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Biology subjects

Frech, M.

Publications and source records attributed to Frech, M..

2 recordsLinked to original sources

Visualizing the Transiently Populated Closed-State of Human HSP90 ATP Binding Domain

HSP90 are abundant molecular chaperones, assisting the folding of several hundred client proteins, including substrates involved in tumor growth or neurodegenerative diseases. A complex set of large ATP-driven structural changes occurs during HSP90 functional cycle. However, the existence of such structural rearrangements in apo HSP90 has remained unclear. Here, we identified a metastable excited state in the isolated HSP90 ATP binding domain. We used solution NMR and mutagenesis to characterize structures of both ground and excited states. We demonstrated that in solution the HSP90 ATP binding domain transiently samples a functionally relevant ATP-lid closed state, distant by more than 30 [A] from the ground state. NMR relaxation and molecular dynamics were combined to characterize the energy landscape corresponding to the transition between these interconverting states. The precise description of the dynamics and structures sampled by human HSP90 ATP binding domain is a paramount piece of information for the future design of new therapeutic ligands.

biophysics↗

Alcohol-sourced acetate reduces T cell filamentous actin branching and migration

Alcohol is among the most widely consumed dietary substances. Excessive alcohol consumption damages the liver, heart and brain. Alcohol also has strong immunoregulatory properties. Here we report how alcohol impairs T cell function via acetylation of cortactin, a protein that binds filamentous actin and facilitates branching. Upon alcohol consumption, acetate, the metabolite of alcohol, accumulates in lymphoid organs. T cells exposed to acetate, exhibit increased acetylation of cortactin. Acetylation of cortactin inhibits filamentous actin binding and hence reduces T cell migration, immune synapse formation and activation. While mutated, acetylation-resistant cortactin rescued the acetate-induced inhibition of T cell migration, primary mouse cortactin knock-out T cells exhibited impaired migration. Furthermore, acetate-induced cytoskeletal changes effectively inhibited activation, proliferation, and immune synapse formation in T cells in vitro and in vivo in an influenza infection model in mice. Together these findings reveal cortactin as a possible target for mitigation of T cell driven autoimmune diseases.

immunology↗