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The genetic basis of cone serotiny in Pinus contorta as a function of mixed-severity and stand-replacement fire regimes

Mike Feduck, Philippe Henry, Richard Winder, David Dunn, René Alfaro, Lara vanAkker, Brad Hawkes
doi: https://doi.org/10.1101/023267
Mike Feduck
aCollege of Science and Management, University of Northern British Columbia 3333 University Way, Prince George, B.C. V2N 4Z9.
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Philippe Henry
aCollege of Science and Management, University of Northern British Columbia 3333 University Way, Prince George, B.C. V2N 4Z9.
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  • For correspondence: philippe.henry{at}unbc.ca
Richard Winder
bNatural Resources Canada, Canadian Forest Service, Pacific Forestry Centre, 506 W Burnside Road, Victoria, BC, V8Z 1M5
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David Dunn
bNatural Resources Canada, Canadian Forest Service, Pacific Forestry Centre, 506 W Burnside Road, Victoria, BC, V8Z 1M5
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René Alfaro
bNatural Resources Canada, Canadian Forest Service, Pacific Forestry Centre, 506 W Burnside Road, Victoria, BC, V8Z 1M5
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Lara vanAkker
bNatural Resources Canada, Canadian Forest Service, Pacific Forestry Centre, 506 W Burnside Road, Victoria, BC, V8Z 1M5
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Brad Hawkes
bNatural Resources Canada, Canadian Forest Service, Pacific Forestry Centre, 506 W Burnside Road, Victoria, BC, V8Z 1M5
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Abstract

ABSTRACT

Wildfires and mountain pine beetle (MPB) attacks are important contributors to the development of stand structure in lodgepole pine, and major drivers of its evolution. The historical pattern of these events have been correlated with variation in cone serotiny (possessing cones that remain closed and retain seeds until opened by fire) across the Rocky Mountain region of Western North America. As climate change brings about a marked increase in the size, intensity, and severity of our wildfires, it is becoming increasingly important to study the genetic basis of serotiny as an adaptation to wildfire. Knowledge gleaned from these studies would have direct implications for forest management in the future, and for the future. In this study, we collected physical data and DNA samples from 122 trees of two different areas in the IDF-dk of British Columbia; multi-cohort stands (Cariboo-Chilcotin) with a history of mixed-severity fire and frequent MPB disturbances, and single-cohort stands (Logan Lake) with a history of stand replacing (crown) fire and infrequent MPB disturbances. We used QuantiNemo to construct simulated populations of lodgepole pine at five different growth rates, and compared the statistical outputs to physical data, then ran a random forest analysis to shed light on sources of variation in serotiny. We also sequenced 39 SNPs, of which 23 failed or were monomorphic. The 16 informative SNPs were used to calculate HO and HE, which were included alongside genotypes for a second random forest analysis. Our best random forest model explained 33% of variation in serotiny, using simulation and physical variables. Our results highlight the need for more investigation into this matter, using more extensive approaches, and also consideration of alternative methods of heredity such as epigenetics.

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The copyright holder for this preprint is the author/funder, who has granted bioRxiv a license to display the preprint in perpetuity. All rights reserved. No reuse allowed without permission.
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Posted July 27, 2015.
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The genetic basis of cone serotiny in Pinus contorta as a function of mixed-severity and stand-replacement fire regimes
Mike Feduck, Philippe Henry, Richard Winder, David Dunn, René Alfaro, Lara vanAkker, Brad Hawkes
bioRxiv 023267; doi: https://doi.org/10.1101/023267
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The genetic basis of cone serotiny in Pinus contorta as a function of mixed-severity and stand-replacement fire regimes
Mike Feduck, Philippe Henry, Richard Winder, David Dunn, René Alfaro, Lara vanAkker, Brad Hawkes
bioRxiv 023267; doi: https://doi.org/10.1101/023267

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