Fungal C translocation restricts N-mineralization in heterogeneous environments

被引:40
作者
Boberg, Johanna B. [1 ]
Finlay, Roger D. [1 ]
Stenlid, Jan [1 ]
Lindahl, Bjorn D. [1 ]
机构
[1] Swedish Univ Agr Sci, Dept Forest Mycol & Pathol, Uppsala BioCtr, S-75007 Uppsala, Sweden
关键词
C:N ratio; litter decomposition; litter decomposing fungi; nutrient cycling; LITTER DECOMPOSITION; POPULATION-STRUCTURE; NITROGEN MINERALIZATION; FOREST; CARBON;
D O I
10.1111/j.1365-2435.2009.01616.x
中图分类号
Q14 [生态学(生物生态学)];
学科分类号
071012 ; 0713 ;
摘要
P>1. In forest soils, fungi generally dominate the decomposer community, but their specific, filamentous physiology is often not recognized in nitrogen (N) cycling models. Many litter degrading fungi form large mycelia and have a well-developed capacity to translocate resources within their mycelia. Fungi may thus connect substrates that differ with respect to carbon (C) and nitrogen (N) availability and, thereby, overcome local resource limitation through translocation. 2. Here we test whether the ability of fungi to translocate carbohydrates within their mycelia prevents local C limitation in a low C:N ratio substrate, thereby reducing N mineralization. The capacity of fungi to translocate N to a high C:N ratio substrate in order to increase the decomposition, was also assessed. Two litter decomposing fungi, Marasmius androsaceus and Mycena epipterygia were grown in axenic laboratory microcosms containing spatially separated substrates: pine needles (C:N = 135) and glycine (C:N = 2). 3. In the absence of needles both fungi mineralized the glycine N. When connecting the two substrates, both fungi were able to overcome local C-deficiency on the glycine medium by translocating carbohydrates from the needles. In the presence of needles, N mineralization from glycine was negligible, although the glycine was utilized. Only trace amounts of N were translocated from glycine to the needles. 4. A basic assumption of N cycling models is that substrates of different qualities decompose in an independent manner. Our observations imply that this assumption may be violated in heterogenic environments dominated by fungi.
引用
收藏
页码:454 / 459
页数:6
相关论文
共 36 条
[1]  
Agren G.I., 1998, THEORETICAL ECOSYSTE
[2]  
[Anonymous], 1988, FUNGAL DECOMPOSITION
[3]  
Axelsson B., 1980, STRUCTURE FUNCTION N, V32, P25
[4]   Litter decomposition and organic matter turnover in northern forest soils [J].
Berg, B .
FOREST ECOLOGY AND MANAGEMENT, 2000, 133 (1-2) :13-22
[5]   Glucose and ammonium additions affect needle decomposition and carbon allocation by the litter degrading fungus Mycena epipterygia [J].
Boberg, Johanna ;
Finlay, Roger D. ;
Stenlid, Jan ;
Nasholm, Torgny ;
Lindahl, Bjorn D. .
SOIL BIOLOGY & BIOCHEMISTRY, 2008, 40 (04) :995-999
[6]   Saprotrophic cord-forming fungi: meeting the challenge of heterogeneous environments [J].
Boddy, L .
MYCOLOGIA, 1999, 91 (01) :13-32
[7]   THE STRUCTURE AND FUNCTION OF THE VEGETATIVE MYCELIUM OF ECTOMYCORRHIZAL PLANTS .1. TRANSLOCATION OF C-14-LABELED CARBON BETWEEN PLANTS INTERCONNECTED BY A COMMON MYCELIUM [J].
FINLAY, RD ;
READ, DJ .
NEW PHYTOLOGIST, 1986, 103 (01) :143-156
[8]   Fungal succession - unravelling the unpredictable [J].
Frankland, JC .
MYCOLOGICAL RESEARCH, 1998, 102 :1-15
[9]   Fungal translocation as a mechanism for soil nitrogen inputs to surface residue decomposition in a no-tillage agroecosystem [J].
Frey, SD ;
Elliott, ET ;
Paustian, K ;
Peterson, GA .
SOIL BIOLOGY & BIOCHEMISTRY, 2000, 32 (05) :689-698
[10]   Reciprocal transfer of carbon and nitrogen by decomposer fungi at the soil-litter interface [J].
Frey, SD ;
Six, J ;
Elliott, ET .
SOIL BIOLOGY & BIOCHEMISTRY, 2003, 35 (07) :1001-1004