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Institution

Randall Division of Cell and Molecular Biophysics

About: Randall Division of Cell and Molecular Biophysics is a based out in . It is known for research contribution in the topics: Actin cytoskeleton & Skeletal muscle. The organization has 576 authors who have published 1229 publications receiving 78279 citations.


Papers
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Journal ArticleDOI
09 Apr 2015-Cell
TL;DR: It is shown that Drosophila hemocytes require a precisely orchestrated CIL response for their developmental dispersal, and the physical coupling of the flowing actin networks during CIL acts as a mechanotransducer, allowing cells to haptically sense each other and coordinate their behaviors.

101 citations

Journal ArticleDOI
TL;DR: A model for the control of heart muscle contraction in which the regulatory functions of the thin and thick filaments are coordinated by MyBP-C is lead to, providing an integrated framework for the design and development of therapeutic interventions in heart disease.
Abstract: Myosin binding protein-C (MyBP-C) is a key regulatory protein in heart muscle, and mutations in the MYBPC3 gene are frequently associated with cardiomyopathy. However, the mechanism of action of MyBP-C remains poorly understood, and both activating and inhibitory effects of MyBP-C on contractility have been reported. To clarify the function of the regulatory N-terminal domains of MyBP-C, we determined their effects on the structure of thick (myosin-containing) and thin (actin-containing) filaments in intact sarcomeres of heart muscle. We used fluorescent probes on troponin C in the thin filaments and on myosin regulatory light chain in the thick filaments to monitor structural changes associated with activation of demembranated trabeculae from rat ventricle by the C1mC2 region of rat MyBP-C. C1mC2 induced larger structural changes in thin filaments than calcium activation, and these were still present when active force was blocked with blebbistatin, showing that C1mC2 directly activates the thin filaments. In contrast, structural changes in thick filaments induced by C1mC2 were smaller than those associated with calcium activation and were abolished or reversed by blebbistatin. Low concentrations of C1mC2 did not affect resting force but increased calcium sensitivity and reduced cooperativity of force and structural changes in both thin and thick filaments. These results show that the N-terminal region of MyBP-C stabilizes the ON state of thin filaments and the OFF state of thick filaments and lead to a novel hypothesis for the physiological role of MyBP-C in the regulation of cardiac contractility.

100 citations

Journal ArticleDOI
TL;DR: A new mechanistic model for the AIS diffusion barrier is proposed using single-particle tracking time course experiments and it is shown that the mobility of lipid-anchored molecules in the A IS is enriched in specific molecules.
Abstract: The axon initial segment (AIS) is enriched in specific adaptor, cytoskeletal, and transmembrane molecules. During AIS establishment, a membrane diffusion barrier is formed between the axonal and somatodendritic domains. Recently, an axonal periodic pattern of actin, spectrin, and ankyrin forming 190-nm-spaced, ring-like structures has been discovered. However, whether this structure is related to the diffusion barrier function is unclear. Here, we performed single-particle tracking time-course experiments on hippocampal neurons during AIS development. We analyzed the mobility of lipid-anchored molecules by high-speed single-particle tracking and correlated positions of membrane molecules with the nanoscopic organization of the AIS cytoskeleton. We observe a strong reduction in mobility early in AIS development. Membrane protein motion in the AIS plasma membrane is confined to a repetitive pattern of ∼190-nm-spaced segments along the AIS axis as early as day in vitro 4, and this pattern alternates with actin rings. Mathematical modeling shows that diffusion barriers between the segments significantly reduce lateral diffusion along the axon.

100 citations

Journal ArticleDOI
TL;DR: Interference with p38α recognition by TAB1 abolishes its cardiac toxicity and could potentially circumvent the drawbacks of clinical pharmacological inhibitors of p38 catalytic activity.
Abstract: p38α mitogen-activated protein kinase (p38α) is activated by a variety of mechanisms, including autophosphorylation initiated by TGFβ-activated kinase 1 binding protein 1 (TAB1) during myocardial ischemia and other stresses. Chemical-genetic approaches and coexpression in mammalian, bacterial and cell-free systems revealed that mouse p38α autophosphorylation occurs in cis by direct interaction with TAB1(371-416). In isolated rat cardiac myocytes and perfused mouse hearts, TAT-TAB1(371-416) rapidly activates p38 and profoundly perturbs function. Crystal structures and characterization in solution revealed a bipartite docking site for TAB1 in the p38α C-terminal kinase lobe. TAB1 binding stabilizes active p38α and induces rearrangements within the activation segment by helical extension of the Thr-Gly-Tyr motif, allowing autophosphorylation in cis. Interference with p38α recognition by TAB1 abolishes its cardiac toxicity. Such intervention could potentially circumvent the drawbacks of clinical pharmacological inhibitors of p38 catalytic activity.

100 citations


Authors

Showing all 576 results

NameH-indexPapersCitations
Janet M. Thornton130539105144
Graham Dunn10148437152
Anne J. Ridley9625647563
Luigi Cavallo7954625262
Erik Sahai6914324753
Christopher Corrigan6927722451
Mathias Gautel6915916377
Hannah J. Gould6020711436
Enrico Girardi5936812712
Paul Brown5925113251
John G. Parnavelas5816411046
Heinz Jungbluth5721113707
Gareth E. Jones551619816
Linda J. Richards5415410093
Elisabeth Ehler541328503
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Performance
Metrics
No. of papers from the Institution in previous years
YearPapers
202115
202026
201926
201848
201788
2016113