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Chinese Journal of Applied Ecology ›› 2026, Vol. 37 ›› Issue (5): 1616-1628.doi: 10.13287/j.1001-9332.202605.032

• Original Articles • Previous Articles     Next Articles

Responses of nitrogen distribution in marsh plant-soil system to high nitrogen and sulfur loads in the Minjiang River estuary.

SUI Lulu1, SUN Zhigao1,2*, WU Huihui1, LI Erheng1, ZHONG Xiaoying1, LIAO Yuchen1, LIU Xin1, HOU Xiaofeng1   

  1. 1Fujian Provincial Key Laboratory for Subtropical Resources and Environment, Fujian Normal University, Fuzhou 350007, China;
    2Key Laboratory of Humid Subtropical Eco-geographical Processes of Ministry of Education, Fujian Normal University, Fuzhou 350007, China
  • Received:2025-11-01 Accepted:2026-03-19 Online:2026-05-18 Published:2026-11-18

Abstract: Estuarine marsh is one of the most sensitive ecosystems to global change and human activities. Estuarine marsh generally acts as a sink of exogenous nitrogen (N), with significant effects on N-cycling. Under the scenario of enhanced N and sulfur (S) loads in the Minjiang River estuary, it is of great significance to explore the responses of N distribution in plant-soil system. We conducted a field experiment with four treatments (T0, control; TN, high N load treatment, 98.0 g N·m-2·a-1; TS, high S load treatment, 216.0 g S·m-2·a-1; and TNS, high N and S load treatment, 98.0 g N·m-2·a-1 + 216.0 g S·m-2·a-1) in a typical Phragmites australis marsh in the Minjiang River estuary. We investigated nitrogen distribution patterns in the plant-soil system under elevated N and S inputs. Results showed that high N and S load significantly altered the contents of total nitrogen (TN), ammonium (NH4+-N) and nitrate (NO3--N) in marsh soils. Compared with the T0 treatment, the TN, NH4+-N and NO3--N contents in the TN treatment increased by 9.1%, 1.3% and 13.4%, the TN content in the TS treatment increased by 9.4%, while the NH4+-N and NO3--N contents decreased by 2.7% and 33.6%, respectively. The TN and NH4+-N contents in the TNS treatment decreased by 13.3% and 6.7%, respectively, while NO3--N content increased by 37.9%. Under different treatments, the TN contents were consistently higher in leaves and lower in roots of P. aus-tralis. Compared with the T0 treatment, root TN contents increased by 1.5% under the TN treatment but decreased by 7.0% and 15.4% under the TS and TNS treatments, while those in leaves in the TN, TS and TNS treatments increased by 10.4%, 1.9% and 7.9%, respectively. Among different treatments, the N stocks in the plant-soil system in the TN and TS treatments were much higher, while that in the TNS treatment was the lowest. Under different N and S loading conditions, P. australis adapted to environmental variations by altering its N uptake and translocation strategies. It adopted a “limited uptake and limited translocation” strategy under high N loading condition, a “massive uptake and massive translocation” strategy under high S loading condition, and a “limited uptake but massive translocation” strategy under high N and S loading condition.

Key words: high N and S load, N distribution, plant-soil system, Phragmites australis marsh, Minjiang River estuary