Počet záznamů: 1
Deficiency and toxicity of nanomolar copper in low irradiance-A physiological and metalloproteomic study in the aquatic plant Ceratophyllum demersum
- 1.0460452 - BC 2017 RIV NL eng J - Článek v odborném periodiku
Thomas, G. - Andresen, Elisa - Mattusch, J. - Hubáček, Tomáš - Küpper, Hendrik
Deficiency and toxicity of nanomolar copper in low irradiance-A physiological and metalloproteomic study in the aquatic plant Ceratophyllum demersum.
Aquatic Toxicology. Roč. 177, August 2016 (2016), s. 226-236. ISSN 0166-445X. E-ISSN 1879-1514
Grant CEP: GA MŠMT LM2015075
Institucionální podpora: RVO:60077344
Klíčová slova: Ceratophyllum demersum * Biophysics of photosynthesis * Chlorophyll fluorescence kinetics
Kód oboru RIV: BO - Biofyzika
Impakt faktor: 4.129, rok: 2016
Essential trace elements (Cu2+, Zn2+, etc) lead to toxic effects above a certain threshold, which is a major environmental problem in many areas of the world. Here, environmentally relevant sub-micromolar concentrations of Cu2+ and simulations of natural light and temperature cycles were applied to the aquatic macrophyte Ceratophyllum demersum a s a model for plant shoots. In this low irradiance study resembling non-summer conditions, growth was optimal in the range 7.5-35 nM Cu, while PSII activity (Fv/Fm) was maximal around 7.5 nM Cu. Damage to the light harvesting complex of photosystem II (LHCII) was the first target of Cu toxicity (>50 nM Cu) where Cu replaced Mg in the LHCII-trimers. This was associated with a subsequent decrease of Chl a as well as heat dissipation (NPQ). The growth rate was decreased from the first week of Cu deficiency. Plastocyanin malfunction due to the lack of Cu that is needed for its active centre was the likely cause of diminished electron flow through PSII (ΦPSII). The pigment decrease added to the damage in the photosynthetic light reactions. These mechanisms ultimately resulted in decrease of starch and oxygen production.
Trvalý link: http://hdl.handle.net/11104/0262890
Počet záznamů: 1