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Updated: Jan 11, 2026

Utilizing Time-Resolved Protein-Induced Fluorescence Enhancement to Identify Stable Local Conformations One α-Synuclein Monomer at a Time
Published on: May 30, 2021
Mapping Conformational and Kinetic Landscapes of 14-3-3σ/α-Synuclein Assembly via Variational Autoencoders and Markov
Gourav Chakraborty1, Niladri Patra1
1Department of Chemistry and Chemical Biology, Indian Institute of Technology (ISM) Dhanbad, Dhanbad-826004, India.
Abstract:
The interaction between the molecular chaperone 14-3-3σ and the intrinsically disordered protein α-synuclein is implicated in the pathogenesis of Parkinson's disease, yet its dynamic mechanism remains poorly understood at an atomistic level. The inherent flexibility and rugged energy landscape of this complex pose significant challenges to conventional molecular dynamics simulations. Here, we employ an advanced adaptive sampling framework that integrates variational autoencoders (VAEs) and Markov state models (MSMs) to overcome these limitations and obtain comprehensive atomistic insight into the 14-3-3σ/α-synuclein assembly. Our VAE-driven approach iteratively learns a low-dimensional latent space of the system's dynamics, guiding simulations to efficiently explore and sample novel conformations. This strategy successfully captured over 90% of the conformational variance observed in a 17 μs reference trajectory using around 3 μs of simulation time. An MSM constructed from approximately 20 μs of combined simulation data revealed three key metastable states: a highly stable bound complex, a structurally distinct intermediate, and a disordered, largely unbound ensemble. The resulting kinetic model quantitatively characterized the transition pathways, identifying the final bound state as a deep kinetic trap with a dissociation time scale of over 100 μs, confirming its high stability. Furthermore, we elucidated the crucial role of the intermediate state as a primary steppingstone in the dissociation pathway. This work not only provides valuable atomistic insight into a key interaction relevant to neurodegeneration but also establishes the VAE-MSM pipeline as a powerful tool for dissecting the complex mechanisms of disordered protein-protein interactions.
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