Journal of Experimental Botany · 2022 · 17 citations · 98 references
Aquatic autotrophs that fix carbon using ribulose 1,5-bisphosphate carboxylase/oxygenase (Rubisco) frequently expend metabolic energy to pump inorganic carbon towards the enzyme's active site. A central requirement of this strategy is the formation of highly concentrated Rubisco condensates (or Rubiscondensates) known as carboxysomes and pyrenoids, which have convergently evolved multiple times in prokaryotes and eukaryotes, respectively. Recent data indicate that these condensates form by the mechanism of liquid-liquid phase separation. This mechanism requires networks of weak multivalent interactions typically mediated by intrinsically disordered scaffold proteins. Here we comparatively review recent rapid developments that detail the determinants and precise interactions that underlie diverse Rubisco condensates. The burgeoning field of biomolecular condensates has few examples where liquid-liquid phase separation can be linked to clear phenotypic outcomes. When present, Rubisco condensates are essential for photosynthesis and growth, and they are thus emerging as powerful and tractable models to investigate the structure-function relationship of phase separation in biology.
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Polymer physics of intracellular phase transitions
Clifford P. Brangwynne, Péter Tompa, Rohit V. Pappu · Nature Physics · 2015 · 1.6K citations
Natural Selection and the Concept of a Protein Space
John Maynard Smith · Nature · 1970 · 958 citations
Competing Protein-RNA Interaction Networks Control Multiphase Intracellular Organization
David W. Sanders, Nancy Kedersha, Daniel S.W. Lee et al. · Cell · 2020 · 822 citations · Full text
Guillaume Tcherkez, Graham D. Farquhar, Thomas S Andrews · Proceedings of the National Academy of Sciences · 2006 · 758 citations · Full text
Engineering, Photorespiration, Bisphosphate Carboxylases +16