Key result
Single-molecule fluorescence assays revealed that ClpXP degrades target proteins via a stochastic engagement and unfolding mechanism that results in highly processive degradation.
The study developed single-molecule fluorescence assays to probe the kinetics of protein denaturation and degradation by ClpXP, revealing similar microscopic and macroscopic activity levels.
No immediate clinical implications; leaves open relevance to cardiac proteostasis.
ClpXP is an ATP-fueled molecular machine that unfolds and degrades target proteins. ClpX, an AAA+ enzyme, recognizes specific proteins, and then uses cycles of ATP hydrolysis to denature any native structure and to translocate the unfolded polypeptide into ClpP for degradation. Here, we develop and apply single-molecule fluorescence assays to probe the kinetics of protein denaturation and degradation by ClpXP. These assays employ a single-chain variant of the ClpX hexamer, linked via a single biotin to a streptavidin-coated surface, and fusion substrates with an N-terminal fluorophore and a C-terminal GFP-titin-ssrA module. In the presence of adenosine 5'-[gamma-thio]triphosphate (ATPgammaS), ClpXP degrades the titin-ssrA portion of these substrates but stalls when it encounters GFP. Exchange into ATP then allows synchronous resumption of denaturation and degradation of GFP and any downstream domains. GFP unfolding can be monitored directly, because intrinsic fluorescence is quenched by denaturation. The time required for complete degradation coincides with loss of the substrate fluorophore from the protease complex. Fitting single-molecule data for a set of related substrates provides time constants for ClpX unfolding, translocation, and a terminal step that may involve product release. Comparison of these single-molecule results with kinetics measured in bulk solution indicates similar levels of microscopic and macroscopic ClpXP activity. These results support a stochastic engagement/unfolding mechanism that ultimately results in highly processive degradation and set the stage for more detailed single-molecule studies of machine function.
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Shin et al. (2009) studied this question. Single-molecule fluorescence assays of ClpXP was evaluated on Kinetics of protein denaturation and degradation. Single-molecule fluorescence assays revealed that ClpXP degrades target proteins via a stochastic engagement and unfolding mechanism that results in highly processive degradation.
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