B027-07
Progressive nitrogen limitation across the Tibetan alpine permafrost region

Tuesday, 8 December 2020: 17:54
Virtual
Yuanhe Yang1, Dan Kou1, Guibiao Yang1, Fei Li2, Xuehui Feng2, Dianye Zhang2, Chao Mao1, Qiwen Zhang1, Yunfeng Peng1, Chengjun Ji3, Qiuan Zhu4, Yunting Fang5, Xueyan Liu6, Xu Ri7, Siqi Li8, Jia Deng9, Xunhua Zheng10 and Jingyun Fang2, (1)IB Institute of Botany, Chinese Academy of Sciences, Beijing, China, (2)Institute of Botany, Chinese Academy of Sciences, Beijing, China, (3)Peking University, Beijing, China, (4)Northwest A&F University, Yangling, China, (5)Institute of Applied Ecology, Chinese Academy of Sciences, Shenyang, China, (6)Boulder, CO, United States, (7)Key Laboratory of Alpine Ecology and Biodiversity Institute of Tibetan Plateau Research Chinese Academy of Sciences and CAS Center for Excellence in Tibetan Plateau Earth Sciences, Beijing, China, (8)Institute of Atmospheric Physics, Chinese Academy of Sciences, Beijing, China, (9)University of New Hampshire, Beijing, United States, (10)State Key Laboratory of Atmospheric Boundary Layer Physics and Atmospheric Chemistry, Institute of Atmospheric Physics, Chinese Academy of Sciences, Beijing, China
Abstract:
The ecosystem carbon (C) balance in permafrost regions, which has a global significance in understanding the terrestrial C-climate feedback, is significantly regulated by nitrogen (N) dynamics. However, our knowledge on temporal changes in vegetation N limitation (i.e., the supply of N relative to plant N demand) in permafrost ecosystems is still limited. Based on the combination of isotopic observations derived from a re-sampling campaign along a ~3000 km transect and simulations obtained from a process-based biogeochemical model, here we detect changes in ecosystem N cycle across the Tibetan alpine permafrost region over the past decade. We find that vegetation N limitation becomes stronger despite the increased available N production. The enhanced N limitation on vegetation growth is driven by the joint effects of elevated plant N demand and gaseous N loss. These findings suggest that N would constrain the future trajectory of ecosystem C cycle in this alpine permafrost region.