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工程化和重组肌红蛋白的催化活性、稳定性、解折叠及降解途径

Catalytic activity, stability, unfolding, and degradation pathways of engineered and reconstituted myoglobins.

作者信息

Roncone Raffaella, Monzani Enrico, Labò Sara, Sanangelantoni Anna Maria, Casella Luigi

机构信息

Dipartimento di Chimica Generale, Università di Pavia, Via Taramelli 12, 27100 Pavia, Italy.

出版信息

J Biol Inorg Chem. 2005 Jan;10(1):11-24. doi: 10.1007/s00775-004-0606-4. Epub 2004 Nov 25.

DOI:10.1007/s00775-004-0606-4
PMID:15565498
Abstract

The structural and functional consequences of engineering a positively charged Lys residue and replacing the natural heme with a heme-L-His derivative in the active site of sperm whale myoglobin (Mb) have been investigated. The main structural change caused by the distal T67K mutation appears to be mobilization of the propionate-7 group. Reconstitution of wild-type and T67K Mb with heme-L-His relaxes the protein fragment around the heme because it involves the loss of the interaction of one of the propionate groups which stabilize heme binding to the protein. This modification increases the accessibility of exogenous ligands or substrates to the active site. The catalytic activity of the reconstituted proteins in peroxidase-type reactions is thus significantly increased, particularly with T67K Mb. The T67K mutation slightly reduces the thermodynamic stability and the chemical stability of Mb during catalysis, but somewhat more marked effects are observed by cofactor reconstitution. Hydrogen peroxide, in fact, induces pseudo-peroxidase activity but also promotes oxidative damage of the protein. The mechanism of protein degradation involves two pathways, which depend on the evolution of radical species generated on protein residues by the Mb active species and on the reactivity of phenoxy radicals produced during turnover. Both protein oligomers and heme-protein cross-links have been detected upon inactivation.

摘要

研究了在抹香鲸肌红蛋白(Mb)活性位点将带正电荷的赖氨酸残基进行工程改造并用血红素-L-组氨酸衍生物取代天然血红素的结构和功能后果。远端T67K突变引起的主要结构变化似乎是丙酸酯-7基团的移动。用血红素-L-组氨酸对野生型和T67K Mb进行重组可使血红素周围的蛋白质片段松弛,因为这涉及到稳定血红素与蛋白质结合的一个丙酸酯基团相互作用的丧失。这种修饰增加了外源性配体或底物对活性位点的可及性。因此,重组蛋白在过氧化物酶型反应中的催化活性显著增加,特别是T67K Mb。T67K突变在催化过程中略微降低了Mb的热力学稳定性和化学稳定性,但通过辅因子重组观察到的影响更为显著。事实上,过氧化氢不仅诱导假过氧化物酶活性,还促进蛋白质的氧化损伤。蛋白质降解机制涉及两条途径,这取决于Mb活性物种在蛋白质残基上产生的自由基种类的演变以及周转过程中产生的苯氧基自由基的反应性。失活后检测到了蛋白质寡聚体和血红素-蛋白质交联物。

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