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Biology subjects

Said, R.

Publications and source records attributed to Said, R..

3 recordsLinked to original sources

The adherens junction proteins α-catenin, vinculin and VASP cooperate to promote actin assembly

The cohesion of tissues requires that cells establish cell-cell junctions. Cells contact each other by forming Arp2/3-dependent lamellipodia before they initiate the formation of cadherin-based adherens junctions (AJs). Maturing AJs then assemble actin under force though the formation of a mechanosensitive complex comprising the actin-binding proteins -catenin, vinculin and VASP, which individually act on the nucleation, elongation and organisation of actin filaments in different ways. However, the activity of the ternary complex that these actin-regulatory proteins form has not been investigated due to the difficulty of assembling this complex in vitro in the absence of force. Here, we first designed mutants of these proteins that interact independently of force. We then studied their activity by combining actin polymerization kinetics in fluorescence spectroscopy with observation of single actin filaments in TIRF microscopy. Our results reveal how -catenin, vinculin and VASP combine their activities in a complex to inhibit Arp2/3-mediated branching, stimulate the nucleation and elongation of linear actin filaments from profilin-actin and crosslink these filaments into bundles. These findings shed light on the molecular mechanisms by which actin regulators synergistically control the transition of actin architecture and dynamics that accompanies the formation and maturation of AJs.

biochemistry↗

Talin and vinculin combine their activities to trigger actin assembly

Focal adhesions (FAs) strengthen their link with the actin cytoskeleton to resist force. Talin-vinculin association could reinforce actin anchoring to FAs by controlling actin polymerization. However, the actin polymerization activity of the talin-vinculin complex is not known because it requires the reconstitution of the mechanical and biochemical activation steps that control the association of talin and vinculin and the exposure of their actin-binding domains. By combining kinetic and binding assays with single actin filament observations in TIRF microscopy, we show that the association of talin and vinculin mutants, mimicking different degrees of activation, results in a variety of activities. In particular, mechanically stretched talin and activated vinculin combine to stimulate actin assembly synergistically through a sequential mechanism in which filaments are nucleated, capped and released to elongate. Our findings suggest a versatile mechanism for the regulation of actin assembly in FAs subjected to various combinations of biochemical and mechanical cues.

biochemistry↗

Epigenetic regulation of Neuregulin-1 tunes white adipose stem cell differentiation

Expansion of subcutaneous adipose tissue by differentiation of new adipocytes has been linked to improvements in metabolic health. However, an expandability limit has been observed wherein new adipocytes cannot be produced, the existing adipocytes become enlarged (hypertrophic) and lipids spill over into ectopic sites. Inappropriate ectopic storage of these surplus lipids in liver, muscle, and visceral depots has been linked with metabolic dysfunction. Here we show that Neuregulin-1 (NRG1) serves as a regulator of adipogenic differentiation in subcutaneous primary human stem cells. We further demonstrate that DNA methylation modulates NRG1 expression in these cells, and a 3-day exposure of stem cells to a recombinant NRG1 peptide fragment is sufficient to reprogram adipogenic cellular differentiation to higher levels. These results define a novel molecular adipogenic rheostat with potential implications for the expansion of adipose tissue in vivo.

cell biology↗