Protein dynamics is essential for various biological processes, influencing functions such as enzyme activity, molecular recognition, and signal transduction. However, traditional protein engineering methods often focus on static structures, lacking tools to precisely manipulate dynamic behaviors. Here, we developed Mutational Energy Landscape Trap (MELT), a novel method designed to control protein dynamics by combining Normal Mode Analysis (NMA) and mutagenesis. MELT works by displacing protein structures along low-frequency normal modes and introducing mutations to either lock proteins in these conformations or increase dynamics along the chosen normal modes. We tested MELT using hen-egg lysozyme as a model system. The method was validated by monitoring relevant collective coordinates during molecular dynamics simulations and evaluation of the collective movements of each construct. Our experiments showed that MELT was able to consistently create new protein sequences with the desired dynamical behavior in simulations. It demonstrates its potential for applications in the field of protein engineering, being an unprecedented way of manipulating protein features.
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http://dx.doi.org/10.1021/acs.jcim.4c01928 | DOI Listing |
Background: Accumulating evidence highlights impairment of autophagy as a key pathological feature of neurodegenerative diseases including Alzheimer's disease (AD). Autophagy is a highly dynamic, lysosome-based degradation process that promotes the clearance of degenerative factors to maintain cellular functions, preserve metabolic integrity, and ensure survival. Impaired autophagic function leads to the abnormal accumulation of autophagic vesicles (i.
View Article and Find Full Text PDFBackground: The increased incidence of Alzheimer's disease (AD) rate represent an unmet medical need and thus critical for the development of novel molecular therapeutics. Recent work focusing on patients with apoE4 alleles has highlighted the association of brain cholesterol dysregulation with elevated pathological burden and neurodegeneration. These studies have highlighted the importance of the nuclear receptor Liver X receptor (LXR) for developing AD therapies.
View Article and Find Full Text PDFBackground: Neurological disorders are at epidemic levels in the world today. Various proteins are being targeted for the development of novel molecular therapeutics; however, no small-molecule inhibitors have been discovered. Recent studies suggest that there are few molecules in clinical trials for various secretase (α, β, and γ), caspase, and calpain inhibitors.
View Article and Find Full Text PDFAlzheimers Dement
December 2024
Good T Cells, Seoul, Mapo-gu, Korea, Republic of (South); YONSEI University, Seoul, Seodaemun-gu, Korea, Republic of (South).
Background: Neurodegenerative diseases, including Alzheimer's disease (AD), have been long thought to be independent of the peripheral immune system, but their pathogenesis status is functionally influenced by various T cell subsets in the periphery. Especially Treg cells are emerging as an important dynamic population in the brain, but the detailed immunological molecular and cellular processes are poorly characterized METHOD: We reported that the cell surface protein Lrig1 is enriched in Treg cells and is an essential regulator of the functions of Treg cells in vitro and in vivo. To evaluate the functional importance of Treg cells in AD pathogenesis, the modulating mAb specific to Lrig1 (GTC 310-01) via intravenous injection route was administered into 5xFAD or 6xTg mice, the genetic mouse model of AD, and the various AD symptoms were investigated.
View Article and Find Full Text PDFJ Chem Inf Model
January 2025
Molecular Simulations and Design Group, Max Planck Institute for Dynamics of Complex Technical Systems, Sandtorstrasse 1, 39106 Magdeburg, Germany.
Cezanne-2 (Cez2) is a deubiquitinylating (DUB) enzyme involved in the regulation of ubiquitin-driven cellular signaling and selectively targets Lys11-linked polyubiquitin chains. As a representative member of the ovarian tumor (OTU) subfamily DUBs, it performs cysteine proteolytic isopeptide bond cleavage; however, its exact catalytic mechanism is not yet resolved. In this work, we used different computational approaches to get molecular insights into the Cezanne-2 catalytic mechanism.
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