Experimental demonstration of chaotic instability in biological nitrification

被引:227
作者
Graham, David W.
Knapp, Charles W.
Van Vleck, Erik S.
Bloor, Katie
Lane, Teresa B.
Graham, Christopher E.
机构
[1] Newcastle Univ, Sch Civil Engn & Geosci, Newcastle Upon Tyne NE1 7RU, Tyne & Wear, England
[2] Univ Kansas, Dept Civil Environm & Architectural Engn, Lawrence, KS 66045 USA
[3] Univ Kansas, Dept Math, Lawrence, KS 66045 USA
[4] Photon Wind Res Ltd, Surrey, BC, Canada
基金
美国国家科学基金会;
关键词
chaotic behavior; Lyapunov exponents; nitrification; mutualism; N-cycle;
D O I
10.1038/ismej.2007.45
中图分类号
Q14 [生态学(生物生态学)];
学科分类号
071012 ; 0713 ;
摘要
Biological nitrification (that is, NH3 -> NO2- -> NO3-) is a key reaction in the global nitrogen cycle (N-cycle); however, it is also known anecdotally to be unpredictable and sometimes fails inexplicably. Understanding the basis of unpredictability in nitrification is critical because the loss or impairment of this function might influence the balance of nitrogen in the environment and also has biotechnological implications. One explanation for unpredictability is the presence of chaotic behavior; however, proving such behavior from experimental data is not trivial, especially in a complex microbial community. Here, we show that chaotic behavior is central to stability in nitrification because of a fragile mutualistic relationship between ammonia-oxidizing bacteria (AOB) and nitrite-oxidizing bacteria (NOB), the two major guilds in nitrification. Three parallel chemostats containing mixed microbial communities were fed complex media for 207 days, and nitrification performance, and abundances of AOB, NOB, total bacteria and protozoa were quantified over time. Lyapunov exponent calculations, supported by surrogate data and other tests, showed that all guilds were sensitive to initial conditions, suggesting broad chaotic behavior. However, NOB were most unstable among guilds and displayed a different general pattern of instability. Further, NOB variability was maximized when AOB were most unstable, which resulted in erratic nitrification including significant NO2- accumulation. We conclude that nitrification is prone to chaotic behavior because of a fragile AOB-NOB mutualism, which must be considered in all systems that depend on this critical reaction.
引用
收藏
页码:385 / 393
页数:9
相关论文
共 49 条
  • [1] [Anonymous], 1995, STANDARD METHODS EXA, V19th
  • [2] STUDY OF FACTORS CONTROLLING NITRITE BUILDUP IN BIOLOGICAL PROCESSES FOR WATER NITRIFICATION
    BALMELLE, B
    NGUYEN, KM
    CAPDEVILLE, B
    CORNIER, JC
    DEGUIN, A
    [J]. WATER SCIENCE AND TECHNOLOGY, 1992, 26 (5-6) : 1017 - 1025
  • [3] Detection of nonlinear dynamics in short, noisy time series
    Barahona, M
    Poon, CS
    [J]. NATURE, 1996, 381 (6579) : 215 - 217
  • [4] Experimental demonstration of chaos in a microbial food web
    Becks, L
    Hilker, FM
    Malchow, H
    Jürgens, K
    Arndt, H
    [J]. NATURE, 2005, 435 (7046) : 1226 - 1229
  • [5] Rising variance: a leading indicator of ecological transition
    Carpenter, SR
    Brock, WA
    [J]. ECOLOGY LETTERS, 2006, 9 (03) : 308 - 315
  • [6] Agreement between theory and measurement in quantification of ammonia-oxidizing bacteria
    Coskuner, G
    Ballinger, SJ
    Davenport, RJ
    Pickering, RL
    Solera, R
    Head, IM
    Curtis, TP
    [J]. APPLIED AND ENVIRONMENTAL MICROBIOLOGY, 2005, 71 (10) : 6325 - 6334
  • [7] Chaotic dynamics in an insect population
    Costantino, RF
    Desharnais, RA
    Cushing, JM
    Dennis, B
    [J]. SCIENCE, 1997, 275 (5298) : 389 - 391
  • [8] Cultivation-independent, semiautomatic determination of absolute bacterial cell numbers in environmental samples by fluorescence in situ hybridization
    Daims, H
    Ramsing, NB
    Schleifer, KH
    Wagner, M
    [J]. APPLIED AND ENVIRONMENTAL MICROBIOLOGY, 2001, 67 (12) : 5810 - 5818
  • [9] Dean A.M., 1985, P270
  • [10] FRY JC, 1990, DIRECT BIOMASS ESTIM