AAA+ proteases and remodeling machines couple hydrolysis of ATP to mechanical unfolding and translocation of proteins following recognition of sequence tags called degrons. Here, we use single-molecule optical trapping to determine the mechanochemistry of two AAA+ proteases, Escherichia coli ClpXP and ClpAP, as they unfold and translocate substrates containing multiple copies of the titin[superscript I27] domain during degradation initiated from the N terminus. Previous studies characterized degradation of related substrates with C-terminal degrons. We find that ClpXP and ClpAP unfold the wild-type titin I27 domain and a destabilized variant far more rapidly when pulling from the N terminus, whereas translocation speed is reduced only mode...
Molecular motors transduce chemical energy –usually from ATP hydrolysis– into directed motion and me...
SummaryIn the axial channels of ClpX and related hexameric AAA+ protein-remodeling rings, the pore-1...
SummaryClpXP and other AAA+ proteases recognize, mechanically unfold, and translocate target protein...
SummaryAll cells employ ATP-powered proteases for protein-quality control and regulation. In the Clp...
SummaryClpXP and other AAA+ proteases recognize, mechanically unfold, and translocate target protein...
AbstractProteolytic machines powered by ATP hydrolysis bind proteins with specific peptide tags, den...
SummaryATP-dependent proteases are vital to maintain cellular protein homeostasis. Here, we study th...
Molecular machines containing double or single AAA+ rings power energy-dependent protein degradation...
SummaryAll cells employ ATP-powered proteases for protein-quality control and regulation. In the Clp...
ATP-dependent proteases degrade proteins in the cytosol of cells. Two recent articles, by Aubin-Tam ...
Thesis (Ph. D.)--Massachusetts Institute of Technology, Dept. of Biology, February 2013.Cataloged fr...
<div><p>Clp ATPases are powerful ring shaped nanomachines which participate in the degradation pathw...
ClpXP and other AAA+ proteases recognize, mechanically unfold, and translocate target proteins into ...
Thesis (Ph. D.)--Massachusetts Institute of Technology, Dept. of Biology, 2005.Includes bibliographi...
ATP-dependent proteases exist in all cells and are crucial regulators of the pro-teome. These biolog...
Molecular motors transduce chemical energy –usually from ATP hydrolysis– into directed motion and me...
SummaryIn the axial channels of ClpX and related hexameric AAA+ protein-remodeling rings, the pore-1...
SummaryClpXP and other AAA+ proteases recognize, mechanically unfold, and translocate target protein...
SummaryAll cells employ ATP-powered proteases for protein-quality control and regulation. In the Clp...
SummaryClpXP and other AAA+ proteases recognize, mechanically unfold, and translocate target protein...
AbstractProteolytic machines powered by ATP hydrolysis bind proteins with specific peptide tags, den...
SummaryATP-dependent proteases are vital to maintain cellular protein homeostasis. Here, we study th...
Molecular machines containing double or single AAA+ rings power energy-dependent protein degradation...
SummaryAll cells employ ATP-powered proteases for protein-quality control and regulation. In the Clp...
ATP-dependent proteases degrade proteins in the cytosol of cells. Two recent articles, by Aubin-Tam ...
Thesis (Ph. D.)--Massachusetts Institute of Technology, Dept. of Biology, February 2013.Cataloged fr...
<div><p>Clp ATPases are powerful ring shaped nanomachines which participate in the degradation pathw...
ClpXP and other AAA+ proteases recognize, mechanically unfold, and translocate target proteins into ...
Thesis (Ph. D.)--Massachusetts Institute of Technology, Dept. of Biology, 2005.Includes bibliographi...
ATP-dependent proteases exist in all cells and are crucial regulators of the pro-teome. These biolog...
Molecular motors transduce chemical energy –usually from ATP hydrolysis– into directed motion and me...
SummaryIn the axial channels of ClpX and related hexameric AAA+ protein-remodeling rings, the pore-1...
SummaryClpXP and other AAA+ proteases recognize, mechanically unfold, and translocate target protein...