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利用^(13)C标记和自然丰度三源区分玉米根际CO_(2)释放 被引量:4
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作者 孙昭安 张保仁 +4 位作者 何敏毅 王开永 胡正江 陈清 孟凡乔 《土壤学报》 CAS CSCD 北大核心 2021年第5期1256-1266,共11页
石灰性土壤中,根际土壤释放的CO_(2)有三个来源,即根源呼吸、土壤有机碳(SOC)分解和土壤无机碳(SIC)溶解,三源区分土壤释放的CO_(2)是量化土壤碳平衡的前提。分别在玉米拔节期、抽穗期和灌浆期进行7 h的^(13)O_(2)脉冲标记,经过27 d示... 石灰性土壤中,根际土壤释放的CO_(2)有三个来源,即根源呼吸、土壤有机碳(SOC)分解和土壤无机碳(SIC)溶解,三源区分土壤释放的CO_(2)是量化土壤碳平衡的前提。分别在玉米拔节期、抽穗期和灌浆期进行7 h的^(13)O_(2)脉冲标记,经过27 d示踪期后破坏性取样,测定^(13)标记与自然丰度处理中,玉米地上部、根系、土壤和土壤CO_(2)的碳含量和δ^(13)值,利用^(13)示踪并结合自然丰度法区分玉米土壤CO_(2)的来源。研究结果显示,随着玉米生长,根源呼吸对土壤CO_(2)的贡献呈降低趋势,从拔节期的66.7%降低至灌浆期的25.8%。整个玉米旺盛生育期内(从拔节期到生育期末),根源呼吸和土壤总碳释放对土壤CO_(2)具有同等贡献,SOC和SIC释放对土壤总碳释放的贡献率分别为30%和20%。玉米生长对土壤的碳输入(根系+根际沉积物)超过土壤总碳(SIC+SOC)的释放,总体表现为土壤碳汇。研究表明,SIC溶解对全球碳库稳定性和调节CO_(2)浓度的影响非常重要,若忽视石灰性土壤中SIC溶解,则会高估SOC的分解,进而影响SOC激发效应以及土壤碳平衡的评估。 展开更多
关键词 ^^(13)C脉冲标记 三源区分 土壤有机碳 土壤无机碳 根源呼吸
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Carbon allocation in Picea jezoensis:Adaptation strategies of a non-treeline species at its upper elevation limit
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作者 Renkai Dong Na Li +4 位作者 Mai-He Li Yu Cong Haibo Du Decai Gao Hong S.He 《Forest Ecosystems》 SCIE CSCD 2024年第3期347-357,共11页
Understanding the physiological adaptations of non-treeline trees to environmental stress is important to understand future shifts in species composition and distribution of current treeline ecotone.The aim of the pre... Understanding the physiological adaptations of non-treeline trees to environmental stress is important to understand future shifts in species composition and distribution of current treeline ecotone.The aim of the present study was to elucidate the mechanisms of the formation of the upper elevation limit of non-treeline tree species,Picea jezoensis,and the carbon allocation strategies of the species on Changbai Mountain.We employed the^(13)C in situ pulse labeling technique to trace the distribution of photosynthetically assimilated carbon in Picea jezoensis at different elevational positions(tree species at its upper elevation limit(TSAUE,1,700 m a.s.l.)under treeline ecotone;tree species at a lower elevation position(TSALE,1,400 m a.s.l.).We analyzed^(13)C and the non-structural carbohydrate(NSC)concentrations in various tissues following labeling.Our findings revealed a significant shift in carbon allocation in TSAUE compared to TSALE.There was a pronounced increase inδ^(13)C allocation to belowground components(roots,soil,soil respiration)in TSAUE compared to TSALE.Furthermore,the C flow rate within the plant-soil-atmosphere system was faster,and the C residence time in the plant was shorter in TSAUE.The trends indicate enhanced C sink activity in belowground tissues in TSAUE,with newly assimilated C being preferentially directed there,suggesting a more conservative C allocation strategy by P.jezoensis at higher elevations under harsher environments.Such a strategy,prioritizing C storage in roots,likely aids in withstanding winter cold stress at the expense of aboveground growth during the growing season,leading to reduced growth of TSAUE compared to TSALE.The results of the present study shed light on the adaptive mechanisms governing the upper elevation limits of non-treeline trees,and enhances our understanding of how non-treeline species might respond to ongoing climate change. 展开更多
关键词 ^^(13)C pulse labeling Carbon distribution Non-structural carbohydrates(NSC) Non-treeline species Sink activity Stressful environments Upper elevation limit
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