Journal
BOTANY
Volume 91, Issue 5, Pages 301-308Publisher
CANADIAN SCIENCE PUBLISHING
DOI: 10.1139/cjb-2012-0232
Keywords
plant reintroduction; Cirsium pitcheri; gene flow; microsatellite; narrow endemic; population genetic structure; rare species
Categories
Funding
- NSF- LTREB [0516058]
- Direct For Biological Sciences
- Division Of Environmental Biology [0516058] Funding Source: National Science Foundation
- Direct For Biological Sciences
- Div Of Biological Infrastructure [0922995] Funding Source: National Science Foundation
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The aim of any reintroduction is to provide sufficient genetic variability to buffer against changing selection pressures and ensure long-term survival. To date, few empirical studies have compared levels of genetic diversity in reintroduced and native plant populations. Using microsatellite markers, we measured the genetic diversity within reintroduced and native populations of the threatened Cirsium pitcher (Eaton) Torrey and Gray. We found that the use of local mixed source was successful in establishing populations with significantly higher genetic diversity (P < 0.005) than the native populations (allelic richness is 3.39 in reintroduced and 1.84 in native populations). However, the reintroduced populations had significantly higher inbreeding coefficients (P < 0.002) (F-IS is 0.405 and 0.213 in reintroduced and in native populations, respectively), despite having multiple genetic founders, population sizes equivalent to native populations and a positive growth rate. These results may be due to inbreeding or the Wahlund effect, driven by genetic substructuring. This suggests that the small population size of these reintroduced populations may lead to genetic issues in the future, given the low number of flowering individuals each year. This highlights the importance of considering not only the number of source individuals but the effective population size of the reintroduction.
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