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Application of modern coexistence theory to rare plant restoration provides early indication of restoration trajectories

Aoyama, Lina (författare)
Univ Oregon, OR 97403 USA; Univ Oregon, OR 97403 USA
Shoemaker, Lauren G. (författare)
Univ Wyoming, WY 82071 USA
Gilbert, Benjamin (författare)
Univ Toronto, Canada
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Collinge, Sharon K. (författare)
Univ Colorado, CO 80309 USA
Faist, Akasha M. (författare)
New Mexico State Univ, NM 88003 USA
Shackelford, Nancy (författare)
Univ Victoria, Canada; Univ Colorado Boulder, CO USA
Temperton, Vicky M. (författare)
Leuphana Univ, Germany
Barabas, György, 1983- (författare)
Linköpings universitet,Ekologisk och miljövetenskaplig modellering,Tekniska fakulteten,Univ Calif Riverside, CA USA
Larios, Loralee (författare)
Univ Calif Riverside, CA USA
Ladouceur, Emma (författare)
German Ctr Integrat Biodivers Res iDiv Leipzig Ha, Germany; UFZ Helmholtz Ctr Environm Res, Germany
Godoy, Oscar (författare)
Inst Univ Invest Marina INMAR, Spain
Bowler, Catherine (författare)
Univ Queensland, Australia
Hallett, Lauren M. (författare)
Univ Oregon, OR 97403 USA; Univ Oregon, OR 97403 USA
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 (creator_code:org_t)
2022-07-05
2022
Engelska.
Ingår i: Ecological Applications. - : Wiley. - 1051-0761 .- 1939-5582. ; 32:7
  • Tidskriftsartikel (refereegranskat)
Abstract Ämnesord
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  • Restoration ecology commonly seeks to re-establish species of interest in degraded habitats. Despite a rich understanding of how succession influences re-establishment, there are several outstanding questions that remain unaddressed: are short-term abundances sufficient to determine long-term re-establishment success, and what factors contribute to unpredictable restorations outcomes? In other words, when restoration fails, is it because the restored habitat is substandard, because of strong competition with invasive species, or alternatively due to changing environmental conditions that would equally impact established populations? Here, we re-purpose tools developed from modern coexistence theory to address these questions, and apply them to an effort to restore the endangered Contra Costa goldfields (Lasthenia conjugens) in constructed ("restored") California vernal pools. Using 16 years of data, we construct a population model of L. conjugens, a species of conservation concern due primarily to habitat loss and invasion of exotic grasses. We show that initial, short-term appearances of restoration success from population abundances is misleading, as year-to-year fluctuations cause long-term population growth rates to fall below zero. The failure of constructed pools is driven by lower maximum growth rates compared with reference ("natural") pools, coupled with a stronger negative sensitivity to annual fluctuations in abiotic conditions that yield decreased maximum growth rates. Nonetheless, our modeling shows that fluctuations in competition (mainly with exotic grasses) benefit L. conjugens through periods of competitive release, especially in constructed pools of intermediate pool depth. We therefore show how reductions in invasives and seed addition in pools of particular depths could change the outcome of restoration for L. conjugens. By applying a largely theoretical framework to the urgent goal of ecological restoration, our study provides a blueprint for predicting restoration success, and identifies future actions to reverse species loss.

Ämnesord

NATURVETENSKAP  -- Biologi -- Ekologi (hsv//swe)
NATURAL SCIENCES  -- Biological Sciences -- Ecology (hsv//eng)

Nyckelord

Lasthenia; modern coexistence theory; population dynamics; relative nonlinearity; restoration; storage effect; vernal pools

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