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Biology subjects

McMillan, S. N.

Publications and source records attributed to McMillan, S. N..

2 recordsLinked to original sources

Mavacamten inhibits myosin activity by stabilising the myosin interacting-heads motif and stalling motor force generation

Most sudden cardiac deaths in young people arise from hypertrophic cardiomyopathy, a genetic disease of the heart muscle, with many causative mutations found in the molecular motor beta-cardiac myosin that drives contraction. Therapeutic intervention has until recently been limited to symptomatic relief or invasive procedures. However, small molecule modulators of cardiac myosin are promising therapeutic options to target disease progression. Mavacamten is the first example to gain FDA approval but its molecular mode of action remains unclear, limiting our understanding of its functional effects in disease. To better understand this, we solved the cryoEM structures of beta-cardiac heavy meromyosin in three ADP.Pi-bound states, the primed motor domain in the presence and absence of mavacamten, and the sequestered autoinhibited interacting-heads motif (IHM) in complex with mavacamten, to 2.9 [A], 3.4 [A] and 3.7 [A] global resolution respectively. Together with quantitative crosslinking mass spectrometric analysis, these structures reveal how mavacamten inhibits myosin. Mavacamten stabilises ADP.Pi binding, stalling the motor domain in a primed state, reducing motor dynamics required for actin-binding cleft closure, and slowing progression through the force generation cycle. Within the two-headed myosin molecule, these effects are propagated and lead to stabilisation of the IHM, through increased contacts at the motor-motor interface. Critically, while mavacamten treatment can thus rescue cardiac muscle relaxation in diastole, it can also reduce contractile output in systole in the heart.

biochemistry↗

Swinging lever mechanism of myosin directly demonstrated by time-resolved cryoEM

Myosins are essential for producing force and movement in cells through their interactions with F-actin. Generation of movement is proposed to occur through structural changes within the myosin motor domain, fuelled by ATP hydrolysis, that are amplified by a lever swing1, transitioning myosin from a primed (pre-powerstroke) state to a post-powerstroke state. However, the initial, primed actomyosin state, proposed to form prior to lever swing, has never been observed. Nor has the mechanism by which actin catalyses myosin ATPase activity been resolved. To address this, we performed time-resolved cryoEM of a myosin-5 mutant having slow hydrolysis product release. Primed actomyosin was captured 10 ms after mixing primed myosin with F-actin, whereas post-powerstroke actomyosin predominated at 120 ms, with no abundant intermediate structures. The structures were solved to 4.4[A] and 4.2[A] global resolution respectively. The primed motor binds to actin through its lower 50 kDa subdomain, with the actin-binding cleft open and Pi release prohibited. N-terminal actin interactions with myosin promote rotation of the upper 50 kDa subdomain, which closes the actin-binding cleft, and enables Pi release. Formation of upper 50 kDa subdomain interactions with actin creates the strong-binding interface required for effective force production. The myosin-5 lever swings through an angle of 93{degrees}, predominantly along the actin axis, with little twisting, to produce the post-powerstroke state. The magnitude of the lever swing matches the typical step length of myosin-5 walking along actin. These time-resolved structures directly demonstrate the swinging lever mechanism, ending decades of conjecture on how myosin produces force and movement.

biochemistry↗