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Lesser prairie‐chicken dispersal after translocation: Implications for restoration and population connectivity
by
Reitz, Jonathan H.
, Tanner, Evan
, Berigan, Liam A.
, Teige, Elisabeth C.
, Fuhlendorf, Samuel D.
, Fricke, Kent A.
, Rossi, Liza G.
, Haukos, David A.
, Schultz, Kraig A.
, Rice, Mindy B.
, Aulicky, Carly S. H.
, Sullins, Daniel S.
in
Animals
/ Anthropogenic factors
/ Applied Ecology
/ Birds
/ Chickens
/ Climate change
/ connectivity
/ Conservation
/ Conservation Ecology
/ Conservation Reserve Program
/ Conspecifics
/ Dispersal
/ Dispersion
/ Females
/ Frequency variation
/ Genetic diversity
/ Global positioning systems
/ GPS
/ Grasslands
/ Habitats
/ Human influences
/ Immigration
/ Movement Ecology
/ Population
/ Populations
/ Poultry
/ prairie grouse
/ Prairies
/ Precipitation
/ Satellite navigation systems
/ Satellite tracking
/ Success
/ Translocation
/ Transmitters
/ Tympanuchus pallidicinctus
2024
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Lesser prairie‐chicken dispersal after translocation: Implications for restoration and population connectivity
by
Reitz, Jonathan H.
, Tanner, Evan
, Berigan, Liam A.
, Teige, Elisabeth C.
, Fuhlendorf, Samuel D.
, Fricke, Kent A.
, Rossi, Liza G.
, Haukos, David A.
, Schultz, Kraig A.
, Rice, Mindy B.
, Aulicky, Carly S. H.
, Sullins, Daniel S.
in
Animals
/ Anthropogenic factors
/ Applied Ecology
/ Birds
/ Chickens
/ Climate change
/ connectivity
/ Conservation
/ Conservation Ecology
/ Conservation Reserve Program
/ Conspecifics
/ Dispersal
/ Dispersion
/ Females
/ Frequency variation
/ Genetic diversity
/ Global positioning systems
/ GPS
/ Grasslands
/ Habitats
/ Human influences
/ Immigration
/ Movement Ecology
/ Population
/ Populations
/ Poultry
/ prairie grouse
/ Prairies
/ Precipitation
/ Satellite navigation systems
/ Satellite tracking
/ Success
/ Translocation
/ Transmitters
/ Tympanuchus pallidicinctus
2024
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Lesser prairie‐chicken dispersal after translocation: Implications for restoration and population connectivity
by
Reitz, Jonathan H.
, Tanner, Evan
, Berigan, Liam A.
, Teige, Elisabeth C.
, Fuhlendorf, Samuel D.
, Fricke, Kent A.
, Rossi, Liza G.
, Haukos, David A.
, Schultz, Kraig A.
, Rice, Mindy B.
, Aulicky, Carly S. H.
, Sullins, Daniel S.
in
Animals
/ Anthropogenic factors
/ Applied Ecology
/ Birds
/ Chickens
/ Climate change
/ connectivity
/ Conservation
/ Conservation Ecology
/ Conservation Reserve Program
/ Conspecifics
/ Dispersal
/ Dispersion
/ Females
/ Frequency variation
/ Genetic diversity
/ Global positioning systems
/ GPS
/ Grasslands
/ Habitats
/ Human influences
/ Immigration
/ Movement Ecology
/ Population
/ Populations
/ Poultry
/ prairie grouse
/ Prairies
/ Precipitation
/ Satellite navigation systems
/ Satellite tracking
/ Success
/ Translocation
/ Transmitters
/ Tympanuchus pallidicinctus
2024
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Lesser prairie‐chicken dispersal after translocation: Implications for restoration and population connectivity
Journal Article
Lesser prairie‐chicken dispersal after translocation: Implications for restoration and population connectivity
2024
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Overview
Conservation translocations are frequently inhibited by extensive dispersal after release, which can expose animals to dispersal‐related mortality or Allee effects due to a lack of nearby conspecifics. However, translocation‐induced dispersals also provide opportunities to study how animals move across a novel landscape, and how their movements are influenced by landscape configuration and anthropogenic features. Translocation among populations is considered a potential conservation strategy for lesser prairie‐chickens (Tympanuchus pallidicinctus). We determined the influence of release area on dispersal frequency by translocated lesser prairie‐chickens and measured how lesser prairie‐chickens move through grassland landscapes through avoidance of anthropogenic features during their dispersal movements. We translocated 411 lesser prairie‐chickens from northwest Kansas to southeastern Colorado and southwestern Kansas in 2016–2019. We used satellite GPS transmitters to track 115 lesser prairie‐chickens throughout their post‐release dispersal movements. We found that almost all lesser prairie‐chickens that survived from their spring release date until June undergo post‐translocation dispersal, and there was little variation in dispersal frequency by release area (96% of all tracked birds, 100% in Baca County, Colorado, 94% in Morton County, Kansas, n = 55). Dispersal movements (male: 103 ± 73 km, female: 175 ± 108 km, n = 62) led to diffusion across landscapes, with 69% of birds settling >5 km from their release site. During dispersal movements, translocated lesser prairie‐chickens usually travel by a single 3.75 ± 4.95 km dispersal flight per day, selecting for steps that end far from roads and in Conservation Reserve Program (CRP) grasslands. Due to this “stepping stone” method of transit, landscape connectivity is optimized when <5 km separates grassland patches on the landscape. Future persistence of lesser prairie‐chicken populations can be aided through conservation of habitat and strategic placement of CRP to maximize habitat connectivity. Dispersal rates suggest that translocation is better suited to objectives for regional, rather than site‐specific, population augmentation for this species. Lesser prairie‐chickens translocated to southeastern Colorado and southwestern Kansas experienced almost universal dispersal away from the release site (96%). During dispersal movements, lesser prairie‐chickens selected for steps that ended far from roads and in Conservation Reserve Program grasslands. Dispersal rates suggest that translocation is better suited to regional, rather than site‐specific, population augmentation for this species.
Publisher
John Wiley & Sons, Inc,John Wiley and Sons Inc,Wiley
Subject
/ Birds
/ Chickens
/ Conservation Reserve Program
/ Females
/ GPS
/ Habitats
/ Poultry
/ Prairies
/ Satellite navigation systems
/ Success
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