Halder Kangkan, Chowdhury Shantanu
Institute of Genomics and Integrative Biology, CSIR Mall Road, Delhi 110007, India.
Nucleic Acids Res. 2005 Aug 5;33(14):4466-74. doi: 10.1093/nar/gki750. Print 2005.
The human oncogene c-myc is regulated by G-quadruplex formation within the nuclease hypersensitive element (NHE III(I)) in the c-myc promoter, making the quadruplex a strong anti-cancer target. With respect to this, the competing equilibrium between intramolecular quadruplex folding and bimolecular duplex formation is poorly understood and very few techniques have addressed this problem. We present a method for simultaneously determining the kinetic constants for G-quadruplex folding/unfolding and hybridization in the presence of the complementary strand from a single reaction using an optical biosensor based on surface plasmon resonance (SPR). Using this technique, we demonstrate for the first time that quadruplex formation in the c-myc promoter is favored at low strand concentrations. Our results indicate favorable quadruplex folding (equilibrium folding constant K(F) of 2.09 calculated from the kinetic parameters: folding rate constant, k(f) = 1.65 x 10(-2) s(-1) and unfolding rate constant, k(u) = 7.90 x 10(-3) s(-1)) in 150 mM K+. The hybridization rate constants detected concurrently gave a bimolecular association constant, k(a) = 1.37 x 10(5) M(-1) s(-1) and dissociation constant, k(d) = 4.94 x 10(-5) s(-1). Interestingly, in the presence of Na+ we observed that G-quadruplex folding was unfavorable (K(F) = 0.54). Implication of our results on the c-myc transcription activation model is discussed in light of aberrant c-myc expression observed on destabilization of the G-quadruplex.
人类癌基因c-myc受c-myc启动子核酸酶超敏元件(NHE III(I))内G-四链体形成的调控,使得该四链体成为一个强大的抗癌靶点。就此而言,分子内四链体折叠与双分子双链形成之间的竞争平衡尚不清楚,且很少有技术能解决这一问题。我们提出了一种基于表面等离子体共振(SPR)的光学生物传感器方法,可从单个反应中同时测定在互补链存在下G-四链体折叠/解折叠及杂交的动力学常数。利用该技术,我们首次证明在低链浓度下,c-myc启动子中四链体的形成更受青睐。我们的结果表明,在150 mM K+中,四链体折叠良好(根据动力学参数计算的平衡折叠常数K(F)为2.09:折叠速率常数k(f) = 1.65×10(-2) s(-1),解折叠速率常数k(u) = 7.90×10(-3) s(-1))。同时检测到的杂交速率常数给出双分子缔合常数k(a) = 1.37×10(5) M(-1) s(-1)和解离常数k(d) = 4.94×10(-5) s(-1)。有趣的是,在Na+存在的情况下,我们观察到G-四链体折叠不利(K(F) = 0.54)。鉴于在G-四链体不稳定时观察到的c-myc异常表达,我们讨论了这些结果对c-myc转录激活模型的影响。