Buffalo Sallow-wattle vs

Acacia phlebophylla compared with Chrysosphaerella longispina

Key Differences

  • Buffalo Sallow-wattle is Critically Endangered while is Not Evaluated.

Taxonomic Classification

Rank Buffalo Sallow-wattle
Kingdom Plantae (Plants) Chromista (Chromista)
Phylum Magnoliophyta (Flowering Plants) Ochrophyta (Ochrophyta)
Class Magnoliopsida (Dicots) Chrysophyceae (Chrysophyceae)
Order Fabales (Legumes & Allies) Ochromonadales (Ochromonadales)
Family Fabaceae Paraphysomonadaceae
Genus Acacia Chrysosphaerella
Species Acacia phlebophylla Chrysosphaerella longispina

Conservation Status

Buffalo Sallow-wattle

CR — Critically Endangered

NE — Not Evaluated

Physical Characteristics

Attribute Buffalo Sallow-wattle
Diet
Average Lifespan
Average Length
Average Weight

Habitat & Geographic Range

Buffalo Sallow-wattle

Habitat

Typically found in diverse terrestrial habitats from tropical forests to temperate regions.

Habitat

Native to Europe, inhabiting ecosystems characteristic of the region.

Range

Distributed across Denmark, Norway, and Sweden.

Buffalo Sallow-wattle

The Buffalo Sallow-Wattle (Acacia phlebophylla) is a species in the genus Acacia. It is currently classified as Critically Endangered on the IUCN Red List. Typically found in diverse terrestrial habitats from tropical forests to temperate regions.

Chrysosphaerella longispina is a colonial chrysophyte alga in the genus Chrysosphaerella, notable for the long silica spines (longispina: Latin, long spine) that project from each cell in the colony. The genus is characterized by spherical or discoid colonies of photosynthetic cells that each secrete siliceous scales and elongated spine-like appendages, making Chrysosphaerella colonies distinctively bristled and visible under light microscopy. The long spines of C. longispina likely serve as anti-predation structures that make the colonies more difficult for zooplankton to ingest. C. longispina is found in cold, oligotrophic freshwater lakes, particularly in Scandinavia, where comprehensive chrysophyte surveys have documented its presence. Chrysosphaerella colonies contribute to freshwater primary production and the cycling of biogenic silica, which upon cell dissolution is deposited in lake sediments as microscopically identifiable remains. These silica structures are widely used by paleolimnologists to reconstruct past changes in lake water chemistry, thermal stratification, and climate. The conservation status of C. longispina has not been assessed by the IUCN; the species is listed as Not Evaluated.

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