6 research outputs found
Phase separation of signaling molecules promotes T cell receptor signal transduction
Author Posting. © The Author(s), 2016. This is the author's version of the work. It is posted here by permission of American Association for the Advancement of Science for personal use, not for redistribution. The definitive version was published in Science 352 (2016): 595-599, doi:10.1126/science.aad9964.Activation of various cell surface receptors triggers the reorganization of downstream signaling
molecules into micron- or submicron-sized clusters. However, the functional consequences of
such clustering has been unclear. We biochemically reconstituted a 12-component signaling
pathway on model membranes, beginning with T cell receptor (TCR) activation and ending with
actin assembly. When TCR phoshophorylation was triggered, downstream signaling proteins
spontaneously separated into liquid-like clusters that promoted signaling outputs both in vitro
and in human Jurkat T cells. Reconstituted clusters were enriched in kinases but excluded
phosphatases, and enhanced actin filament assembly by recruiting and organizing actin
regulators. These results demonstrate that protein phase separation can create a distinct physical
and biochemical compartment that facilitates signaling.This work was supported by the HCIA
program of HHMI, the NIH (R01-GM56322 to M.K.R.) and Welch Foundation (I–1544 to
M.K.R.). X.S. was supported by CRI Irvington postdoctoral fellowship. J.A.D. was supported by
NRSA F32 award 5-F32-DK101188. E.H. was supported as a fellow of the Leukemia and
Lymphoma Society. J.O. was supported by funds from Tobacco-Related Disease Research
Program of the University of California (19FT-0090).2016-10-0
Allosteric N-WASP activation by an inter-SH3 domain linker in Nck
Actin filament networks assemble on cellular membranes in response to signals that locally activate neural Wiskott–Aldrich-syndrome protein (N-WASP) and the Arp2/3 complex. An inactive conformation of N-WASP is stabilized by intramolecular contacts between the GTPase binding domain (GBD) and the C helix of the verprolin-homology, connector-helix, acidic motif (VCA) segment. Multiple SH3 domain-containing adapter proteins can bind and possibly activate N-WASP, but it remains unclear how such binding events relieve autoinhibition to unmask the VCA segment and activate the Arp2/3 complex. Here, we have used purified components to reconstitute a signaling cascade driven by membrane-localized Src homology 3 (SH3) adapters and N-WASP, resulting in the assembly of dynamic actin networks. Among six SH3 adapters tested, Nck was the most potent activator of N-WASP–driven actin assembly. We identify within Nck a previously unrecognized activation motif in a linker between the first two SH3 domains. This linker sequence, reminiscent of bacterial virulence factors, directly engages the N-WASP GBD and competes with VCA binding. Our results suggest that animals, like pathogenic bacteria, have evolved peptide motifs that allosterically activate N-WASP, leading to localized actin nucleation on cellular membranes
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Phase separation of signaling molecules promotes T cell receptor signal transduction.
Activation of various cell surface receptors triggers the reorganization of downstream signaling molecules into micrometer- or submicrometer-sized clusters. However, the functional consequences of such clustering have been unclear. We biochemically reconstituted a 12-component signaling pathway on model membranes, beginning with T cell receptor (TCR) activation and ending with actin assembly. When TCR phosphorylation was triggered, downstream signaling proteins spontaneously separated into liquid-like clusters that promoted signaling outputs both in vitro and in human Jurkat T cells. Reconstituted clusters were enriched in kinases but excluded phosphatases and enhanced actin filament assembly by recruiting and organizing actin regulators. These results demonstrate that protein phase separation can create a distinct physical and biochemical compartment that facilitates signaling
Phase separation of signaling molecules promotes T cell receptor signal transduction
Activation of various cell surface receptors triggers the reorganization of downstream signaling molecules into micron- or submicron-sized clusters. However, the functional consequences of such clustering has been unclear. We biochemically reconstituted a 12-component signaling pathway on model membranes, beginning with T cell receptor (TCR) activation and ending with actin assembly. When TCR phoshophorylation was triggered, downstream signaling proteins spontaneously separated into liquid-like clusters that promoted signaling outputs both in vitro and in human Jurkat T cells. Reconstituted clusters were enriched in kinases but excluded phosphatases, and enhanced actin filament assembly by recruiting and organizing actin regulators. These results demonstrate that protein phase separation can create a distinct physical and biochemical compartment that facilitates signaling
Formalizing Natural Languages with Nooj –2014
This volume is composed of 22 peer-reviewed contributions selected from among the 52 presentations submitted for the 2014 International NooJ Conference held at the University of Sassari, Italy.
NooJ is a linguistic development environment that allows linguists to formalize a wide range of linguistic phenomena, and then test, adapt, share and accumulate each elementary description so as to build linguistic “modules”, that is, structured libraries of linguistic resources. NooJ is also used as a corpus processor that can launch sophisticated queries over large corpora of texts, in order to produce various results, including concordances, statistical analyses, information extraction, and automatic translation.
NooJ is used in many research centers all over the world, and linguistic modules are available for more than 20 languages. NooJ is also used by a growing number of software companies to develop various Natural Language Processing applications