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Antarctic snow algal responses to temperature - potential implications of climate change

  • Carla Ruiz Gonzalez
  • , Vaila Grigg
  • , Naomi Thomas
  • , Alex Innes Thomson
  • , Ewan MacPherson
  • , Lara Dillon
  • , Emilie Gober
  • , Alison G. Smith
  • , Charles Cockell
  • , Peter Convey
  • , Matthew P. Davey
  • Dunstaffnage Marine Laboratory
  • University of Edinburgh
  • University of Cambridge
  • British Antarctic Survey
  • Millennium Institute Biodiversity of Antarctic and Sub-Antarctic Ecosystems (BASE)
  • University of Birmingham

Research output: Contribution to journalArticlepeer-review

Abstract

Snow algae are important primary producers in Antarctic terrestrial ecosystems. As short-term Antarctic summer temperatures approach 20°C, parameterising temperature tolerance for snow algal species is key to determining how climate change may affect community composition and primary productivity. We studied three Antarctic snow algae strains isolated from Ryder Bay, Adelaide Island (Antarctic Peninsula). The strains were exposed to 4, 8, 10, 12, 16, and 20°C across four laboratory experiments to assess the effects of temperature on growth, metabolite composition, and photochemistry. Growth of Limnomonas sp. and Chlorominima sp. was negatively affected at 8°C, and they did not survive at 20°C. Micractinium sp., conversely, grew well at all temperatures and displayed metabolic profiles similar to those of the temperate alga, Chlorella vulgaris. Photosynthetic parameters, measured by quantum yield (QY) curves, O2 production and pigment content, were minimally affected by temperature in Micractinium sp., whereas Limnomonas sp. showed reduced QY at temperatures of 8°C and above. Chlorominima sp. exhibited the greatest variation in QY and O2 production across temperature treatments. Our findings suggest that increased temperatures are likely to lead to changes in cryomicrobial community composition, with the psychrotolerant Micractinium sp. being more resilient to these changes.

Original languageEnglish
Article numberqvag023
JournalSustainable Microbiology
Volume3
Issue number2
DOIs
Publication statusPublished - 2026

Keywords

  • algae
  • microbial physiology
  • microbial physiology and metabolism
  • phycology
  • polar

ASJC Scopus subject areas

  • Microbiology
  • Applied Microbiology and Biotechnology
  • Renewable Energy, Sustainability and the Environment

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