Altai Birch Mouse vs

Sicista napaea compared with Clitocybe subalutacea

Key Differences

  • Altai Birch Mouse is Least Concern while is Data Deficient.

Taxonomic Classification

Rank Altai Birch Mouse
Kingdom Animalia (Animals) Fungi (Fungi)
Phylum Chordata (Chordates) Basidiomycota (Club Fungi)
Class Mammalia (Mammals) Agaricomycetes (Mushrooms)
Order Rodentia (Rodents) Agaricales (Gilled Mushrooms)
Family Dipodidae Tricholomataceae
Genus Sicista Clitocybe
Species Sicista napaea Clitocybe subalutacea

Conservation Status

Altai Birch Mouse

LC — Least Concern

DD — Data Deficient

Physical Characteristics

Attribute Altai Birch Mouse
Diet
Average Lifespan
Average Length
Average Weight

Habitat & Geographic Range

Altai Birch Mouse

Habitat

Typically found in diverse terrestrial and aquatic ecosystems.

Habitat

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

Range

Distributed across Denmark, Norway, and Sweden.

Altai Birch Mouse

The Altai Birch Mouse (Sicista napaea) is a species in the genus Sicista. It is currently classified as Least Concern on the IUCN Red List. Typically found in diverse terrestrial and aquatic ecosystems.

Clitocybe subalutacea is a pale, leather-colored agaric fungus in the family Tricholomataceae found across temperate European woodlands and semi-open habitats. The species epithet subalutacea derives from Latin for 'somewhat leather-colored,' referencing the cap's pale tan to buff coloration distinguishing it from more purely white or grey species in the genus. It fruits in autumn among leaf litter in deciduous and mixed forests, occasionally in grassy woodland clearings, acting as a saprotrophic decomposer of accumulated organic matter. The fruiting body structure is characteristic of Clitocybe: a shallowly depressed to funnel-shaped cap, crowded decurrent gills, and a slender cylindrical stipe. Microscopic spore morphology and chemical reactions assist in confirming identity in this taxonomically complex genus. Like most Clitocybe species, C. subalutacea contributes to decomposer communities in temperate forests, where the collective activity of many fungal species drives litter breakdown and nutrient release, underpinning forest productivity and soil health across European woodland ecosystems.

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