Telkov M V, Demina G R, Voloshin S A, Salina E G, Dudik T V, Stekhanova T N, Mukamolova G V, Kazaryan K A, Goncharenko A V, Young M, Kaprelyants A S
Bach Institute of Biochemistry, Russian Academy of Sciences, 119071 Moscow, Russia.
Biochemistry (Mosc). 2006 Apr;71(4):414-22. doi: 10.1134/s0006297906040092.
The secreted Micrococcus luteus protein, Rpf, is required for successful resuscitation of dormant "non-culturable" M. luteus cells and for growth stimulation in poor media. The biochemical mechanism of Rpf action remained unknown. Theoretical predictions of Rpf domain architecture and organization, together with a recent NMR analysis of the protein structure, indicate that the conserved Rpf domain has a lysozyme-like fold. In the present study, we found that both the secreted native protein and the recombinant protein lyse crude preparations of M. luteus cell walls. They also hydrolyze 4-methylumbelliferyl-beta-D-N,N',N''-triacetylchitotrioside, a synthetic substrate for peptidoglycan muramidases, with optimum activity at pH 6. The Rpf protein also has weak proteolytic activity against N-CBZ-Gly-Gly-Arg-beta-naphthylamide, a substrate for trypsin-like enzymes. Rpf activity towards 4-methylumbelliferyl-beta-D-N,N',N''-triacetylchitotrioside was reduced when the glutamate residue at position 54, invariant for all Rpf family proteins and presumably involved in catalysis, was altered. The same amino acid substitution resulted in impaired resuscitation activity of Rpf. The data indicate that Rpf is a peptidoglycan-hydrolyzing enzyme, and strongly suggest that this specific activity is responsible for its growth promotion and resuscitation activity. A possible mechanism of Rpf-mediated resuscitation is discussed.
分泌型藤黄微球菌蛋白Rpf是使休眠的“不可培养”藤黄微球菌细胞成功复苏以及在贫瘠培养基中促进生长所必需的。Rpf作用的生化机制尚不清楚。对Rpf结构域结构和组织的理论预测,以及最近对该蛋白质结构的核磁共振分析表明,保守的Rpf结构域具有类似溶菌酶的折叠结构。在本研究中,我们发现分泌的天然蛋白和重组蛋白均可裂解藤黄微球菌细胞壁的粗制品。它们还能水解4-甲基伞形酮基-β-D-N,N',N''-三乙酰壳三糖,这是一种肽聚糖胞壁酰酶的合成底物,在pH 6时具有最佳活性。Rpf蛋白对N-CBZ-甘氨酰-甘氨酰-精氨酸-β-萘酰胺(一种类胰蛋白酶的底物)也具有微弱的蛋白水解活性。当54位谷氨酸残基(所有Rpf家族蛋白均不变,可能参与催化作用)发生改变时,Rpf对4-甲基伞形酮基-β-D-N,N',N''-三乙酰壳三糖的活性降低。相同的氨基酸取代导致Rpf的复苏活性受损。数据表明Rpf是一种肽聚糖水解酶,并强烈表明这种特定活性是其促进生长和复苏活性的原因。本文讨论了Rpf介导的复苏的可能机制。