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Structural characterization of a trapped folding intermediate of pyrrolidone carboxyl peptidase from a hyperthermophile

机译:嗜热菌中吡咯烷酮羧基肽酶的折叠中间体的结构表征

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The refolding of cysteine-free pyrrolidone carboxyl peptidase (PCP-0SH) from a hyperthermophile is unusually slow. PCP-0SH is trapped in the denatured (D1) state at 4 °C and pH 2.3, which is different from the highly denatured state in the presence of concentrated denaturant. In order to elucidate the mechanism of the unusually slow folding, we investigated the structure of the D1 state using NMR techniques with amino acid selectively labeled PCP-0SH. The HSQC spectrum of the D1 state showed that most of the resonances arising from the 114-208 residues are broadened, indicating that conformations of the 114-208 residues are in intermediate exchange on the microsecond to millisecond time scale. Paramagnetic relaxation enhancement data indicated the lack of long-range interactions between the 1-113 and the 114-208 segments in the D1 state. Furthermore, proline scanning mutagenesis showed that the 114-208 segment in the D1 state forms a loosely packed hydrophobic core composed of α4- and α6-helices. From these findings, we conclude that the 114-208 segment of PCP-0SH folds into a stable compact structure with non-native helix-helix association in the D1 state. Therefore, in the folding process from the D1 state to the native state, the α4- and α6-helices become separated and the central β-sheet is folded between these helices. That is, the non-native interaction between the α4- and α6-helices may be responsible for the unusually slow folding of PCP-0SH.
机译:来自超嗜热菌的无半胱氨酸吡咯烷酮羧基肽酶(PCP-0SH)的重折叠异常缓慢。 PCP-0SH在4°C和pH 2.3下处于变性(D1)状态,这与浓缩变性剂存在下的高度变性状态不同。为了阐明异常缓慢折叠的机理,我们使用具有选择性标记氨基酸的氨基酸PCP-0SH的NMR技术研究了D1状态的结构。 D1状态的HSQC光谱显示,由114-208个残基引起的大多数共振均变宽,表明114-208个残基的构象在微秒至毫秒的时间尺度上处于中间交换状态。顺磁弛豫增强数据表明,在D1状态下,1-113段和114-208段之间缺乏远程相互作用。此外,脯氨酸扫描诱变显示,处于D1状态的114-208段形成了由α4-和α6-螺旋组成的疏松堆积的疏水核。从这些发现,我们得出结论,PCP-0SH的114-208节折叠成D1状态下具有非天然螺旋-螺旋缔合的稳定紧凑结构。因此,在从D1状态到原始状态的折叠过程中,α4-和α6-螺旋分离并且中心β-折叠在这些螺旋之间折叠。也就是说,α4-和α6-螺旋之间的非天然相互作用可能是PCP-0SH异常缓慢折叠的原因。

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