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Elevated CO2 causes changes in the photosynthetic apparatus of a toxic cyanobacterium,Cylindrospermopsis raciborskii
Affiliation:1. School of Biological Science, Monash University, Clayton 3800, Victoria, Australia;2. CSIRO Marine and Atmospheric Research, Hobart, Tasmania, Australia;3. Seqwater, PO Box 16146, City East 4002, Queensland, Australia
Abstract:We studied the physiological acclimation of growth, photosynthesis and CO2-concentrating mechanism (CCM) in Cylindrospermopsis raciborskii exposed to low (present day; L-CO2) and high (1300 ppm; H-CO2) pCO2. Results showed that under H-CO2 the cell specific division rate (μc) was higher and the CO2- and light-saturated photosynthetic rates (Vmax and Pmax) doubled. The cells’ photosynthetic affinity for CO2 (K0.5CO2) was halved compared to L-CO2 cultures. However, no significant differences were found in dark respiration rates (Rd), pigment composition and light harvesting efficiency (α). In H-CO2 cells, non-photochemical quenching (NPQ), associated with state transitions of the electron transport chain (ETC), was negligible. Simultaneously, a reorganisation of PSII features including antenna connectivity (JconPSIIα), heterogeneity (PSIIα/β) and effective absorption cross sectional area (σPSIIα/β) was observed. In relation to different activities of the CCM, our findings suggest that for cells grown under H-CO2: (1) there is down-regulation of CCM activity; (2) the ability of cells to use the harvested light energy is altered; (3) the occurrence of state transitions is likely to be associated with changes of electron flow (cyclic vs linear) through the ETC; (4) changes in PSII characteristics are important in regulating state transitions.
Keywords:CCM  Energy  Photosynthesis  PSII  antenna connectivity parameter of α-centres in PSII  cell-specific division rate  CCM"  },{"  #name"  :"  keyword"  ,"  $"  :{"  id"  :"  kw0070"  },"  $$"  :[{"  #name"  :"  text"  ,"  $$"  :[{"  #name"  :"  __text__"  ,"  _"  :"  CO"  },{"  #name"  :"  inf"  ,"  $"  :{"  loc"  :"  post"  },"  _"  :"  2"  },{"  #name"  :"  __text__"  ,"  _"  :"  -concentrating mechanism  σPSIIα/β"  },{"  #name"  :"  keyword"  ,"  $"  :{"  id"  :"  kw0080"  },"  $$"  :[{"  #name"  :"  text"  ,"  _"  :"  effective absorption cross-sectional area of PSIIα- and β-centres  ETC"  },{"  #name"  :"  keyword"  ,"  $"  :{"  id"  :"  kw0090"  },"  $$"  :[{"  #name"  :"  text"  ,"  _"  :"  electron transport chain  FFI"  },{"  #name"  :"  keyword"  ,"  $"  :{"  id"  :"  kw0100"  },"  $$"  :[{"  #name"  :"  text"  ,"  _"  :"  flash fluorescence induction  inorganic carbon  maximum quantum yield  NPQ"  },{"  #name"  :"  keyword"  ,"  $"  :{"  id"  :"  kw0150"  },"  $$"  :[{"  #name"  :"  text"  ,"  _"  :"  non-photochemical quenching  Phyto-PAM"  },{"  #name"  :"  keyword"  ,"  $"  :{"  id"  :"  kw0160"  },"  $$"  :[{"  #name"  :"  text"  ,"  _"  :"  phytoplankton pulse-amplitude-modulation fluorometry
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