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6C6R

Human Squalene Epoxidase (SQLE, Squalene Monooxygenase) structure with FAD

Summary for 6C6R
Entry DOI10.2210/pdb6c6r/pdb
Related6C6N 6C6P
DescriptorSqualene monooxygenase, FLAVIN-ADENINE DINUCLEOTIDE, 3-[(3-CHOLAMIDOPROPYL)DIMETHYLAMMONIO]-1-PROPANESULFONATE, ... (5 entities in total)
Functional Keywordscholesterol synthesis pathway, sqle, erg1, fad-dependent monooxygenase, complex, flavoprotein, oxidoreductase-oxidoreductase inhibitor complex, oxidoreductase/oxidoreductase inhibitor
Biological sourceHomo sapiens (Human)
Total number of polymer chains2
Total formula weight107879.02
Authors
Padyana, A.K.,Jin, L. (deposition date: 2018-01-19, release date: 2019-01-16, Last modification date: 2024-03-13)
Primary citationPadyana, A.K.,Gross, S.,Jin, L.,Cianchetta, G.,Narayanaswamy, R.,Wang, F.,Wang, R.,Fang, C.,Lv, X.,Biller, S.A.,Dang, L.,Mahoney, C.E.,Nagaraja, N.,Pirman, D.,Sui, Z.,Popovici-Muller, J.,Smolen, G.A.
Structure and inhibition mechanism of the catalytic domain of human squalene epoxidase.
Nat Commun, 10:97-97, 2019
Cited by
PubMed Abstract: Squalene epoxidase (SQLE), also known as squalene monooxygenase, catalyzes the stereospecific conversion of squalene to 2,3(S)-oxidosqualene, a key step in cholesterol biosynthesis. SQLE inhibition is targeted for the treatment of hypercholesteremia, cancer, and fungal infections. However, lack of structure-function understanding has hindered further progression of its inhibitors. We have determined the first three-dimensional high-resolution crystal structures of human SQLE catalytic domain with small molecule inhibitors (2.3 Å and 2.5 Å). Comparison with its unliganded state (3.0 Å) reveals conformational rearrangements upon inhibitor binding, thus allowing deeper interpretation of known structure-activity relationships. We use the human SQLE structure to further understand the specificity of terbinafine, an approved agent targeting fungal SQLE, and to provide the structural insights into terbinafine-resistant mutants encountered in the clinic. Collectively, these findings elucidate the structural basis for the specificity of the epoxidation reaction catalyzed by SQLE and enable further rational development of next-generation inhibitors.
PubMed: 30626872
DOI: 10.1038/s41467-018-07928-x
PDB entries with the same primary citation
Experimental method
X-RAY DIFFRACTION (3 Å)
Structure validation

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건을2025-03-05부터공개중

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