Search results for "Lizards"

showing 7 items of 67 documents

CRMP-4 expression in the adult cerebral cortex and other telencephalic areas of the lizard Podarcis hispanica.

2002

The control of neuritogenesis is crucial for the development, maturation and regeneration of the nervous system. The collapsin response-mediated protein 4 (CRMP-4) is a member of a family of proteins that are involved in neuronal differentiation and axonal outgrowth. In rodents, this protein is expressed in recently generated neurons such as some granule neurons of the dentate gyrus, as well as in certain differentiated neurons undergoing neurite outgrowth or synaptogenesis during adulthood. Since CRMP-4 protein appears to be highly conserved throughout the evolutionary scale, we have used immunocytochemistry to study its distribution in the lizard cerebral cortex. We have found pronounced …

TelencephalonNeuriteMedial cortexGrowth ConesSynaptogenesisNerve Tissue ProteinsPodarcis hispanicaEvolution MolecularDevelopmental NeurosciencemedicineAnimalsCerebral CortexbiologyDentate gyrusStem CellsNeurogenesisCell DifferentiationLizardsbiology.organism_classificationImmunohistochemistrymedicine.anatomical_structurenervous systemBromodeoxyuridineCerebral cortexDentate GyrusNeuroscienceNucleusCell DivisionDevelopmental BiologyBrain research. Developmental brain research
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Epistatic interactions between pterin and carotenoid genes modulate intra-morph color variation in a lizard.

2021

Color polymorphisms have become a major topic in evolutionary biology and substantial efforts have been devoted to the understanding of the mechanisms responsible for originating such colorful systems. Within-morph continuous variation, on the other hand, has been neglected in most of the studies. Here, we combine spectrophotometric/visual modeling and genetic data to study the mechanisms promoting continuous variation within categorical color morphs of Podarcis muralis. Our results suggest that intra-morph variability in the pterin-based orange morph is greater compared to white and yellow morphs. We also show that continuous variation within the orange morph is partially discriminable by …

animal structuresgenetic structuresColorLocus (genetics)Biologychemistry.chemical_compoundbiology.animalAnimalsPterinAllelereproductive and urinary physiologyPolymorphism GeneticLizardPigmentationfungiLizardsbiology.organism_classificationBiological EvolutionCarotenoidsPterinsWhite (mutation)Podarcis muralisVariation (linguistics)chemistryEvolutionary biologyEpistasisAnimal Science and Zoologypsychological phenomena and processesIntegrative zoologyREFERENCES
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Regulatory changes in pterin and carotenoid genes underlie balanced color polymorphisms in the wall lizard

2019

Significance Reptiles show an amazing color diversity based on variation in melanins, carotenoids, and pterins. This study reveals genes controlling differences between three color morphs (white, orange, and yellow) in the common wall lizard. Orange pigmentation, due to high levels of orange/red pterins in skin, is caused by genetic changes in the sepiapterin reductase gene. Yellow skin, showing high levels of yellow carotenoids, is controlled by the beta-carotene oxygenase 2 locus. Thus, the color polymorphism in the common wall lizard is associated with changes in two small regions of the genome containing genes with crucial roles in pterin and carotenoid metabolism. These genes are likel…

balanced polymorphismBalanced polymorphismgenetic structuresEvolutionIntrogressionintrogressionColorpterin pigmentationSkin PigmentationDioxygenasesEvolutionsbiologiGeneticAnimalscarotenoid pigmentationPolymorphismPterin pigmentationEvolutionary BiologyPolymorphism GeneticBalanced polymorphism; Carotenoid pigmentation; Introgression; Podarcis muralis; Pterin pigmentation; Alcohol Oxidoreductases; Animals; Carotenoids; Color; Dioxygenases; Lizards; Pigmentation; Polymorphism Genetic; Pterins; Skin PigmentationPigmentationLizardsBiological SciencesCarotenoidsPterinsAlcohol OxidoreductasesPNAS PlusCarotenoid pigmentationPodarcis muralissense organs
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Rapid learning of a spatial memory task in a lacertid lizard (Podarcis liolepis).

