From seawater to pyrenoid – The molecular architecture of the diatom CO2-concentrating mechanism

Clicks: 4
ID: 325170
2026
Article Quality & Performance Metrics
Overall Quality
Not rated
Combines reader engagement with the AI quality analysis. This article has not been analysed, so there is no overall score — reader engagement is measured and shown alongside.
AI Quality Assessment
Not analyzed
Readership in this journal

Ranked #121 of 498 articles by views in Plant physiology and biochemistry : PPB

Most read Least read

Bar heights use a square-root scale. Only the 120 most-read articles are drawn; the journal has 498 in total.

Mint this article as an NFT
Not yet minted

Create a permanent, verifiable on-chain record of this article on the Scimatic Network. The NFT is held in your Journament account, and you can withdraw it to your own wallet at any time.

5 SUSD one-off · no wallet required
Abstract
Diatoms are the most successful group of algae and their photosynthesis accounts for up to 20% of annual global CO2 fixation. A key factor to their ecological success is the operation of an efficient biophysical CO2-concentrating mechanism (CCM) that enriches CO2 for fixation by ribulose 1,5-bisphosphate carboxylase/oxygenase (Rubisco) in a specialized microcompartment called the pyrenoid. The diatom CCM is comprised of the following components, functional modules, and processes: 1) acquisition of external dissolved inorganic carbon (DIC); 2) translocation of internal DIC to the chloroplast stroma; 3) the concentration of DIC and its controlled release as CO2 for fixation by Rubisco in the pyrenoid; and 4) minimization of CO2 leakage from the pyrenoid to prevent futile cycling. To achieve efficient CO2 fixation, diatoms evolved a unique molecular architecture that utilizes different intracellular compartmentalization strategies of DIC - such as HCO3- transporters/channels and carbonic anhydrases - to deliver high concentrations of CO2 to densely-packaged Rubisco surrounded by a protein shell. This architecture simultaneously orchestrates the DIC mobilization, CO2-evolution, and the prevention of CO2 leakage from the diatom chloroplast. In this review, we focus on recent progress in understanding the molecular details of the diatom CCM to provide an updated model.
Reference Key
openalex_W7203654946 Use this key to autocite in the manuscript while using SciMatic Manuscript Manager or Thesis Manager
Authors Ginga Shimakawa, Onyou Nam, Alexander F. Schober, Oliver Mueller‐Cajar, Luke C. M. Mackinder, Yusuke Matsuda
Journal Plant physiology and biochemistry : PPB
Year 2026
DOI
10.1093/plphys/kiag607
URL
Keywords Keywords not found

Citations

No citations found. To add a citation, contact the admin at info@scimatic.org

No comments yet. Be the first to comment on this article.