Laboratory of Plant Physiology, Biochemistry and Biotechnology, Department of Biology, College of Science & Engineering, and Department of Biochemistry and Molecular Biology, School of Medicine, University of Minnesota Duluth, Duluth, MN 55812, USA
*Corresponding author. E-mail: agoyal@d.umn.edu
AbbreviationsCA
carbonic anhydrase
C1inorganic carbon (HCO3− and CO2)
CCMcarbon concentration mechanisms
DICdissolved inorganic carbon
Rubiscoribulose bisphosphate carboxylase-oxygmase
Unicellular green algae and cyanobacteria have mechanism(s) to actively concentrate dissolved inorganic carbon (DIC) into the cells, only if they are grown with air levels of CO2. The DIC concentration mechanisms are environmental adaptations to actively transport and accumulate inorganic carbon into the chloroplasts of green algae or into the carboxysomes of cyanobacteria. The current working model of cyanobacterial carbon concentration mechanism consists of at least two basic components: an active C1 transport system and a Rubisco-rich polyhedral carboxysome. In case of unicellular green algae, the working model for DIC concentration mechanism includes several isoforms of carbonic anhydrase (CA), and ATPase driven active bicarbonate transporters at the plasmalemma and at the inner chloroplast envelopes. In the past twenty years, significant progress has been made in isolating and characterizing the isoforms of carbonic anhydrase. However, active transporters are yet to be characterized. This mini-review summarizes the current status of research on DIC-pumps including its significance and possible application to increase the productivity of plants of economic importance.
aquatic photosynthesis, carbonic anhydrase, carbon transporters, carbon concentration mechanism, photorespiration, photosynthesis, unicellular green algae