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Hofmann, J. L.

Publications and source records attributed to Hofmann, J. L..

2 recordsLinked to original sources

Pre-loading of translation molecules onto ribosomes speeds transport and protein synthesis in Escherichia coli

Translating ribosomes must wait after each elongation step for a new ternary complex (EF-Tu{middle dot}aa-tRNA{middle dot}GTP) to arrive, facilitating rapid codon recognition testing. We recently showed that this wait-time rate-limits elongation in Escherichia coli due to competitive combinatoric searching through crowded cytoplasm by thousands of E. colis 42 unique ternary complexes. Here, we investigate whether ribosomal L12 subunits pool translation molecules to reduce this wait time. We mimic transport and reactions underlying elongation in a physiologically accurate, physically-resolved model of crowded cytoplasm. We find that L12 pre-loading as much as doubles translation rate by reducing diffusive search time. But more L12 is not always better: faster-growing bacteria tend to have fewer L12. We resolve this apparent contradiction by demonstrating tradeoffs between binding and novel sampling as a function of copy number in E. coli. Variable L12 copy numbers may thus have evolved for fast or slow bacterial growth as complementary survival strategies.

biophysics↗

Ultra-weak protein-protein interactions can modulate proteome-wide searching and binding

Research on protein-protein interaction (PPIs) tends to focus on high affinity interactions. Weaker interactions (Kd >1M) recently understood as contributing to intracellular phase separation suggest that even-weaker PPIs might also matter in as-yet unknown ways. However, ultra-weak PPIs (Kd >1mM) are not readily accessible by in vivo techniques. Here we use protein electrostatics to estimate PPI strengths and spatially-resolved dynamic simulations to investigate the potential impacts of ultra-weak PPIs within dense protein suspensions. We find that ultra-weak PPIs can drive formation of transient clusters that last long enough to enable enzyme-catalyzed reactions and accelerate the sampling of protein associations. We apply our method to Mycoplasma genitalium, finding that ultra-weak PPIs should be ubiquitous among cytoplasmic proteins. We also predict that the proteome-wide interactome can be shifted to favor binding-dominant ultra-weak PPIs via the introduction of a few charged protein complexes. We speculate that ultra-weak PPIs could contribute to cellular fitness by facilitating sampling and colloidal-scale transport of proteins involved in biological processes, including protein synthesis.

biophysics↗