Dramatic Changes in Mitochondrial Subcellular Location and Morphology Accompany Activation of the CO2 Concentrating Mechanism
Findinier, J.; Joubert, L.-M.; Schmid, M. F.; Malkovskiy, A.; Chiu, W.; Burlacot, A.; Grossman, A. R.
Show abstract
Dynamic changes in intracellular ultrastructure can be critical for the ability of organisms to acclimate to environmental conditions. Microalgae, which are responsible for [~]50% of global photosynthesis, compartmentalize their Rubisco into a specialized structure known as the pyrenoid when the cells experience limiting CO2 conditions; this compartmentalization appears to be a component of the CO2 Concentrating Mechanism (CCM), which facilitates photosynthetic CO2 fixation as environmental levels of inorganic carbon (Ci) decline. Changes in the spatial distribution of mitochondria in green algae have also been observed under CO2 limiting conditions, although a role for this reorganization in CCM function remains unclear. We used the green microalgae Chlamydomonas reinhardtii to monitor changes in the position and ultrastructure of mitochondrial membranes as cells transition between high CO2 (HC) and Low/Very Low CO2 (LC/VLC). Upon transferring cells to VLC, the mitochondria move from a central to a peripheral location, become wedged between the plasma membrane and chloroplast envelope, and mitochondrial membranes orient in parallel tubular arrays that extend from the cells apex to its base. We show that these ultrastructural changes require protein and RNA synthesis, occur within 90 min of shifting cells to VLC conditions, correlate with CCM induction and are regulated by the CCM master regulator CIA5. The apico-basal orientation of the mitochondrial membrane, but not the movement of the mitochondrion to the cell periphery, is dependent on microtubules and the MIRO1 protein, which is involved in membrane-microtubule interactions. Furthermore, blocking mitochondrial electron transport in VLC acclimated cells reduces the cells affinity for inorganic carbon. Overall, our results suggest that CIA5-dependent mitochondrial repositioning/reorientation functions in integrating cellular architecture and energetics with CCM activities and invite further exploration of how intracellular architecture can impact fitness under dynamic environmental conditions.
Matching journals
The top 2 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- SAGA1 and SAGA2 promote starch formation around proto-pyrenoids in Arabidopsis chloroplasts 96%
- Photoreceptor-induced LHL4 protects photosystem II in Chlamydomonas reinhardtii 95%
- Co-expressed subunits of dual genetic origin define a conserved supercomplex mediating essential protein import into chloroplasts 95%
Similar papers in this journal
- Pyruvate:ferredoxin oxidoreductase and low abundant ferredoxins support aerobic photomixotrophic growth in cyanobacteria 94%
- Phosphate Starvation Signaling Increases Mitochondrial Membrane Potential through Respiration-independent Mechanisms 94%
- Mitochondrial copper and phosphate transporter specificity was defined early in the evolution of eukaryotes 94%
Similar papers in this journal
- A genome wide copper-sensitized screen identifies novel regulators of mitochondrial cytochrome c oxidase activity 95%
- The plastoglobule-localized AtABC1K6 is a Mn2+-dependent protein kinase necessary for timely transition to reproductive growth 94%
- H2S remodels mitochondrial ultrastructure and destabilizes respiratory supercomplexes 94%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.