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Chung, P. J.

Publications and source records attributed to Chung, P. J..

2 recordsLinked to original sources

Lipid Packing Defects are Necessary and Sufficient for Membrane Binding of alpha-Synuclein

-Synuclein (Syn), an intrinsically disordered protein implicated in Parkinsons disease, is thought to initiate aggregation by binding to cellular membranes. Previous studies suggest that anionic lipids are necessary for this binding. However, these studies largely focused on unmodified Syn, while physiological Syn is N-terminally acetylated (NTA). Our work challenges the long-standing paradigm that anionic lipids are necessary for Syn binding by demonstrating that NTA diminishes Syns reliance on anionic membrane charge, revealing that membrane packing defects (i.e., interfacial hydrophobicity) alone can drive membrane binding. Using fluorescence microscopy and circular dichroism spectroscopy, we monitored the binding of NTA-Syn to membrane vesicles with different lipid compositions. Phosphatidylcholine and phosphatidylserine concentrations were varied to control surface charge, while phospholipid tail unsaturation and methylation were varied to modulate lipid packing. We also formulated cholesterol-containing membranes that mimicked the lipid composition of synaptic vesicles. In these membranes, all- atom molecular dynamics simulations were used to visualize and quantify membrane packing defects. Our results demonstrate that membrane packing defects are necessary for NTA-Syn binding and that defect-rich membranes are sufficient for NTA-Syn binding regardless of membrane charge. These findings provide a molecular mechanism by which lipid structural properties, such as poly-unsaturation, can regulate Syn binding to physiological membranes.

biophysics↗

Complexes of tubulin oligomers and tau form an intervening network cross-bridging microtubules into bundles

The axon-initial-segment (AIS) of mature neurons contains microtubule (MT) fascicles (linear bundles) that are implicated as retrograde diffusion barriers in the retention of MT-associated protein (MAP) tau inside axons. While the role of tau in MT bundling is poorly understood, tau dysfunction and leakage outside of the axon is associated with neurodegeneration. We report on the structure of steady-state MT bundles in response to varying concentrations of divalent cations (Mg2+ or Ca2+) in dissipative reaction mixtures containing {beta}-tubulin, full-length tau, and GTP at 37{degrees}C. A concentration-time kinetic phase diagram generated by synchrotron small-angle X-ray scattering (SAXS) reveals a wide-spacing MT bundle phase (Bws), a transient intermediate MT bundle phase (Bint), and a tubulin ring phase. Remarkably, SAXS analysis combined with TEM of plastic embedded samples provides direct evidence of an intervening network (IN) of complexes of tubulin oligomers and tau ({approx}5 nm wide filaments), which stabilize MT bundles. In this model, {beta}-tubulin oligomers in the IN are crosslinked by taus MT binding repeats, which also link {beta}-tubulin oligomers to {beta}-tubulin within the MT lattice. The finding of a new role for tubulin revises current dogma where cross-bridging of MTs is attributed entirely to interactions between MAPs. The tubulin-tau complexes of the IN should enhance the barrier properties of MT fascicles in preventing tau missorting to the somatodendritic compartment as happens during neurodegeneration. Furthermore, tubulin-tau complexes in the IN or bound to isolated MTs are potential sites for enzymatic modification of tau promoting nucleation and growth of tau fibrils in tauopathies. Significance StatementA cell free model of microtubule (MT) bundles of the axon-initial-segment (known as MT fascicles) was studied in physiologically relevant buffer conditions. MT fascicles have a role in retaining neuronal protein tau, a key protein stabilizing MTs, in the axon. X-ray scattering and electron microscopy led to the discovery of complexes of tubulin oligomers and tau as building blocks of an intervening network that cross-bridge MTs into stable bundles with precisely the same linear geometry observed in-vivo in neurons. Significantly, changes to the chemical structure of tau because of abnormal interactions with cellular enzymes, would be predicted to disrupt the intervening tubulin-tau network and the MT-fascicles barrier function, promoting leakage of tau to the somatodendritic compartment and neuron degradation.

biophysics↗