Canadian Journal of Forest Research · 2006 · 75 citations · 47 references
Ectomycorrhiza DiversityEngineeringBotanyForest RestorationForestrySpatial InfluenceForest ProductivityPretreatment SamplesPlant EcologyEm Community StructureFungal BiologyMycelial InteractionRetention TreesBiodiversityFungal SymbiosisForest BiologyBiologyNatural SciencesSymbiosisTree GrowthPlant Physiology
Living retention trees are being used in managed forests to promote a variety of values, including the maintenance of biological diversity. Federal forest plans for the northwestern USA include guidelines that require the retention of a minimum of 15% basal area in harvest units, with the goal of facilitating the development of late-seral stand structure, which is an important habitat element for old-growth forest-dependent species. However, effective levels and patterns of green-tree retention are unknown. We present results of a treatment consisting of 15% basal area, evenly dispersed retention (15%D). We quantified changes in the ectomycorrhiza (EM) community after the 15%D treatment, both near and away from retention trees. Pretreatment samples were obtained between 1 and 24 months before tree harvest. Post-treatment samples were collected within 14–25 months of harvest. In areas 8–25 m from retention trees, there was a 50% decline in the number of EM types per soil core from before to after treatment. Soil cores taken >5 m from retention trees exhibited a shift in EM community structure. EM-type richness was positively correlated with fine-root-tip density. We demonstrate the potential for retention trees to act as refugia for recolonization of newly established seedlings by ectomycorrhizal fungi.
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Mycorrhizal Symbiosis, 2nd edn.
Clare H. Robinson, Sally E. Smith, D. J. Read · Journal of Ecology · 1997 · 1.8K citations
The Estimation of Species Richness by Extrapolation
Michael W. Palmer · Ecology · 1990 · 631 citations