The effects of short-term exposure to subnanomolar methyl-mercury (MeHg) concentrations, representative of contaminated environments, on the microalga Chlamydomonas reinhardtii were assessed using both physiological end points and gene expression analysis. MeHg bioaccumulated and induced significant increase of the photosynthesis efficiency, while the algal growth, oxidative stress, and chlorophyll fluorescence were unaffected. At the molecular level, MeHg significantly dysregulated the expression of genes involved in motility, energy metabolism, lipid metabolism, metal transport, and antioxidant enzymes. Data suggest that the cells were able to cope with subnanomolar MeHg exposure, but this tolerance resulted in a significant cost to the c...
The potential of using gene expression signature as a biomarker of toxicants exposure was explored i...
Mercury (Hg) remains hazardous in aquatic environments because of its biomagnification in food webs....
Mercury (Hg) remains hazardous in aquatic environments because of its biomagnification in food webs....
The effects of short-term exposure to subnanomolar methyl-mercury (MeHg) concentrations, representat...
Contamination by mercury (Hg) is a worldwide concern because of Hg toxicity and biomagnification in ...
Metabolomics characterizes low-molecular-weight molecules involved in different biochemical reaction...
Metabolomics characterizes low-molecular-weight molecules involved in different biochemical reaction...
Metabolomics characterizes low-molecular-weight molecules involved in different biochemical reaction...
Metabolomics characterizes low-molecular-weight molecules involved in different biochemical reaction...
International audienceMercury (Hg) remains hazardous in aquatic environments, because of its toxicit...
Mercury (Hg) remains hazardous in aquatic environments, because of its toxicity and high biomagnific...
Mercury (Hg) remains hazardous in aquatic environments, because of its toxicity and high biomagnific...
International audienceMercury (Hg) remains hazardous in aquatic environments, because of its toxicit...
Mercury (Hg) remains hazardous in aquatic environments, because of its toxicity and high biomagnific...
The effects of two methylmercury (CH3Hg+, MeHg) concentrations, representative of environmental leve...
The potential of using gene expression signature as a biomarker of toxicants exposure was explored i...
Mercury (Hg) remains hazardous in aquatic environments because of its biomagnification in food webs....
Mercury (Hg) remains hazardous in aquatic environments because of its biomagnification in food webs....
The effects of short-term exposure to subnanomolar methyl-mercury (MeHg) concentrations, representat...
Contamination by mercury (Hg) is a worldwide concern because of Hg toxicity and biomagnification in ...
Metabolomics characterizes low-molecular-weight molecules involved in different biochemical reaction...
Metabolomics characterizes low-molecular-weight molecules involved in different biochemical reaction...
Metabolomics characterizes low-molecular-weight molecules involved in different biochemical reaction...
Metabolomics characterizes low-molecular-weight molecules involved in different biochemical reaction...
International audienceMercury (Hg) remains hazardous in aquatic environments, because of its toxicit...
Mercury (Hg) remains hazardous in aquatic environments, because of its toxicity and high biomagnific...
Mercury (Hg) remains hazardous in aquatic environments, because of its toxicity and high biomagnific...
International audienceMercury (Hg) remains hazardous in aquatic environments, because of its toxicit...
Mercury (Hg) remains hazardous in aquatic environments, because of its toxicity and high biomagnific...
The effects of two methylmercury (CH3Hg+, MeHg) concentrations, representative of environmental leve...
The potential of using gene expression signature as a biomarker of toxicants exposure was explored i...
Mercury (Hg) remains hazardous in aquatic environments because of its biomagnification in food webs....
Mercury (Hg) remains hazardous in aquatic environments because of its biomagnification in food webs....