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Type: Journal Article
Author(s): Sandra R. Holden; Brendan M. Rogers; Kathleen K. Treseder; James T. Randerson
Publication Date: 2016

Wildfire activity is projected to increase in boreal forests as a result of climate warming. The consequences of increased wildfire activity for soil carbon (C) storage in boreal forests may depend on the sensitivity of soil microbes to fire severity, but microbial responses to boreal forest fire severity are not well known. Here, we combine remote sensing of fire severity and field sampling to characterize the response of soil microbial biomass per g soil, microbial respiration of CO2 per g soil, and fungal groups to fire severity in a boreal forest ecosystem. We used remote sensing measurements of differenced normalized burn ratio from Landsat as a measure of fire severity. Our results demonstrate that fire severity controls soil microbial responses to boreal forest fires. In comparison to unburned stands, burned stands had a 52% and 56% reduction in soil microbial biomass and basal respiration, respectively. Within burned stands, we found that microbial biomass and basal respiration significantly declined with increasing fire severity. In addition, mycorrhizal taxa and basidiomycetes displayed particularly low tolerances for severe fire. Although wildfires result in the immediate loss of soil C, our study provides evidence that decreases in microbial biomass and respiration following high severity fires may reduce the capacity of the soil microbial community to decompose soil C over longer time scales. Therefore, models of C cycle responses to climate warming may need to represent the sensitivity of microbial biomass and fungal community composition to fire severity in boreal forests.

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Citation: Holden, Sandra R.; Rogers, Brendan M.; Treseder, Kathleen K.; Randerson, James T. 2016. Fire severity influences the response of soil microbes to a boreal forest fire. Environmental Research Letters 11(3):035004.

Cataloging Information

Topics:
Regions:
Keywords:
  • biomass
  • boreal forests
  • C - carbon
  • climate change
  • dNBR - differenced (or delta) Normalized Burn Ratio
  • fire intensity
  • fire management
  • fire regimes
  • fire severity
  • forest management
  • fungi
  • Landsat
  • lightning caused fires
  • mycorrhiza
  • remote sensing
  • soil management
  • soil microbes
  • soil nutrients
  • soil organisms
  • wildfires
Tall Timbers Record Number: 32537Location Status: Not in fileCall Number: AvailableAbstract Status: Okay, Fair use, Reproduced by permission
Record Last Modified:
Record Maintained By: FRAMES Staff (https://www.frames.gov/contact)
FRAMES Record Number: 22019

This bibliographic record was either created or modified by Tall Timbers and is provided without charge to promote research and education in Fire Ecology. The E.V. Komarek Fire Ecology Database is the intellectual property of Tall Timbers.