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Soriano, R.

Publications and source records attributed to Soriano, R..

3 recordsLinked to original sources

Conformational State of Myosins Disordered Loop 2 Structure Mediates Actomyosin Association During Crossbridge Formation

The binding of myosin to actin to form crossbridges is a critical step for force generation by sarcomeres. A recent cryo-electron microscopy structure has resolved the weakly-bound actomyosin complex (AM.ADP.Pi); however, the structural and dynamic factors that influence actin-myosin association are unclear. The disordered loop 2 of myosin is thought to mediate actomyosin interactions in complex, chemomechanical state-dependent fashion; however, the loop is usually unresolved in structural studies due to its intrinsic disorder. Here, we utilize a combination of molecular dynamics simulations and electrostatic calculations to investigate the dynamics of these actin binding regions of myosin. Our results show that loop 2 experiences disordered dynamics and that specific conformations sampled by loop 2 modulate the strength of the associative electrostatic force between actin and myosin. Variation in the actin-myosin associative force was associated with the presentation and orientation of positively charged residues in loop 2. We provide an in-depth analysis of the conformational state space occupied by loop 2 during nine 500 ns molecular dynamics simulations of pre-powerstroke human {beta}-myosin S1, with three replicates each of wildtype and two different mutant (E525K and V606M) myosin structures. This dataset allowed for exploration of how loop 2 conformational sampling is altered by these two mutations which have been clinically and experimentally associated with cardiomyopathy and altered actin binding affinity. The E525K and V606M mutations altered the conformational ensemble sampled by loop 2 and were associated with associative actin binding strength. These results highlight the importance of the positive charges on loop 2 for actomyosin interactions and demonstrate how disease-causing mutations outside of loop 2 can still affect it.

molecular biology↗

Effects of sexual dimorphism and estrous cycle on C. difficile infections prophylaxis in two rodent models

Clostridioides difficile infection (CDI) is responsible for the majority of identifiable hospital-related antibiotic-associated diarrhea. Susceptibility to CDI and severity of disease varies depending on a variety of factors such as aggressive use of broad-spectrum antibiotics, age, and immune status. Epidemiological studies have consistently shown that female patients are more at risk for CDI than their male counterparts. C. difficile is spread by spores which can persist in the environment and in the intestines of patients. Spores do not cause disease but germinate in the antibiotic-altered gut of patients to generate toxin producing vegetative cells. The germination of C. difficile spores is mediated by the composition of bile salts in the gut with taurocholate facilitating germination and chenodeoxycholate inhibiting it.

microbiology↗

Effects of sexual dimorphism and estrous cycle on C. difficile infections in rodent models

Clostridioides difficile infection (CDI) is responsible for the majority of identifiable antibiotic-associated diarrhea. Women are more susceptible to CDI than men. In this study, we show that female mice developed more severe CDI than males. Furthermore, females in estrus developed only mild CDI 1-2 days later, while females in proestrus developed deadly disease. Mirroring the delayed effect of the estrous cycle, pre-infection prolactin levels formed a complex network with immunoglobulins and cytokines that affected early CDI severity one day after challenge. Similarly, pre-infection progesterone and luteinizing hormone formed a network that affected CDI two days after challenge. As expected, immune effectors early in the infection formed a hormone-independent network that concurrently correlated with CDI severity. Interestingly, early infection follicular stimulating hormone levels created a network that affected the CDI recovery phase. In summary, murine sexual hormones affect CDI progression by affecting the immune system both before and during disease progression.

microbiology↗