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Alazzam, O. Y.

Publications and source records attributed to Alazzam, O. Y..

2 recordsLinked to original sources

Motor Occupancy Defines Emergent Mechanical States in Cardiac Myosin Ensembles

Myosin II generates force through the collective action of mechanically coupled motor ensembles, yet the mechanisms by which these ensembles sense changes in motor occupancy and coordinate force generation remain poorly understood. Ensemble force production may be governed by an optimal balance between effective motor occupancy and mechanical coordination rather than by motor number alone. We reconstituted cardiac myosin ensembles and systematically perturbed effective motor occupancy using the small-molecule drugs omecamtiv mecarbil (OM), which prolongs actomyosin interactions, and mavacamten (MAVA), which reduces the number of available force-generating myosin heads. Optical trapping measurements of full-length and S1 cardiac myosin ensembles revealed that force generation depended on both myosin concentration and pharmacological perturbation. Reducing myosin concentration increased force generation in the absence of drug, while OM and MAVA produced responses that varied with the initial occupancy state of the ensemble. Low concentrations of MAVA enhanced force generation under high motor occupancy but reduced force under low motor occupancy, whereas OM produced occupancy-dependent changes in both endpoint force and force dynamics. Force traces further revealed changes in the persistence and temporal coordination of force generation. These findings support a model in which cardiac myosin ensembles operate along an occupancy-coordination landscape, where maximal force generation is achieved at an intermediate level of effective motor occupancy. Our results illuminate how changes in motor occupancy are translated into coordinated ensemble mechanics and suggest that emergent mechanical feedback through the shared actin filament may enable ensembles to collectively sense and adapt to their mechanical state.

biophysics↗

Deciphering Mechanochemical Influences of Emergent Actomyosin Crosstalk using QCM-D

PurposeCytoskeletal protein ensembles exhibit emergent mechanics where behavior exhibited in teams is not necessarily the sum of the components single molecule properties. In addition, filaments may act as force sensors that distribute feedback and influence motor protein behavior. To understand the design principles of such emergent mechanics, we developed an approach utilizing QCM-D to measure how actomyosin bundles respond mechanically to environmental variables that alter constituent myosin II motor behavior. MethodsQCM-D is used for the first time to probe alterations in actin-myosin bundle viscoelasticity due to changes in skeletal myosin II concentration and motor nucleotide state. Actomyosin bundles were constructed on a gold QCM-D sensor using a microfluidic setup, and frequency and dissipation change measurements were recorded for each component addition to decipher which assay constituents lead to changes in bundle structural compliancy. ResultsLowering myosin concentration is detected as lower shifts in frequency and dissipation, while the relative changes in frequency and dissipation shifts for both the first and second actin additions are relatively similar. Strikingly, buffer washes with different nucleotides (ATP vs. ADP) yielded unique signatures in frequency and dissipation shifts. As myosin IIs ADP-bound state tightly binds actin filaments, we observe an increase in frequency and decrease in dissipation change, indicating a decrease in viscoelasticity, likely due to myosins increased affinity for actin, conversion from an active motor to a static crosslinker, and ability to recruit additional actin filaments from the surface, making an overall more rigid sensor coating. However, lowering the ADP concentration results in increased system compliancy, indicating that transient crosslinking and retaining a balance of motor activity perhaps results in a more cooperative and productive force generating system. ConclusionsQCM-D can detect changes in actomyosin viscoelasticity due to molecular-level alterations, such as motor concentration and nucleotide state. These results provide support for actins role as a mechanical force-feedback sensor and demonstrate a new approach for deciphering the feedback mechanisms that drive emergent cytoskeletal ensemble crosstalk and intracellular mechanosensing. This approach can be adapted to investigate environmental influences on more complex cytoskeletal ensemble mechanics, including addition of other motors, crosslinkers, and filament types.

biophysics↗