Expanding the space of protein geometries by computational design of de novo fold families.
basic_science · Level V
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- Record sourced from PubMed, PMID 32855341.
- Also identified by DOI 10.1126/science.abc0881 and PMC identifier 7787817.
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Abstract
Naturally occurring proteins vary the precise geometries of structural elements to create distinct shapes optimal for function. We present a computational design method, loop-helix-loop unit combinatorial sampling (LUCS), that mimics nature's ability to create families of proteins with the same overall fold but precisely tunable geometries. Through near-exhaustive sampling of loop-helix-loop elements, LUCS generates highly diverse geometries encompassing those found in nature but also surpassing known structure space. Biophysical characterization showed that 17 (38%) of 45 tested LUCS designs encompassing two different structural topologies were well folded, including 16 with designed non-native geometries. Four experimentally solved structures closely matched the designs. LUCS greatly expands the designable structure space and offers a new paradigm for designing proteins with tunable geometries that may be customizable for novel functions.
Medical subject headings
- Computer-Aided Design
- Protein Engineering
- Protein Folding
- Protein Structure, Secondary