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Soil legacy nutrients contribute to the decreasing stoichiometric ratio of N and P loading from the Mississippi River Basin

  • Zihao Bian
  • , Hanqin Tian*
  • , Shufen Pan
  • , Hao Shi
  • , Chaoqun Lu
  • , Christopher Anderson
  • , Wei Jun Cai
  • , Charles S. Hopkinson
  • , Dubravko Justic
  • , Latif Kalin
  • , Steven Lohrenz
  • , Steven McNulty
  • , Naiqing Pan
  • , Ge Sun
  • , Zhuonan Wang
  • , Yuanzhi Yao
  • , Yongfa You
  • *Corresponding author for this work
  • Auburn University
  • Nanjing Normal University
  • Boston College
  • CAS - Research Center for Eco-Environmental Sciences
  • Iowa State University
  • University of Delaware
  • University of Georgia
  • Louisiana State University
  • University of Massachusetts Dartmouth
  • United States Department of Agriculture

Research output: Contribution to journalArticlepeer-review

Abstract

Human-induced nitrogen–phosphorus (N, P) imbalance in terrestrial ecosystems can lead to disproportionate N and P loading to aquatic ecosystems, subsequently shifting the elemental ratio in estuaries and coastal oceans and impacting both the structure and functioning of aquatic ecosystems. The N:P ratio of nutrient loading to the Gulf of Mexico from the Mississippi River Basin increased before the late 1980s driven by the enhanced usage of N fertilizer over P fertilizer, whereafter the N:P loading ratio started to decrease although the N:P ratio of fertilizer application did not exhibit a similar trend. Here, we hypothesize that different release rates of soil legacy nutrients might contribute to the decreasing N:P loading ratio. Our study used a data-model integration framework to evaluate N and P dynamics and the potential for long-term accumulation or release of internal soil nutrient legacy stores to alter the ratio of N and P transported down the rivers. We show that the longer residence time of P in terrestrial ecosystems results in a much slower release of P to coastal oceans than N. If contemporary nutrient sources were reduced or suspended, P loading sustained by soil legacy P would decrease much slower than that of N, causing a decrease in the N and P loading ratio. The longer residence time of P in terrestrial ecosystems and the increasingly important role of soil legacy nutrients as a loading source may explain the decreasing N:P loading ratio in the Mississippi River Basin. Our study underscores a promising prospect for N loading control and the urgency to integrate soil P legacy into sustainable nutrient management strategies for aquatic ecosystem health and water security.

Original languageEnglish
Pages (from-to)7145-7158
Number of pages14
JournalGlobal Change Biology
Volume29
Issue number24
DOIs
StatePublished - Dec 2023

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 2 - Zero Hunger
    SDG 2 Zero Hunger
  2. SDG 3 - Good Health and Well-being
    SDG 3 Good Health and Well-being
  3. SDG 15 - Life on Land
    SDG 15 Life on Land

Keywords

  • legacy nutrient
  • nitrogen
  • nutrient balance
  • nutrient budget
  • nutrient loading
  • phosphorus
  • stoichiometric ratio

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