The fungus does not transfer carbon to or between roots in an arbuscular mycorrhizal symbiosis

被引:72
作者
Pfeffer, PE
Douds, DD
Bücking, H
Schwartz, DP
Shachar-Hill, Y [1 ]
机构
[1] Michigan State Univ, Dept Plant Biol, E Lansing, MI 48824 USA
[2] ARS, USDA, Eastern Reg Res Ctr, Wyndmoor, PA 19038 USA
关键词
arbuscular mycorrhizal symbiosis; carbon translocation; GCMS; Glomus intraradices; NMR; Ri T-DNA carrot (Daucus carota) roots;
D O I
10.1111/j.1469-8137.2004.01152.x
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Carbon transfer from fungus to plant in the arbuscular mycorrhizal (AM) symbiosis has been reported, but its significance and even its existence have been called into question and the issue remains controversial. We investigated carbon movement from fungus to plant and from one mycorrhizal root system to another via a common AM fungal network in monoxenic cultures to avoid limitations of some previous studies. C-13 and C-14 labeled substrates were supplied to functioning in vitro AM mycorrhizas between Ri T-DNA transformed carrot (Daucus carota) roots and Glomus intraradices to follow carbon movement into and between host and fungal metabolite pools. Fungal triacylglycerol and trehalose were labeled when permeant substrates were supplied to the extraradical mycelium (ERM), but host-specific compounds in the roots did not become labeled. When labeled glucose was provided to a donor root system, label moved to recipient roots via a common AM fungal network but remained in fungal compounds. We conclude that carbon flow in the AM symbiosis is normally unidirectional from plant to fungus and that while carbon is translocated by the fungus from one metabolically active root system to another, it remains within the intraradical mycelium (IRM).
引用
收藏
页码:617 / 627
页数:11
相关论文
共 38 条
[11]   Increased spore production by Glomus intraradices in the split-plate monoxenic culture system by repeated harvest, gel replacement, and resupply of glucose to the mycorrhiza [J].
Douds, DD .
MYCORRHIZA, 2002, 12 (04) :163-167
[12]  
Finlay R., 1992, Mycorrhizal functioning: an integrative plant-fungal process., P134
[13]  
FINLAY RD, 1986, P 1 EUR S MYC PHYS G, P301
[14]   Carbon transfer between plants and its control in networks of arbuscular mycorrhizas [J].
Fitter, AH ;
Graves, JD ;
Watkins, NK ;
Robinson, D ;
Scrimgeour, C .
FUNCTIONAL ECOLOGY, 1998, 12 (03) :406-412
[15]   Lipid metabolism of the endomycorrhizal fungus:: Glomus intraradices. [J].
Fontaine, J ;
Grandmougin-Ferjani, A ;
Sancholle, M .
COMPTES RENDUS DE L ACADEMIE DES SCIENCES SERIE III-SCIENCES DE LA VIE-LIFE SCIENCES, 2001, 324 (09) :847-853
[16]  
FRANCIS R, 1984, NATURE, V307, P53, DOI 10.1038/307053a0
[17]   Biosynthesis and degradation of glycerides in external mycelium of Glomus mosseae [J].
Gaspar M. ;
Pollero R. ;
Cabello M. .
Mycorrhiza, 2001, 11 (5) :257-261
[18]   Intraspecific transfer of carbon between plants linked by a common mycorrhizal network [J].
Graves, JD ;
Watkins, NK ;
Fitter, AH ;
Robinson, D ;
Scrimgeour, C .
PLANT AND SOIL, 1997, 192 (02) :153-159
[19]   FLORISTIC DIVERSITY IN A MODEL SYSTEM USING EXPERIMENTAL MICROCOSMS [J].
GRIME, JP ;
MACKEY, JML ;
HILLIER, SH ;
READ, DJ .
NATURE, 1987, 328 (6129) :420-422
[20]  
Jakobsen I., 1995, P297