Title
Mechanochemical coupling and bi-phasic force-velocity dependence in the ultra-fast ring atpase spoiiie
Date Issued
05 March 2018
Access level
open access
Resource Type
journal article
Author(s)
University of California
Publisher(s)
eLife Sciences Publications Ltd
Abstract
Multi-subunit ring-shaped ATPases are molecular motors that harness chemical free energy to perform vital mechanical tasks such as polypeptide translocation, DNA unwinding, and chromosome segregation. Previously we reported the intersubunit coordination and stepping behavior of the hexameric ring-shaped ATPase SpoIIIE (Liu et al., 2015). Here we use optical tweezers to characterize the motor’s mechanochemistry. Analysis of the motor response to external force at various nucleotide concentrations identifies phosphate release as the likely force-generating step. Analysis of SpoIIIE pausing indicates that pauses are off-pathway events. Characterization of SpoIIIE slipping behavior reveals that individual motor subunits engage DNA upon ATP binding. Furthermore, we find that SpoIIIE’s velocity exhibits an intriguing bi-phasic dependence on force. We hypothesize that this behavior is an adaptation of ultra-fast motors tasked with translocating DNA from which they must also remove DNA-bound protein roadblocks. Based on these results, we formulate a comprehensive mechanochemical model for SpoIIIE.
Volume
7
Language
English
OCDE Knowledge area
Biología celular, Microbiología
Scopus EID
2-s2.0-85045686283
PubMed ID
Source
eLife
ISSN of the container
2050084X
Sponsor(s)
We thank SB Smith for instrument training and assistance; LM Alexander for experimental assistance, JY Shin, M Righini, B Onoa, and C Diaz for discussions. This work was supported by NIH grants R01GM032543 and the US. Department of Energy Office of Basic Energy Sciences Nanomachine Program under contract no. DE-AC02-05CH11231. Howard Hughes Medical Institute Carlos Bustamante National Institutes of Health R01GM071552 Carlos Bustamante National Institutes of Health R01GM032543 Carlos Bustamante U.S. Department of Energy DE-AC02-05CH11231 Carlos Bustamante The funders had no role in study design, data collection and interpretation, or the decision to submit the work for publication.
Sources of information: Directorio de Producción Científica Scopus