Growth and root oxygen release by Typha latifolia and its effects on sediment methanogenesis

被引:111
作者
Jespersen, DN [1 ]
Sorrell, BK [1 ]
Brix, H [1 ]
机构
[1] Univ Aarhus, Inst Biol Sci, Dept Plant Ecol, DK-8240 Risskov, Denmark
关键词
cattail; aeration; oxygen stress; root development; redox potential; sediment oxygen demand;
D O I
10.1016/S0304-3770(98)00071-0
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Growth of Typha latifolia L. and its effects on sediment methanogenesis were examined in a natural organic sediment and a sediment enriched with acetate to a concentration of 25 mM in the interstitial water. The lower redox potential and higher oxygen demand of the acetate-enriched sediment did not significantly impede growth of T. latifolia despite some differences in growth pattern and root morphology. Plants grown in acetate-enriched sediment were ca. 15% shorter than plants grown in natural sediment, but the former produced more secondary shoots at earlier stages, which resulted in similar total biomasses after 7 weeks of growth in the two sediment types. Plants grown in acetate-enriched sediment had thicker and much shorter roots than plants grown in natural sediment. This difference did not significantly affect the release of oxygen from the roots when measured under laboratory conditions, which was 0.12-0.20 mmol O(2) g(-1) DW h(-1). Enrichment with acetate resulted in much higher sediment methanogenesis rates (643 vs. 90 nmol CH(4) g(-1) sediment DW h(-1)). Growth of T. latifolia significantly reduced methanogenesis in both types of sediment, but the effect was twice as marked in the natural sediment (34%) as in the acetate-enriched sediment (18%), although in absolute terms the reduction was higher in the enriched sediment. The data suggest that this effect of plant growth was via root oxygen release and its effect on redox conditions. In the natural sediment, oxygen release resulted in a significantly higher redox potential and lower sediment oxygen demand, whereas there were no significant changes in the acetate-enriched sediment. The very high oxygen demand of this sediment probably masked the effect of root oxygen release so that a significant reduction in methanogenesis occurred without any significant increase in the redox potential. This demonstrates how root oxygen release from plants like T. latifolia can significantly alter rates of biogeochemical processes such as methanogenesis.
引用
收藏
页码:165 / 180
页数:16
相关论文
共 37 条
[1]  
[Anonymous], ROOT DEV FUNCTION
[2]   PHRAGMITES-AUSTRALIS - VENTURI-INDUCED AND HUMIDITY-INDUCED PRESSURE FLOWS ENHANCE RHIZOME AERATION AND RHIZOSPHERE OXIDATION [J].
ARMSTRONG, J ;
ARMSTRONG, W ;
BECKETT, PM .
NEW PHYTOLOGIST, 1992, 120 (02) :197-207
[3]   Phragmites die-back: Bud and root death, blockages within the aeration and vascular systems and the possible role of phytotoxins [J].
Armstrong, J ;
Armstrong, W ;
VanderPutten, WH .
NEW PHYTOLOGIST, 1996, 133 (03) :399-414
[4]  
ARMSTRONG W, 1990, ADV WAT POL, P41
[5]  
Armstrong W., 1991, PLANT LIFE OXYGEN DE, P283
[6]   SEDIMENT INTERACTIONS WITH SUBMERSED MACROPHYTE GROWTH AND COMMUNITY DYNAMICS [J].
BARKO, JW ;
GUNNISON, D ;
CARPENTER, SR .
AQUATIC BOTANY, 1991, 41 (1-3) :41-65
[7]   INTERNAL GAS-TRANSPORT IN TYPHA-LATIFOLIA L AND TYPHA-ANGUSTIFOLIA L .1. HUMIDITY-INDUCED PRESSURIZATION AND CONVECTIVE THROUGHFLOW [J].
BENDIX, M ;
TORNBJERG, T ;
BRIX, H .
AQUATIC BOTANY, 1994, 49 (2-3) :75-89
[8]  
BOON PI, 1991, FRESHWATER BIOL, V26, P20
[9]   Gas fluxes achieved by in situ convective flow in Phragmites australis [J].
Brix, H ;
Sorrell, BK ;
Schierup, HH .
AQUATIC BOTANY, 1996, 54 (2-3) :151-163
[10]   INTERNAL PRESSURIZATION AND CONVECTIVE GAS-FLOW IN SOME EMERGENT FRESH-WATER MACROPHYTES [J].
BRIX, H ;
SORRELL, BK ;
ORR, PT .
LIMNOLOGY AND OCEANOGRAPHY, 1992, 37 (07) :1420-1433