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Data from: Rise and fall of a hybrid zone: implications for the roles of aggression, mate choice, and secondary succession
负责人:
关键词:
Transgressive segregation territoriality metapopulation dynamics introgression phylogeographic discordance Conservation genetics and biodiversity Population structure and phylogeography
DOI:
doi:10.5061/dryad.50070
摘要:
together. Here, we describe genetic and ecological aspects of a hybrid zone between the Eastern Fence Lizard, Sceloporus undulatus, and the Florida Scru
Data from: Evidence for concerted movement of nuclear and mitochondrial clines in a lizard hybrid zone
负责人:
关键词:
SNP;RADseq;hybridization;introgression;Sceloporus
DOI:
doi:10.5061/dryad.19gp1
摘要:
nes in a plateau fence lizard hybrid zone (Sceloporus tristichus) in Arizona. Cline-fitting analyses of SNP and mtDNA data both provide evidence that the hybrid zone
Data from: Inferring introgression using RADseq and DFOIL: power and pitfalls revealed in a case study of spiny lizards (Sceloporus)
负责人:
关键词:
ABBA-BABA;hybridization;D-statistics;mito-nuclear discordance;batch effects
DOI:
doi:10.5061/dryad.s5t3vm8
摘要:
(Sceloporus) from northeastern México. First, we find evidence for recurrent mtDNA introgression between the two focal species based on patterns of mito?nuclear
Data from: Combining data sets with different phylogenetic histories
负责人:
关键词:
phylogenetic accuracy;Combined analysis;computer simulation;separate analysis;consensus analysis;Sceloporus
DOI:
doi:10.5061/dryad.123
摘要:
. Application of the proposed methodology to molecular and morphological data sets for Sceloporus lizards is discussed.
Data from: Here and there, but not everywhere: repeated loss of uncoupling protein 1 in amniotes
负责人:
关键词:
Gavia stellata;Canis familiaris;Haliaeetus albicilla;Balaenoptera acutorostrata;Anolis carolinensis;Picoides pubescens;Cuculus canorus;Pteropus vampyrus;Merops nubicus;Cavia porcellus;Struthio camelus australis;Pseudopodoces humilis;Aquila chrysaetos canadensis;Meleagris gallopavo;Serinus canaria;Procavia capensis;Sarcophilus harrisii;Tupaia belangeri;Zonotrichia albicollis;Buceros rhinoceros silvestris;Homo Sapiens;Dipodomys ordii;Papio anubis;Candoia aspera;Melopsittacus undulatus;Pan troglogdytes;Myotis lucifugus;Thamnophis couchii;Corvus cornix cornix;Sus scrofa;Sceloporus undulatus;Charadrius vociferus;Rattus norvegicus;Crocodylus porosus?;Alligator sinensis;Tauraco erythrolophus;Erinaceus europaeus;Microcebus murinus;Nipponia nippon;Xenopeltis unicolor;Ophiophagus hannah;Choloepus hoffmanni;Myotis brandtii;Dasypus novemcinctus;Tinamus guttatus;Pygoscelis adeliae;Orcinus orca;Tursiops truncatus;Phaethon lepturus;Phalacrocorax carbo;Falco cherrug;Alligator mississippiensis;Microtus ochrogaster;Tyto alba;heterocephalus glaber;Aptenodytes forsteri;Apaloderma vittatum;Macropus eugenii;Chlorocebus sabaeus;Cariama cristata;Egretta garzetta;Pterocles gutturalis;Agkistrodon piscivorus;Macaca mulatta;Felis catus;Physeter macrocephalus;Calypte anna;Gavialis gangeticus;Vicugna pacos;Elgaria multicarinata;Manacus vitellinus;Chaetura pelagica;Gallus gallus;Otolemur garnettii;Pelecanus crispus;turtle;Anolis sagrei;Bos taurus;Balearica regulorum gibbericeps;Chelonia mydas;thermogenesis;Sorex araneus;Ovis aries;Nestor notabilis;Mesitornis unicolor;Opisthocomus hoazin;Python molurus bivittatus;cetacean;Equus caballus;Chrysemys picta;Ficedula albicollis;Mus musculus;Ochotona princeps;Pogona vitticeps;Callithrix jacchus;Colius striatus;Leptosomus discolor;UCP1;Snake;Lamprophis fuliginosus;Anser cygnoides domesticus;Terrapene ornata;Gorilla gorilla;Oryctolagus cuniculus;Fulmarus glacialis;Corvus brachyrhynchos;Sternotherus odoratus;Taeniopygia guttata;Eublepharis macularius;Pongo abelii;Caprimulgus carolinensis;lizard;Monodelphis domestica;Haliaeetus leucocephalus;Mustela putorius;Pelodiscus sinensis;Pelusios castaneus;Chlamydotis macqueenii;Eurypyga helias;Ornithorhynchus anatinus;Columba livia;Loxodonta africana;Echinops telfairi;Falco peregrinus;Nomascus leucogenys;Geospiza fortis;Scincella lateralis;Thamnophis elegans;Tarsius syrichta;Ictidomys tridecemlineatus;Anas platyrhynchos;Ailuropoda melanoleuca;Cheyldra serpentina
DOI:
doi:10.5061/dryad.934fg
摘要:
nonshivering thermogenesis (NST). Although ucp1 arose early in the vertebrate lineage, the loss of ucp1 was previously documented in several reptile species (including birds
Data from: Habitat management alters thermal opportunity
负责人:
关键词:
Recent;Sceloporus woodi;thermal physiology;Adaptation;operative temperature;habitat management;lizard;thermal performance curve;Thermoregulation;Holocene
DOI:
doi:10.5061/dryad.g7s12pk
摘要:
. 2. We examined how habitat management alters microclimates and influences activity time, thermoregulatory behavior, and thermal physiology in a lizard (Sceloporus
Data from: Evolving from static to dynamic signals: evolutionary compensation between two communicative signals
负责人:
关键词:
lizard communication evolution multimodal color signal
DOI:
doi:10.5061/dryad.351qg
摘要:
nents of the communicative repertoire. Here, we ask about the consequences of the evolutionary loss of one signal (a colour patch) on another (a motion display) in Sceloporus
Data from: Competition during thermoregulation altered the body temperatures and hormone levels of lizards
负责人:
关键词:
testosterone;Scelopours jarrovi;dominance hierarchy;body temperature;Aggressive interaction;corticosterone;movement
DOI:
doi:10.5061/dryad.3bc74
摘要:
during thermoregulation, we measured thermoregulation, movement, and hormones of male lizards (Sceloporus jarrovi) when alone and when paired with a sma
Data from: Survival and reproductive costs of repeated acute glucocorticoid elevations in a captive, wild animal
负责人:
MacLeod, Kirsty J.
关键词:
lizard corticosterone glucocorticoids reproductive success
DOI:
doi:10.5061/dryad.p5n6g86
摘要:
of natural challenges, by treating wild-caught gravid female eastern fence lizards (Sceloporus undulatus) with a daily transdermal dose of a glucocorticoid
Data from: Adaptive evolution in locomotor performance: how selective pressures and functional relationships produce diversity
负责人:
关键词:
trade-offs;Aspidoscelis;locomotion;Selection - Natural;phenotypic diversity;Elgaria;Adaptation;Phrynosoma;Sceloporus;Crotaphytus
DOI:
doi:10.5061/dryad.fd847
摘要:
r, it is possible that interactions amongst selective pressures may promote diversity instead. We explored the evolution of locomotor performance in lizards

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