Photoacclimation of the polar diatom Chaetoceros neogracilis at low temperature.

PLoS One

Département de Biologie, Takuvik International Research Laboratory (IRL-3376, CNRS (France) & ULaval (Canada), Université Laval, Québec, Canada.

Published: September 2022

AI Article Synopsis

  • Polar microalgae, like the Arctic diatom Chaetoceros neogracilis, face significant challenges due to cold temperatures and fluctuating light conditions, which impact their growth and enzyme efficiency.
  • This study found that C. neogracilis can adapt to different light levels and temperatures, displaying high levels of Rubisco, low re-oxidation of fixed carbon, and alternative electron transport pathways to sustain energy without relying heavily on organic carbon.
  • These adaptations contribute to efficient growth in extreme environments, indicating that polar microalgae have unique mechanisms that differ from temperate species in how they manage photosynthesis and carbon fixation.

Article Abstract

Polar microalgae face two major challenges: 1- growing at temperatures (-1.7 to 5°C) that limit enzyme kinetics; and 2- surviving and exploiting a wide range of irradiance. The objective of this study is to understand the adaptation of an Arctic diatom to its environment by studying its ability to acclimate to changes in light and temperature. We acclimated the polar diatom Chaetoceros neogracilis to various light levels at two different temperatures and studied its growth and photosynthetic properties using semi-continuous cultures. Rubisco content was high, to compensate for low catalytic rates, but did not change detectably with growth temperature. Contrary to what is observed in temperate species, in C. neogracilis, carbon fixation rate (20 min 14C incorporation) equaled net growth rate (μ) suggesting very low or very rapid (<20 min) re-oxidation of the newly fixed carbon. The comparison of saturation irradiances for electron transport, oxygen net production and carbon fixation revealed alternative electron pathways that could provide energy and reducing power to the cell without consuming organic carbon which is a very limiting product at low temperatures. High protein contents, low re-oxidation of newly fixed carbon and the use of electron pathways alternative to carbon fixation may be important characteristics allowing efficient growth under those extreme environmental conditions.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC9488821PMC
http://journals.plos.org/plosone/article?id=10.1371/journal.pone.0272822PLOS

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