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Lempart, J.

Publications and source records attributed to Lempart, J..

2 recordsLinked to original sources

Mechanistic Insights into the Protective Roles of Polyphosphate Against Amyloid Cytotoxicity

The universally abundant polyphosphate (polyP) accelerates fibril formation of disease-related amyloids and protects against amyloid cytotoxicity. To gain insights into the mechanism(s) by which polyP exerts these effects, we focused on -synuclein, a well-studied amyloid protein, which constitutes the major component of Lewy bodies found in Parkinsons Disease. Here we demonstrate that polyP is unable to accelerate the rate-limiting step of -synuclein fibril formation but effectively nucleates fibril assembly once -synuclein oligomers are formed. Binding of polyP to -synuclein either during fibril formation or upon fibril maturation substantially alters fibril morphology, and effectively reduces the ability of -synuclein fibrils to interact with cell membranes. The effect of polyP appears to be -synuclein fibril specific, and successfully prevents the uptake of fibrils into neuronal cells. These results suggest that altering the polyP levels in the extracellular space might be a potential therapeutic strategy to prevent the spreading of the disease.

cell biology

Polyphosphate initiates tau aggregation through intra- and intermolecular scaffolding

The aggregation and deposition of tau is a hallmark of a class of neurodegenerative diseases called tauopathies. Despite intensive study, cellular and molecular factors that trigger tau aggregation are not well understood. Here we provide evidence for two mechanisms relevant to the initiation of tau aggregation in the presence of cytoplasmic polyphosphates (polyP): changes in the conformational ensemble of monomer tau and noncovalent cross-linking of multiple tau monomers. We identified conformational changes throughout full-length tau, most notably diminishment of long-range interactions between the termini coupled with compaction of the microtubule binding and proline rich regions. We found that while the proline rich and microtubule binding regions both contain polyP binding sites, the proline rich region is a requisite for compaction of the microtubule binding region upon binding. Additionally, both the magnitude of the conformational change and the aggregation of tau are dependent on the chain length of the polyP polymer. Longer polyP chains are more effective at intermolecular, noncovalent cross-linking of tau. These observations provide an understanding of the initial steps of tau aggregation through interaction with a physiologically relevant aggregation inducer.

biophysics