots were more sensitive than the transport roots.
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