Distinct Mechanisms Regulating Gene Expression Coexist within the Fermentative Pathways in Chlamydomonas reinhardtii
Under dark anoxia, the unicellular green algae Chlamydomonas reinhardtii may produce hydrogen by means of its hydrogenase enzymes, in particular HYD1, using reductants derived from the degradation of intercellular carbon stores. Other enzymes belonging to the fermentative pathways compete for the sa...
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doaj-f1dae29d636b487cba9a5ef6d22b4f042020-11-25T00:57:59ZengHindawi LimitedThe Scientific World Journal1537-744X2012-01-01201210.1100/2012/565047565047Distinct Mechanisms Regulating Gene Expression Coexist within the Fermentative Pathways in Chlamydomonas reinhardtiiLarisa Angela Swirsky Whitney0Giacomo Novi1Pierdomenico Perata2Elena Loreti3Department of Crop Plant Biology, University of Pisa, Via Mariscoglio 34, 56124 Pisa, ItalyPlantLab, Institute of Life Sciences, Scuola Superiore Sant’Anna, Via Mariscoglio 34, 56124 Pisa, ItalyPlantLab, Institute of Life Sciences, Scuola Superiore Sant’Anna, Via Mariscoglio 34, 56124 Pisa, ItalyInstitute of Agricultural Biology and Biotechnology, National Research Council, Via Moruzzi 1, 56100 Pisa, ItalyUnder dark anoxia, the unicellular green algae Chlamydomonas reinhardtii may produce hydrogen by means of its hydrogenase enzymes, in particular HYD1, using reductants derived from the degradation of intercellular carbon stores. Other enzymes belonging to the fermentative pathways compete for the same reductants. A complete understanding of the mechanisms determining the activation of one pathway rather than another will help us engineer Chlamydomonas for fermentative metabolite production, including hydrogen. We examined the expression pattern of the fermentative genes PDC3, LDH1, ADH2, PFL1, and PFR1 in response to day-night cycles, continuous light, continuous darkness, and low or high oxygen availability, which are all conditions that vary on a regular basis in Chlamydomonas' natural environment. We found that all genes except PFL1 show daily fluctuations in expression, and that PFR1 differentiated itself from the others in that it is clearly responsive to low oxygen, where as PDC3, LDH1, and ADH2 are primarily under diurnal regulation. Our results provide evidence that there exist at least three different regulatory mechanisms within the fermentative pathways and suggest that the fermentative pathways are not redundant but rather that availability of a variety of pathways allows for a differential metabolic response to different environmental conditions.http://dx.doi.org/10.1100/2012/565047 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Larisa Angela Swirsky Whitney Giacomo Novi Pierdomenico Perata Elena Loreti |
spellingShingle |
Larisa Angela Swirsky Whitney Giacomo Novi Pierdomenico Perata Elena Loreti Distinct Mechanisms Regulating Gene Expression Coexist within the Fermentative Pathways in Chlamydomonas reinhardtii The Scientific World Journal |
author_facet |
Larisa Angela Swirsky Whitney Giacomo Novi Pierdomenico Perata Elena Loreti |
author_sort |
Larisa Angela Swirsky Whitney |
title |
Distinct Mechanisms Regulating Gene Expression Coexist within the Fermentative Pathways in Chlamydomonas reinhardtii |
title_short |
Distinct Mechanisms Regulating Gene Expression Coexist within the Fermentative Pathways in Chlamydomonas reinhardtii |
title_full |
Distinct Mechanisms Regulating Gene Expression Coexist within the Fermentative Pathways in Chlamydomonas reinhardtii |
title_fullStr |
Distinct Mechanisms Regulating Gene Expression Coexist within the Fermentative Pathways in Chlamydomonas reinhardtii |
title_full_unstemmed |
Distinct Mechanisms Regulating Gene Expression Coexist within the Fermentative Pathways in Chlamydomonas reinhardtii |
title_sort |
distinct mechanisms regulating gene expression coexist within the fermentative pathways in chlamydomonas reinhardtii |
publisher |
Hindawi Limited |
series |
The Scientific World Journal |
issn |
1537-744X |
publishDate |
2012-01-01 |
description |
Under dark anoxia, the unicellular green algae Chlamydomonas reinhardtii may produce hydrogen by means of its hydrogenase enzymes, in particular HYD1, using reductants derived from the degradation of intercellular carbon stores. Other enzymes belonging to the fermentative pathways compete for the same reductants. A complete understanding of the mechanisms determining the activation of one pathway rather than another will help us engineer Chlamydomonas for fermentative metabolite production, including hydrogen. We examined the expression pattern of the fermentative genes PDC3, LDH1, ADH2, PFL1, and PFR1 in response to day-night cycles, continuous light, continuous darkness, and low or high oxygen availability, which are all conditions that vary on a regular basis in Chlamydomonas' natural environment. We found that all genes except PFL1 show daily fluctuations in expression, and that PFR1 differentiated itself from the others in that it is clearly responsive to low oxygen, where as PDC3, LDH1, and ADH2 are primarily under diurnal regulation. Our results provide evidence that there exist at least three different regulatory mechanisms within the fermentative pathways and suggest that the fermentative pathways are not redundant but rather that availability of a variety of pathways allows for a differential metabolic response to different environmental conditions. |
url |
http://dx.doi.org/10.1100/2012/565047 |
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