Probing actin‐activated ATP turnover kinetics of human cardiac myosin II by single molecule fluorescence

Author:

Berg Albin1,Velayuthan Lok Priya1,Tågerud Sven1,Ušaj Marko1,Månsson Alf1ORCID

Affiliation:

1. Department of Chemistry and Biomedical Sciences, Faculty of Health and Life Science Linnaeus University Kalmar Sweden

Abstract

AbstractMechanistic insights into myosin II energy transduction in striated muscle in health and disease would benefit from functional studies of a wide range of point‐mutants. This approach is, however, hampered by the slow turnaround of myosin II expression that usually relies on adenoviruses for gene transfer. A recently developed virus‐free method is more time effective but would yield too small amounts of myosin for standard biochemical analyses. However, if the fluorescent adenosine triphosphate (ATP) and single molecule (sm) total internal reflection fluorescence microscopy previously used to analyze basal ATP turnover by myosin alone, can be expanded to actin‐activated ATP turnover, it would appreciably reduce the required amount of myosin. To that end, we here describe zero‐length cross‐linking of human cardiac myosin II motor fragments (sub‐fragment 1 long [S1L]) to surface‐immobilized actin filaments in a configuration with maintained actin‐activated ATP turnover. After optimizing the analysis of sm fluorescence events, we show that the amount of myosin produced from C2C12 cells in one 60 mm cell culture plate is sufficient to obtain both the basal myosin ATP turnover rate and the maximum actin‐activated rate constant (kcat). Our analysis of many single binding events of fluorescent ATP to many S1L motor fragments revealed processes reflecting basal and actin‐activated ATPase, but also a third exponential process consistent with non‐specific ATP‐binding outside the active site.

Funder

Vetenskapsrådet

Publisher

Wiley

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