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- W2088901689 abstract "Palladium(II) complexes promote hydrolysis of natural and synthetic oligopeptides with unprecedented regioselectivity; the only cleavage site is the second peptide bond upstream from a methionine or a histidine side chain, that is, the bond involving the amino group of the residue that precedes this side chain. We investigate this regioselectivity with four N-acetylated peptides as substrates: neurotransmitter methionine enkephalin (Ac-Tyr-Gly-Gly-Phe-Met) and synthetic peptides termed Met-peptide (Ac-Ala-Lys-Tyr-Gly-Gly-Met-Ala-Ala-Arg-Ala), His-peptide (Ac-Val-Lys-Gly-Gly-His-Ala-Lys-Tyr-Gly-Gly-Met(OX)-Ala-Ala-Arg-Ala), in which a Met is oxidized to sulfone, and HisMet-peptide (Ac-Val-Lys-Gly-Gly-His-Ala-Lys-Tyr-Gly-Gly-Met-Ala-Ala-Arg-Ala). While maintaining protein-like properties, these substrates are suitable for quantitative study since their coordination to Pd(II) ion can be determined (by NMR spectroscopy), and the cleavage fragments can be separated (by HPLC methods) and identified (by MALDI mass spectrometry). The only peptide bonds cleaved were the Gly3-Phe4 bond in methionine enkephalin, Gly4-Gly5 bond in Met-peptide, Gly3-Gly4 in His-peptide, and Gly3-Gly4 and Gly9-Gly10 bonds in HisMet-peptide. We explain this consistent regioselectivity of cleavage by studying the modes of Met-peptide coordination to the Pd(II) ion in [Pd(H(2)O)(4)](2+) complex. In acidic solution, the rapid attachment of the Pd(II) complex to the methionine side chain is followed by the interaction of the Pd(II) ion with the peptide backbone upstream from the anchor. In the hydrolytically active complex, Met-peptide is coordinated to Pd(II) ion as a bidentate ligand - via sulfur atom in the methionine side chain and the first peptide nitrogen upstream from this anchor - so that the Pd(II) complex approaches the scissile peptide bond. Because the increased acidity favors this hydrolytically active complex, the rate of cleavage guided by either histidine or methionine anchor increased as pH was lowered from 4.5 to 0.5. The unwanted additional cleavage of the first peptide bond upstream from the anchor is suppressed if pH is kept above 1.2. Four Pd(II) complexes cleave Met-peptide with the same regioselectivity but at somewhat different rates. Complexes in which Pd(II) ion carries labile ligands, such as [Pd(H(2)O)(4)](2+) and [Pd(NH(3))(4)](2+), are more reactive than those containing anionic ligands, such as [PdCl(4)](2)(-), or a bidentate ligand, such as cis-[Pd(en)(H(2)O)(2)](2+). When both methionine and histidine residues are present in the same substrate, as in HisMet-peptide, 1 molar equivalent of the Pd(II) complex distributes itself evenly at both anchors and provides partial cleavage, whereas 2 molar equivalents of the promoter completely cleave the second peptide bond upstream from each of the anchors. The results of this study bode well for growing use of palladium(II) reagents in biochemical and bioanalytical practice." @default.
- W2088901689 created "2016-06-24" @default.
- W2088901689 creator A5008300227 @default.
- W2088901689 creator A5075505193 @default.
- W2088901689 date "2002-04-05" @default.
- W2088901689 modified "2023-10-06" @default.
- W2088901689 title "Palladium(II) Complexes, as Synthetic Peptidases, Regioselectively Cleave the Second Peptide Bond “Upstream” from Methionine and Histidine Side Chains" @default.
- W2088901689 cites W1967769136 @default.
- W2088901689 cites W1968381941 @default.
- W2088901689 cites W1971459570 @default.
- W2088901689 cites W1972459558 @default.
- W2088901689 cites W1980034942 @default.
- W2088901689 cites W1981939025 @default.
- W2088901689 cites W1982079639 @default.
- W2088901689 cites W1982306814 @default.
- W2088901689 cites W1983199097 @default.
- W2088901689 cites W1990874228 @default.
- W2088901689 cites W1991545568 @default.
- W2088901689 cites W1993355676 @default.
- W2088901689 cites W1997517880 @default.
- W2088901689 cites W1998925110 @default.
- W2088901689 cites W2000815711 @default.
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- W2088901689 cites W2006116246 @default.
- W2088901689 cites W2007455262 @default.
- W2088901689 cites W2010051841 @default.
- W2088901689 cites W2014062179 @default.
- W2088901689 cites W2018842324 @default.
- W2088901689 cites W2021357316 @default.
- W2088901689 cites W2025057122 @default.
- W2088901689 cites W2025170706 @default.
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- W2088901689 cites W2035158526 @default.
- W2088901689 cites W2043281814 @default.
- W2088901689 cites W2052710618 @default.
- W2088901689 cites W2055056157 @default.
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- W2088901689 cites W2062479931 @default.
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- W2088901689 cites W2074820936 @default.
- W2088901689 cites W2076261878 @default.
- W2088901689 cites W2083906362 @default.
- W2088901689 cites W2091593116 @default.
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- W2088901689 cites W2094777596 @default.
- W2088901689 cites W2123951007 @default.
- W2088901689 cites W2164442310 @default.
- W2088901689 cites W2949417966 @default.
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- W2088901689 cites W3024907278 @default.
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- W2088901689 doi "https://doi.org/10.1021/ja012366x" @default.
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