Brilliant-thighed poison frog vs

Allobates femoralis compared with Clitocybe subspadicea

Key Differences

  • Brilliant-thighed poison frog is Least Concern while is Data Deficient.

Taxonomic Classification

Rank Brilliant-thighed poison frog
Kingdom Animalia (Animals) Fungi (Fungi)
Phylum Chordata (Chordates) Basidiomycota (Club Fungi)
Class Amphibia (Amphibians) Agaricomycetes (Mushrooms)
Order Anura (Frogs & Toads) Agaricales (Gilled Mushrooms)
Family Aromobatidae Tricholomataceae
Genus Allobates Clitocybe
Species Allobates femoralis Clitocybe subspadicea

Conservation Status

Brilliant-thighed poison frog

LC — Least Concern

DD — Data Deficient

Physical Characteristics

Attribute Brilliant-thighed poison frog
Diet
Average Lifespan
Average Length
Average Weight

Habitat & Geographic Range

Brilliant-thighed poison frog

Habitat

Typically found in freshwater habitats, moist forests, and wetlands.

Range

Found in Venezuela.

Habitat

Typically found in forest floors, decomposing wood, and soil ecosystems.

Range

Distributed across Denmark, Norway, and Sweden.

Brilliant-thighed poison frog

The Brilliant-thighed poison frog (Allobates femoralis) is a species in the genus Allobates. It is currently classified as Least Concern on the IUCN Red List. Typically found in freshwater habitats, moist forests, and wetlands.

Clitocybe subspadicea is an agaric fungus in the family Tricholomataceae native to temperate European forests. The species epithet subspadicea indicates a date-brown or chestnut-brown coloration ('spadiceus' meaning date-brown in Latin), somewhat darker than the whitish or pale grey tones typical of many Clitocybe species, making it more readily distinguished in the field. It fruits in autumn on forest floors of deciduous and mixed woodlands, where it decomposes leaf litter and organic matter as a saprotrophic fungus. The cap is depressed to funnel-shaped, gills are decurrent and crowded, and the stipe is cylindrical and slender, following the typical Clitocybe growth form. The darker pigmentation may reflect production of melanins or other pigment compounds providing protection against UV radiation or desiccation during fruiting. Documentation of species like C. subspadicea through careful field work and herbarium specimens contributes to understanding the remarkable macrofungal diversity of European temperate forests, where hundreds of agaric species perform essential ecological roles in energy flow and nutrient cycling.

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