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Light respiration in Chlorella sorokiniana

Respiration and photosynthesis are two important processes in microalgal growth that occur simultaneously in the light. To know the rates of both processes, at least one of them has to be measured. To be able to measure the rate of light respiration of Chlorella sorokiniana, the measurement of oxyge...

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Autores principales: Kliphuis, Anna M. J., Janssen, Marcel, van den End, Evert J., Martens, Dirk E., Wijffels, René H.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Springer Netherlands 2010
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3210360/
https://www.ncbi.nlm.nih.gov/pubmed/22131644
http://dx.doi.org/10.1007/s10811-010-9614-7
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author Kliphuis, Anna M. J.
Janssen, Marcel
van den End, Evert J.
Martens, Dirk E.
Wijffels, René H.
author_facet Kliphuis, Anna M. J.
Janssen, Marcel
van den End, Evert J.
Martens, Dirk E.
Wijffels, René H.
author_sort Kliphuis, Anna M. J.
collection PubMed
description Respiration and photosynthesis are two important processes in microalgal growth that occur simultaneously in the light. To know the rates of both processes, at least one of them has to be measured. To be able to measure the rate of light respiration of Chlorella sorokiniana, the measurement of oxygen uptake must be fast, preferably in the order of minutes. We measured the immediate post-illumination respiratory O(2) uptake rate (OUR) in situ, using fiber-optic oxygen microsensors, and a small and simple extension of the cultivation system. This method enables rapid and frequent measurements without disturbing the cultivation and growth of the microalgae. Two batch experiments were performed with C. sorokiniana in a short light-path photobioreactor, and the OUR was measured at different time points. The net oxygen production rate (net OPR) was measured online. Adding the OUR and net OPR gives the gross oxygen production rate (gross OPR), which is a measure for the oxygen evolution by photosynthesis. The gross OPR was 35–40% higher than the net OPR for both experiments. The respiration rate is known to be related to the growth rate, and it is suggested that faster algal growth leads to a higher energy (ATP) requirement, and as such, respiratory activity increases. This hypothesis is supported by our results, as the specific OUR is highest in the beginning of the batch culture when the specific growth rate is highest. In addition, the specific OUR decreases toward the end of the experiments until it reaches a stable value of around 0.3 mmol O(2) h(−1) g(−1). This value for the specific OUR is equal to the maintenance requirement of C. sorokiniana as determined in an independent study of (Zijffers et al. 2010 (in press)). This suggests that respiration could fulfill the maintenance requirements of the microalgal cells.
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spelling pubmed-32103602011-11-28 Light respiration in Chlorella sorokiniana Kliphuis, Anna M. J. Janssen, Marcel van den End, Evert J. Martens, Dirk E. Wijffels, René H. J Appl Phycol Article Respiration and photosynthesis are two important processes in microalgal growth that occur simultaneously in the light. To know the rates of both processes, at least one of them has to be measured. To be able to measure the rate of light respiration of Chlorella sorokiniana, the measurement of oxygen uptake must be fast, preferably in the order of minutes. We measured the immediate post-illumination respiratory O(2) uptake rate (OUR) in situ, using fiber-optic oxygen microsensors, and a small and simple extension of the cultivation system. This method enables rapid and frequent measurements without disturbing the cultivation and growth of the microalgae. Two batch experiments were performed with C. sorokiniana in a short light-path photobioreactor, and the OUR was measured at different time points. The net oxygen production rate (net OPR) was measured online. Adding the OUR and net OPR gives the gross oxygen production rate (gross OPR), which is a measure for the oxygen evolution by photosynthesis. The gross OPR was 35–40% higher than the net OPR for both experiments. The respiration rate is known to be related to the growth rate, and it is suggested that faster algal growth leads to a higher energy (ATP) requirement, and as such, respiratory activity increases. This hypothesis is supported by our results, as the specific OUR is highest in the beginning of the batch culture when the specific growth rate is highest. In addition, the specific OUR decreases toward the end of the experiments until it reaches a stable value of around 0.3 mmol O(2) h(−1) g(−1). This value for the specific OUR is equal to the maintenance requirement of C. sorokiniana as determined in an independent study of (Zijffers et al. 2010 (in press)). This suggests that respiration could fulfill the maintenance requirements of the microalgal cells. Springer Netherlands 2010-11-03 2011 /pmc/articles/PMC3210360/ /pubmed/22131644 http://dx.doi.org/10.1007/s10811-010-9614-7 Text en © The Author(s) 2010 https://creativecommons.org/licenses/by-nc/4.0/ This article is distributed under the terms of the Creative Commons Attribution Noncommercial License which permits any noncommercial use, distribution, and reproduction in any medium, provided the original author(s) and source are credited.
spellingShingle Article
Kliphuis, Anna M. J.
Janssen, Marcel
van den End, Evert J.
Martens, Dirk E.
Wijffels, René H.
Light respiration in Chlorella sorokiniana
title Light respiration in Chlorella sorokiniana
title_full Light respiration in Chlorella sorokiniana
title_fullStr Light respiration in Chlorella sorokiniana
title_full_unstemmed Light respiration in Chlorella sorokiniana
title_short Light respiration in Chlorella sorokiniana
title_sort light respiration in chlorella sorokiniana
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3210360/
https://www.ncbi.nlm.nih.gov/pubmed/22131644
http://dx.doi.org/10.1007/s10811-010-9614-7
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