4.0 Article

Exploring the folding energy landscapes of heme proteins using a hybrid AWSEM-heme model

期刊

JOURNAL OF BIOLOGICAL PHYSICS
卷 48, 期 1, 页码 37-53

出版社

SPRINGER
DOI: 10.1007/s10867-021-09596-3

关键词

Protein folding; Heme; Forcefield; Prediction; Nucleation mechanism

资金

  1. Center for Theoretical Biological Physics - National Science Foundation (NSF) [PHY-2019745]
  2. D. R. Bullard Welch Chair at Rice University [C-0016]
  3. Ministry of Science and Technology (MOST), Taiwan (R.O.C.) [108-2113-M-032-003-MY2]

向作者/读者索取更多资源

This study computationally explores the role of heme in protein folding and structure, using a hybrid model and carefully designed force fields. The results show that different types of hemes can improve protein structure predictions and stabilize the folded state.
Heme is an active center in many proteins. Here we explore computationally the role of heme in protein folding and protein structure. We model heme proteins using a hybrid model employing the AWSEM Hamiltonian, a coarse-grained forcefield for the protein chain along with AMBER, an all-atom forcefield for the heme. We carefully designed transferable force fields that model the interactions between the protein and the heme. The types of protein-ligand interactions in the hybrid model include thioester covalent bonds, coordinated covalent bonds, hydrogen bonds, and electrostatics. We explore the influence of different types of hemes (heme b and heme c) on folding and structure prediction. Including both types of heme improves the quality of protein structure predictions. The free energy landscape shows that both types of heme can act as nucleation sites for protein folding and stabilize the protein folded state. In binding the heme, coordinated covalent bonds and thioester covalent bonds for heme c drive the heme toward the native pocket. The electrostatics also facilitates the search for the binding site.

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