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LEITE, V. B. P.

Publications and source records attributed to LEITE, V. B. P..

2 recordsLinked to original sources

Understanding the Energy Landscape of Intrinsically Disordered Protein Ensembles

A substantial portion of various organisms proteomes comprises intrinsically dis-ordered proteins (IDPs) that lack a defined three-dimensional structure. These IDPs exhibit a diverse array of conformations, displaying remarkable spatio-temporal het-erogeneity and exceptional conformational flexibility. Characterizing the structure or structural ensemble of IDPs presents significant conceptual and methodological challenges owing to the absence of a well-defined native structure. While databases such as the Protein Ensemble Database (PED) provide IDP ensembles obtained through a combination of experimental data and molecular modeling, the absence of reaction coordinates poses challenges in comprehensively understanding pertinent aspects of the system. In this study, we leverage the Energy Landscape Visualization Method (JCTC, 6482, 2019) to scrutinize four IDP ensembles sourced from PED. ELViM, a methodology that circumvents the need for a priori reaction coordinates, aids in analyzing the ensembles. The specific IDP ensembles investigated are as follows: two fragments of Nucleoporin (NUL: 884-993 and NUS: 1313-1390), Yeast Sic 1 N-terminal (1-90), and the N-terminal SH3 domain of Drk (1-59). Utilizing ELViM enables comprehensive validation of ensembles, facilitating the detection of potential inconsistencies in the sampling process. Additionally, it allows for identifying and characterizing the most prevalent conformations within an ensemble. Moreover, ELViM facilitates the comparative analysis of ensembles obtained under diverse conditions, thereby providing a powerful tool for investigating the functional mechanisms of IDPs.

biophysics↗

Examining the Ensembles of Amyloid-β Monomer Variants and their Propensities to Form Fibers Using an Energy Landscape Visualization Method

The amyloid-{beta} (A{beta}) monomer, an intrinsically disordered peptide, is produced by the cleavage of the amyloid precursor protein, leading to A{beta}40 and A{beta}42 as major products. These two isoforms generate pathological aggregates, whose accumulation correlates with Alzheimers disease (AD). Experiments have shown that even though the natural abundance of A{beta}42 is smaller than that for A{beta}40, the A{beta}42 is more aggregation-prone compared to A{beta}40. Moreover, several single-point mutations are associated with early-onset forms of AD. This work analyzes coarse-grained AWSEM simulations of normal A{beta}40 and A{beta}42 monomers, along with six single-point mutations associated with early on set disease. We analyzed the simulations using the Energy Landscape Visualization Method (ELViM), a reaction coordinate-free approach suited to explore the frustrated energy landscapes of intrinsically disordered proteins. ELViM is shown to distinguish the monomer ensembles of variants that rapidly form fibers from those that do not form fibers as readily. It also delineates the amino-acid contacts characterizing each ensemble. The results shed light on the potential of ELViM to probe intrinsically disordered proteins.

biophysics↗