Emiliania huxleyi (a haptophyte) is the most abundant coccolithophore species that produces delicate calcite scales called coccoliths. In this study, we identified several candidate genes associated with coccolith production by comparing the transcriptomes of the calcifying (CCMP 371) and non-calcifying (CCMP 2090) strains of E. huxleyi. Among the candidates, genes highly expressed in CCMP 371 were identified. To confirm whether these genes are associated with calcification, we modulated coccolith production in CCMP 371 by culturing it at different calcium concentrations. At an ambient (10 mM) concentration of calcium in the growth medium, CCMP 371 sustained its calcifying ability. However, at a low (0.1 mM) concentration or absence of calc...
Coccolithophores, among which Emiliania huxleyi is the most abundant and widespread species, are con...
The emergence of ocean acidification as a significant threat to calcifying organisms in marine ecosy...
Coccoiitliophores play a crucial role in the marine carbon cycle. The formation of Calcite (CaC03) b...
The coccolithophorid Emiliania huxleyi is a marine single-celled algae distinguished by its calcium ...
Biomineralization in the marine phytoplankton Emiliania huxleyi is a stringently controlled intracel...
Calcium carbonate precipitation by marine organisms is an acknowledged contributor to the global car...
The major goal of this study was to identify genes involved in the calcification and coccolithogenes...
Emiliania huxleyi, a unicellular marine alga, is notably recognized for its ability to form calcium ...
Coccolithophores are unicellular marine algae characterised by the production of calcite coccoliths....
Coccolithophores are globally distributed unicellular marine algae that are characterized by their c...
The aim of this study is to identify genes involved in calcification and coccolith production in Emi...
The expression of genes of biogeochemical interest in calcifying and noncalcifying life stages of th...
Coccolithophores are globally abundant, calcifying microalgae that have profound effects on marine b...
Coccolithophores, among which Emiliania huxleyi is the most abundant and widespread species, are con...
Title from first page of PDF file (viewed Dec. 5, 2011)Committee members: Betsy Read (chair), Jose M...
Coccolithophores, among which Emiliania huxleyi is the most abundant and widespread species, are con...
The emergence of ocean acidification as a significant threat to calcifying organisms in marine ecosy...
Coccoiitliophores play a crucial role in the marine carbon cycle. The formation of Calcite (CaC03) b...
The coccolithophorid Emiliania huxleyi is a marine single-celled algae distinguished by its calcium ...
Biomineralization in the marine phytoplankton Emiliania huxleyi is a stringently controlled intracel...
Calcium carbonate precipitation by marine organisms is an acknowledged contributor to the global car...
The major goal of this study was to identify genes involved in the calcification and coccolithogenes...
Emiliania huxleyi, a unicellular marine alga, is notably recognized for its ability to form calcium ...
Coccolithophores are unicellular marine algae characterised by the production of calcite coccoliths....
Coccolithophores are globally distributed unicellular marine algae that are characterized by their c...
The aim of this study is to identify genes involved in calcification and coccolith production in Emi...
The expression of genes of biogeochemical interest in calcifying and noncalcifying life stages of th...
Coccolithophores are globally abundant, calcifying microalgae that have profound effects on marine b...
Coccolithophores, among which Emiliania huxleyi is the most abundant and widespread species, are con...
Title from first page of PDF file (viewed Dec. 5, 2011)Committee members: Betsy Read (chair), Jose M...
Coccolithophores, among which Emiliania huxleyi is the most abundant and widespread species, are con...
The emergence of ocean acidification as a significant threat to calcifying organisms in marine ecosy...
Coccoiitliophores play a crucial role in the marine carbon cycle. The formation of Calcite (CaC03) b...