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Trapped Ion Quantum Computing
Quantum Simulation
Quantum Chemistry
A silicon qubit platform for in situ single molecule structure determination
arXiv
Authors: Viktor S. Perunicic, Muhammad Usman, Charles D. Hill, Lloyd C. L. Hollenberg
Year
2021
Paper ID
40910
Status
Preprint
Abstract Read
~2 min
Abstract Words
152
Citations
N/A
Abstract
Imaging individual conformational instances of generic, inhomogeneous, transient or intrinsically disordered protein systems at the single molecule level in situ is one of the notable challenges in structural biology. Present techniques access averaged structural information by measuring over large ensembles of proteins in nearly uniform conformational states in synthetic environments. This poses significant implications for diagnostics and drug design which require a detailed understanding of subtle conformational changes, small molecule interactions and ligand dynamics. Here we tackle the problem by designing a single molecule imaging platform technology embracing the advantages silicon-based spin qubits offer in terms of quantum coherence and established fabrication pathways. We demonstrate through detailed simulation, that this platform enables scalable atomic-level structure-determination of individual molecular systems in native environments. The approach is particularly well suited to the high-value lipid-membrane context, and as such its experimental implementation could have far-reaching consequences for the understanding of membrane biology and drug development.
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- This paper contributes to the Quantum Simulation research area in the Quantum Articles archive.
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- Imaging individual conformational instances of generic, inhomogeneous, transient or intrinsically disordered protein systems at the single molecule level in situ is one of the...
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