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Biology subjects

Cowburn, D.

Publications and source records attributed to Cowburn, D..

3 recordsLinked to original sources

Characterizing interactions in the nuclear pore complex transporter using novel site-specific deuteration and SANS

We describe an unprecedented SANS/solvent matched experiment with the aim of providing a meso-scale dynamic structural description of fuzzy complexes such as those formed by nuclear transport factors as they ferry cargo across the nuclear pore complex, whose description is normally limited by the large number of states and rapid time scales of interconversion. These contain repeat short linear interaction domains which are common features of many intrinsically disordered functional proteins - e.g., transcriptional regulators, and RNA-interaction domains associated with liquid-liquid phase separated non-membranous organelles. The novel approach uses site-specific deuteration, SANS, and model fitting to provide changes to average spatial distributions between interacting domains of FG Nups upon binding to the nuclear transport factor NTF2. The results support the fully disordered nature of phenylalanyl-glycyl repeats within FG Nups in their interactions with the nuclear transport factor in vitro, as well as the absence of significant inter-aromatic contacts, or of interchain linkage in complexes.

biophysics↗

Integrative spatiotemporal map of nucleocytoplasmic transport

Nuclear Pore Complexes (NPCs) enable rapid, selective, and robust nucleocytoplasmic transport. To explain how transport emerges from the system components and their interactions, we used experimental data and theoretical information to construct an integrative Brownian dynamics model of transport through an NPC, coupled to a kinetic model of transport in the cell. The model recapitulates key aspects of transport for a wide range of molecular cargos, including pre-ribosomes and viral capsids. It quantifies how flexible phenylalanine-glycine (FG) repeat proteins raise an entropy barrier to passive diffusion and how this barrier is selectively lowered in facilitated diffusion by the many transient interactions of nuclear transport receptors with the FG repeats. Selective transport is enhanced by "fuzzy" multivalent interactions, redundant FG repeats, coupling to the energy-dependent RanGTP concentration gradient, and exponential dependence of transport kinetics on the transport barrier. Our model will facilitate rational modulation of the NPC and its artificial mimics.

cell biology↗

Glutamylation of Npm2 and Nap1 acidic disordered regions increases DNA charge mimicry to enhance chaperone efficiency

Histone chaperones-structurally diverse, non-catalytic proteins enriched with acidic intrinsically disordered regions (IDRs)-protect histones from spurious nucleic acid interactions and guide their deposition into and out of nucleosomes. Despite their conservation and ubiquity, the function of the chaperone acidic IDRs remains unclear. Here, we show that the Xenopus laevis Npm2 and Nap1 acidic IDRs are substrates for TTLL4 (Tubulin Tyrosine Ligase Like 4)-catalyzed post-translational glutamate-glutamylation. We demonstrate that, to bind, stabilize, and deposit histones into nucleosomes, chaperone acidic IDRs function as DNA mimetics. Our biochemical, computational, and biophysical studies reveal that glutamylation of these chaperone polyelectrolyte acidic stretches functions to enhance DNA electrostatic mimicry, promoting the binding and stabilization of H2A/H2B heterodimers and facilitating nucleosome assembly. This discovery provides insights into both the previously unclear function of the acidic IDRs and the regulatory role of post-translational modifications in chromatin dynamics.

biochemistry↗