Broad skate vs

Amblyraja badia compared with Clitopilus passeckerianus

Key Differences

  • Broad skate is Least Concern while is Not Evaluated.

Taxonomic Classification

Rank Broad skate
Kingdom Animalia (Animals) Fungi (Fungi)
Phylum Chordata (Chordates) Basidiomycota (Club Fungi)
Class Elasmobranchii Agaricomycetes (Mushrooms)
Order Rajiformes (Rajiformes) Agaricales (Gilled Mushrooms)
Family Rajidae Entolomataceae
Genus Amblyraja Clitopilus
Species Amblyraja badia Clitopilus passeckerianus

Conservation Status

Broad skate

LC — Least Concern

NE — Not Evaluated

Physical Characteristics

Attribute Broad skate
Diet
Average Lifespan
Average Length
Average Weight

Habitat & Geographic Range

Broad skate

Habitat

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

Range

Distributed across Norway and Sweden.

Broad skate

The Broad Skate (Amblyraja badia) is a species in the genus Amblyraja. It is currently classified as Least Concern on the IUCN Red List. This species is recognized for its ecological significance within its native range.

Clitopilus passeckerianus is a white-rot agaric fungus in the family Entolomataceae notable for its role as a natural producer of pleuromutilin, a diterpenoid antibiotic compound that serves as the biosynthetic precursor for the veterinary and human antibiotic drugs tiamulin and valnemulin, used to treat Mycoplasma infections in livestock. First described from European woodland habitats, the species produces the characteristic Clitopilus fruiting body: a pale, whitish cap with decurrent, crowded gills becoming pinkish at maturity from angular spores, and a farinaceous odor. Its antibiotic-producing capacity makes C. passeckerianus of significant pharmaceutical interest, and biosynthetic studies of pleuromutilin production have informed synthetic chemistry approaches to antibiotic development. The species inhabits temperate deciduous woodland floors in Europe, fruiting in autumn among leaf litter. Discovery of its pleuromutilin biosynthetic pathway has opened avenues for heterologous expression and semi-synthetic modification aimed at developing novel antibiotics to counter antibiotic-resistant bacterial pathogens.

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