Engineering Microsomal Cytochrome P450 2C5 to Be a Soluble, Monomeric Enzyme
Конструирование микросомального цитохрома P450 2C5 в растворимый мономерный фермент
2000-01-01
SCID: 54.1/v3m6pgp2
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Cytochrome P450 2C5Membrane interaction domainPhospholipid-dependent catalysisProgesterone 21-hydroxylationSoluble monomeric enzyme
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Abstract (AI)
Deletion of the N-terminal membrane-spanning domain from microsomal P450s 2C5 and 2C3 generates the enzymes, 2C5dH and 2C3dH, that exhibit a salt-dependent association with membranes indicating that they retain a monofacial membrane interaction domain. The two proteins are tetramers and dimers, respectively, in high salt buffers, and only 2C5dH requires phospholipids to reconstitute fully the catalytic activity of the enzyme. Amino acid residues derived from P450 2C3dH between residues 201 and 210 were substituted for the corresponding residues in P450 2C5 to identify those that would diminish the membrane interaction, the phospholipid dependence of catalysis, and aggregation of 2C5dH. Each of four substitutions, N202H, I207L, S209G, and S210T, diminished the aggregation of P450 2C5dH and produced a monomeric enzyme. The N202H and I207L mutations also diminished the stimulation of catalytic activity by phospholipid and reduced the binding of P450 2C5dH to phospholipid vesicles. The modified enzymes exhibit rates of progesterone 21-hydroxylation that are similar to that of P450 2C5dH. These conditionally membrane-bound P450s with improved solubility in high salt buffers are suitable for crystallization and structural determination by x-ray diffraction studies.
Key Findings
1
Deleting the N-terminal transmembrane domain produces P450 2C5dH and 2C3dH, which retain salt-dependent, monofacial membrane interactions.
2
In high-salt buffers, P450 2C5dH forms tetramers whereas P450 2C3dH forms dimers; only 2C5dH requires phospholipids for full catalytic reconstitution.
3
Introducing N202H, I207L, S209G, or S210T substitutions into P450 2C5dH reduces aggregation and converts the enzyme to a monomeric form.
4
N202H and I207L additionally reduce phospholipid-stimulated activity and binding of P450 2C5dH to phospholipid vesicles.
5
The engineered enzymes retain progesterone 21-hydroxylation rates similar to unmodified 2C5dH and have improved solubility suitable for crystallization and X-ray structural studies.
Research Object
Engineered soluble variants of microsomal cytochrome P450 2C5, particularly P450 2C5dH and residue-substituted derivatives
Research Subject
The effects of residues 201–210 substitutions on membrane interaction, phospholipid dependence of catalysis, aggregation, oligomeric state, solubility, and progesterone 21-hydroxylation activity
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2000-01-01
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