Sot Begoña, von Germar Fritzthof, Mäntele Werner, Valpuesta Jose María, Taneva Stefka G, Muga Arturo
Unidad de Biofísica (CSIC-UPV/EHU) and Departamento de Bioquímica y Biología Molecular, Universidad del País Vasco, 48080 Bilbao, Spain.
Protein Sci. 2005 Sep;14(9):2267-74. doi: 10.1110/ps.051469605. Epub 2005 Aug 4.
The biological activity of the double-ring chaperonin GroEL is regulated by complex allosteric interactions, which include positive intra-ring and negative inter-ring cooperativity. To further characterize inter-ring communication, the nucleotide-induced absorbance changes in the vibrational spectrum of the chaperonin GroEL, of two single-point mutants suppressing one inter-ring ionic contact (E461K and E434K) and of a single-ring version of this protein, were investigated by time-resolved infrared difference spectroscopy. Interaction of the nucleotide with the proteins was triggered by its photochemical release from a biologically inactive caged precursor [P3-1-(2-nitro) phenylethyl nucleotide]. The results indicate that (1) ATP binding to the protein induces a conformational change that affects concomitantly both intra-ring and inter-ring communication, and (2) the experimental absorbance changes are sensitive to the double-ring structure of the protein. The characterization of the single-point, inter-ring mutants demonstrates that ionic interactions at both contact sites are involved in the transmission of the allosteric signal. However, both mutations have different effects on the inter-ring interface. While that of E461K still retains ionic contacts sensitive to ATP binding, E434K shows spectroscopic features similar to those of the single-ring version of the protein, therefore suggesting that electrostatic interactions at these contact sites contribute differently to the stability of the inter-ring interface.
双环伴侣蛋白GroEL的生物活性受复杂的变构相互作用调控,其中包括正向的环内协同作用和负向的环间协同作用。为了进一步表征环间通讯,通过时间分辨红外差光谱研究了伴侣蛋白GroEL、两个抑制一个环间离子接触的单点突变体(E461K和E434K)以及该蛋白的单环形式在核苷酸诱导下振动光谱中的吸光度变化。核苷酸与蛋白质的相互作用由其从无生物活性的笼形前体[P3-1-(2-硝基)苯乙基核苷酸]光化学释放引发。结果表明:(1)ATP与蛋白质结合诱导构象变化,同时影响环内和环间通讯;(2)实验测得的吸光度变化对蛋白质的双环结构敏感。单点环间突变体的表征表明,两个接触位点的离子相互作用都参与变构信号的传递。然而,这两个突变对环间界面有不同影响。虽然E461K的突变仍保留对ATP结合敏感的离子接触,但E434K显示出与该蛋白单环形式相似的光谱特征,因此表明这些接触位点的静电相互作用对环间界面稳定性的贡献不同。