Black Stem Rust vs Fly Agaric

Puccinia graminis compared with Amanita muscaria

Key Differences

  • Black Stem Rust is Not Evaluated while Fly Agaric is Least Concern.

Taxonomic Classification

Rank Black Stem Rust Fly Agaric
Kingdom same Fungi (Fungi) Fungi (Fungi)
Phylum same Basidiomycota (Club Fungi) Basidiomycota (Club Fungi)
Class Pucciniomycetes (Pucciniomycetes) Agaricomycetes (Mushrooms)
Order Pucciniales (Pucciniales) Agaricales (Gilled Mushrooms)
Family Pucciniaceae Agaricaceae (Agarics)
Genus Puccinia Amanita (Amanitas)
Species Puccinia graminis Amanita muscaria

Evolutionary Relationship

Black Stem Rust and Fly Agaric share a common ancestor at the Phylum level: Basidiomycota. (Club Fungi)

Conservation Status

Black Stem Rust

NE — Not Evaluated

Fly Agaric

LC — Least Concern

Trend: Stable →

Physical Characteristics

Attribute Black Stem Rust Fly Agaric
Diet Decomposer
Average Lifespan 1 years
Average Length 20 cm
Average Weight 100 g

Habitat & Geographic Range

Black Stem Rust

Habitat

Native to Asia and Europe and North America, inhabiting ecosystems characteristic of the region.

Range

Widely distributed across Asia (Taiwan), Europe (6 countries), North America (United States), and South America (Brazil, Peru).

Fly Agaric

Habitat

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

Range

Widely distributed across Europe (4 countries), North America (United States), Oceania and the Pacific (New Zealand), and South America (Brazil, Chile, Colombia).

Black Stem Rust

The Black Stem Rust (Puccinia graminis) is a species in the genus Puccinia. Native to Asia and Europe and North America, inhabiting ecosystems characteristic of the region.

Fly Agaric

Among the most iconic and recognizable fungi on Earth, fly agaric mushrooms display striking red caps with white flecked warts across boreal forests of the Northern Hemisphere. Despite their fairy-tale appearance, they contain potent psychoactive compounds including muscimol and ibotenic acid and are moderately toxic. They form critical mycorrhizal symbioses with birch, pine, and spruce trees, exchanging mineral nutrients for carbon and playing essential roles in boreal forest nutrient cycling.

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