We describe a dual-trap force-clamp configuration that applies constant loads between a binding protein and an intermittently interacting biological polymer. The method has a measurement delay of only similar to 10 mu s, allows detection of interactions as brief as similar to 100 mu s and probes sub-nanometer conformational changes with a time resolution of tens of microseconds. We tested our method on molecular motors and DNDNA-binding proteins. We could apply constant loads to a single motor domain of myosin before its working stroke was initiated (0.2-1 ms), thus directly measuring its load dependence. We found that, depending on the applied load, myosin weakly interacted (<1 ms) with actin without production of movement, fully developed its working stroke or prematurely detached (<5 ms), thus reducing the working stroke size with load. Our technique extends single-molecule force-clamp spectroscopy and opens new avenues for investigating the effects of forces on biological processes

Ultrafast force-clamp spectroscopy of single molecules reveals load dependence of myosin working stroke

Pavone Francesco Saverio
2012

Abstract

We describe a dual-trap force-clamp configuration that applies constant loads between a binding protein and an intermittently interacting biological polymer. The method has a measurement delay of only similar to 10 mu s, allows detection of interactions as brief as similar to 100 mu s and probes sub-nanometer conformational changes with a time resolution of tens of microseconds. We tested our method on molecular motors and DNDNA-binding proteins. We could apply constant loads to a single motor domain of myosin before its working stroke was initiated (0.2-1 ms), thus directly measuring its load dependence. We found that, depending on the applied load, myosin weakly interacted (<1 ms) with actin without production of movement, fully developed its working stroke or prematurely detached (<5 ms), thus reducing the working stroke size with load. Our technique extends single-molecule force-clamp spectroscopy and opens new avenues for investigating the effects of forces on biological processes
2012
Istituto Nazionale di Ottica - INO
OPTICAL TWEEZERS
RNA-POLYMERASE
MUSCLE MYOSIN
TRANSCRIPTION INITIATION
DNA TRANSLOCATION
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/177145
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