2018

Abstract Mammals and birds are capable of navigating to a goal using learned map-like representations of space (i.e. place learning), but research assessing this navigational strategy in reptiles has produced inconclusive results, in part due to the use of procedures that do not take account of the peculiarities of reptilian behavior and physiology. Here I present a procedure suitable for testing spatial cognition that exploits a naturally evolved, ethologically relevant ability common to many lizards (i.e. refuge seeking behavior). The procedure requires lizards to learn the location of an open refuge inside a rectangular arena containing artificial refuges in every corner, using distal ex…

biologyBehavior AnimalLizardComputer scienceIntelligenceSpatial LearningLizardsGeneral MedicineSpatial cognitionbiology.organism_classificationBehavioral NeuroscienceLacertid lizardPodarcis liolepisCognitionMemory taskbiology.animalComparative cognitionLacertidaeAnimalsAnimal Science and ZoologyCuesSensory cueCognitive psychologySpatial MemoryBehavioural processes
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Projections from the medial cortex in the brain of lizards: correlation of anterograde and retrograde transport of horseradish peroxidase with Timm s…

1988

Efferent projections of the medial cortex of the lizards Podarcis hispanica and Gallotia stehlinii were studied by examining the transport of horseradish peroxidase; results were correlated with those from Timm-stained sections. Two efferent systems were found. The first reaches the distal part of the outer plexiform layer in the medial, dorsomedial, and dorsal cortices, i.e., zones that are negative to Timm staining, and possibly originates from horizontal fusiform neurons. The second reaches the Timm-positive zones in the cortex and septum and is topographically arranged: the vertical portion of the intermediate and caudal medial cortex and the entire rostral medial cortex project to the …

genetic structuresMedial cortexEfferentHippocampusOuter plexiform layerPodarcis hispanicaCortex (anatomy)Neural PathwaysmedicineAnimalsHorseradish PeroxidaseCerebral CortexBrain MappingStaining and LabelingbiologyHistocytochemistryGeneral NeuroscienceLizardsAnatomybiology.organism_classificationInner plexiform layerZincmedicine.anatomical_structurenervous systemMetalsCerebral cortexsense organs
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Striato-amygdaloid transition area lesions reduce the duration of tonic immobility in the lizard Podarcis hispanica.

2002

Neuroanatomical data suggest that the lizard striato-amygdaloid transition area is homologous with the mammalian central amygdala. In order to investigate possible functional similarities, tonic immobility was induced in adult lizards and its duration recorded. Each lizard was then randomly assigned to one of three treatments: (1) bilateral striato-amygdaloid transition area lesions, (2) bilateral dorsal cortex lesions or (3) untreated controls. Three days after trial 1, each lizard was subjected to a second trial and the tonic immobility duration recorded. The mean tonic immobility duration in lizards with striato-amygdaloid transition area lesions was significantly shorter (80.5%; p < 0.0…

medicine.medical_specialtyArchistriatumTime FactorsMovementAmygdalaPodarcis hispanicaTonic (physiology)Dorsal cortexInternal medicinebiology.animalparasitic diseasesmedicineAnimalsTreatment effectFunctional similaritybiologyBehavior AnimalLizardGeneral NeuroscienceSignificant differenceLizardsAnatomyFearbiology.organism_classificationAmygdalaCorpus Striatumbody regionsAmniote vertebratesmedicine.anatomical_structureEndocrinologynervous systemsense organsPsychologyDorsal cortexBrain research bulletin
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The lizard cerebral cortex as a model to study neuronal regeneration

2002

The medial cerebral cortex of lizards, an area homologous to the hippocampal fascia dentata, shows delayed postnatal neurogenesis, i.e., cells in the medial cortex ependyma proliferate and give rise to immature neurons, which migrate to the cell layer. There, recruited neurons differentiate and give rise to zinc containing axons directed to the rest of cortical areas, thus resulting in a continuous growth of the medial cortex and its zinc-enriched axonal projection. This happens along the lizard life span, even in adult lizards, thus allowing one of their most important characteristics: neuronal regeneration. Experiments in our laboratory have shown that chemical lesion of the medial cortex…

neurogênese pós-natalMedial cortexhippocampushipocampoHippocampusBiologyHippocampal formationcélulas-troncomedicineAnimalsmedial cortexcortex mediallcsh:Scienceneural stem cellsCerebral CortexNeuronsMultidisciplinaryzincLizardsAnatomypostnatal neurogenesisNeural stem cellNerve Regenerationregeneraçãomedicine.anatomical_structurenervous systemzincoCerebral cortexregenerationModels AnimalFascia dentatalcsh:QNeuronSeasonsEpendymaNeuroscienceAnais da Academia Brasileira de Ciências
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