Slow diffusion limits phosphorylation in a biomolecular condensate
Gonzalez-Foutel, N. S.; Garg, A.; Lande, E. S.; Khalild, A.; Morkholt Lund, L.; Birkedal, V.; Martens, C.; Kjaergaard, M.
Show abstract
Biomolecular condensates form dynamic compartments that regulate biochemical reactions in cells. Condensates recruit many kinases and regulate their enzymatic activity. Condensates alter the rate of enzymatic reactions through several opposing effects, so it is unclear whether these mostly enhance or retard phosphorylation. Here, we use a synthetic condensate formed by intrinsically disordered proteins to show that slow diffusion in the condensate controls phosphorylation kinetics in the dense phase. We vary the length of substrates by appending phase-separating repeat proteins of different lengths, in order to study how phosphorylation depends on partitioning, diffusion and volume fraction across substrate motifs with different intrinsic kinetics. The condensate environment is generally inhibitory to phosphorylation, although the enzyme remains intact. This inhibition is partially offset by an enhanced reaction rate in the dilute phase, likely due to soluble nanoclusters. Phosphorylation rates are strongly correlated to diffusion coefficients of substrates in the condensate, suggesting mass-transport limitation. Our results suggest that condensates can modify the substrate usage of a kinase via different trade-offs between diffusion and partitioning. We suggest that diffusion limitations are likely a common feature of many macromolecular reactions in condensates, and that high fluidity is crucial for condensates to act as reaction crucibles.
Matching journals
The top 4 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Controlling interfacial protein adsorption, desorption and aggregation in biomolecular condensates 96%
- Multivalent Interactions between Molecular Components Involved in Fast Endophilin Mediated Endocytosis Drive Protein Phase Separation 96%
- Disordered regions of human eIF4B orchestrate a dynamic self-association landscape 96%
Similar papers in this journal
- Semi-synthetic CoA-alpha-Synuclein Constructs Trap N-terminal Acetyltransferase NatB for Binding Mechanism Studies 95%
- Selective ion binding and uptake shape the microenvironment of biomolecular condensates 94%
- A designed Zn2+ sensor domain transmits binding information to transmembrane histidine kinases 94%
Similar papers in this journal
Similar papers in this journal
Similar papers in this journal
"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.