A. K. Mahakud, A. S. Modak, S. Singh, V. Ananthanarayana, H. Chidamabaram, S. Ghatak, S. Chinnathambi, M. Saleem
Aggregation of tau into fibrillar assemblies and neurofibrillary tangles is a defining feature of tauopathies. However, the role of the membrane-rich neuronal environment on the assembly and mechanics of full-length tau remains unclear. Here, we examined how neuronal lipid membranes affect the assembly and membrane interaction of full-length human tau (hTau40). Lipid composition redirected hTau40 assembly, with total brain extract and brain phosphatidylcholine membrane producing shorter, more flexible fibrils, whereas brain phosphatidylserine membrane favoured a more heterogeneous and relatively rigid fibrillar population. Tau-membrane interaction depended strongly on the assembly state of tau. At the same protein concentration, preformed oligomers accumulated on membranes much more rapidly than monomeric tau, indicating that oligomer formation increases membrane recruitment. However, strong membrane binding did not directly predict the extent of membrane perturbation. Pronounced changes in lipid organisation were observed when tau was undergoing continued higher-order assembly at the membrane. Thus, the ability of tau to bind a membrane and its ability to reorganise that membrane appear to be related, but distinct, features of tau-membrane interaction. In cells, internalised hTau40 formed stable, low-mobility assemblies associated with the endolysosomal compartment and changes in its physical properties. These assemblies could also be transferred between cells in a membrane-derived vesicle model. Together, our results show that local membrane composition shapes tau assembly and mechanics, while the state of tau assembly influences how it binds to and remodels membranes. Key words: Amyloid, Tauopathy, Tau protein (Tau), Lipid Vesicle, Membrane Biophysics