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Biological Nitrification Inhibition—A Novel Strategy to Regulate Nitrification in Agricultural Systems

  • G.V. Subbarao
  • , K.L. Sahrawat
  • , K. Nakahara
  • , T. Ishikawa
  • , M. Kishii
  • , I.M. Rao
  • , C.T. Hash
  • , T.S. George
  • , P. Srinivasa Rao
  • , P. Nardi
  • , D. Bonnett
  • , W. Berry
  • , K. Suenaga
  • , J.C. Lata
  • Japan International Research Center for Agricultural Sciences
  • International Crops Research Institute for the Semi-Arid Tropics
  • Yokohama City University
  • Centro Internacional de Agricultura Tropical
  • CIMMYT (Mexico)
  • University of California
  • UPMC - Université Pierre et Marie Curie (Paris 6)

Research output: Chapter in Book/Report/Conference proceedingChapterpeer-review

Abstract

Human activity has had the single largest influence on the global nitrogen (N) cycle by introducing unprecedented amounts of reactive-N into ecosystems. A major portion of this reactive-N, applied as fertilizer to crops, leaks into the environment with cascading negative effects on ecosystem functions and contributes to global warming. Natural ecosystems use multiple pathways of the N-cycle to regulate the flow of this element. By contrast, the large amounts of N currently applied in agricultural systems cycle primarily through the nitrification process, a single inefficient route that allows much of the reactive-N to leak into the environment. The fact that present agricultural systems do not channel this reactive-N through alternate pathways is largely due to uncontrolled soil nitrifier activity, creating a rapid nitrifying soil environment. Regulating nitrification is therefore central to any strategy for improving nitrogen-use efficiency. Biological nitrification inhibition (BNI) is an active plant-mediated natural function, where nitrification inhibitors released from plant roots suppress soil-nitrifying activity, thereby forcing N into other pathways. This review illustrates the presence of detection methods for variation in physiological regulation of BNI-function in field crops and pasture grasses and analyzes the potential for its genetic manipulation. We present a conceptual framework utilizing a BNI-platform that integrates diverse crop science disciplines with ecological principles. Sustainable agriculture will require development of production systems that include new crop cultivars capable of controlling nitrification (i.e., high BNI-capacity) and improved agronomic practices to minimize leakage of reactive-N during the N-cycle, a critical requirement for increasing food production while avoiding environmental damage.
Original languageEnglish
Title of host publicationAdvances in Agronomy
PublisherElsevier
Chapter6
Pages249-302
Volume114
ISBN (Print)978-0-12-394275-3
DOIs
Publication statusPublished - 17 Jan 2012

Publication series

NameAdvances in Agronomy

UN SDGs

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

  1. SDG 2 - Zero Hunger
    SDG 2 Zero Hunger

Keywords

  • Brachiaria
  • Genetic strategies
  • Global warming
  • Greenhouse gas emissions
  • Nitrate leaching
  • Nitrification control
  • Nitrogen
  • Nitrogen use efficiency
  • Nitrous oxide
  • Sorghum
  • Wheat (Triticum aestivum L.)

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