Quantum-Enabled Protein Folding of Disordered Regions in Ubiquitin C via Error-Mitigated VQE Benchmarked on Tensor Network Simulator and Aria 1
Akshay Uttarkar, Vidya Niranjan · IEEE Transactions on Molecular Biological and Multi-Scale Communications · 2025
Protein folding is a fundamental process crucial for the functionality of biological molecules. Despite its significance, predicting protein structures accurately remains a challenging task due to the complex nature of folding pathways and interactions. In this study, we explore the application of quantum computing, specifically error mitigated VQE, in investigating the folding of disordered regions in Ubiquitin C. By integrating advanced simulation techniques and quantum algorithms, we aim to unravel the intricate dynamics of protein folding at a molecular level. We employ a combination of molecular dynamics simulations and quantum VQE algorithms to analyze the folding kinetics and stability of C-terminal region of Ubiquitin C. Utilizing state-of-the-art quantum simulators and computational tools, we track the evolution of protein conformations and assess ground state energy values to elucidate the folding process. Our results demonstrate the effectiveness of error mitigated VQE in providing accurate ground state energy values compared to traditional methods like MD simulations with difference less than -0.91 kcal/mol. The analysis reveals insights into the structural transitions and stability of Ubiquitin C during the folding process, shedding light on key interactions and conformational changes. This study underscores the potential of quantum computing in advancing our understanding of protein folding dynamics.