Yu Dong, Watanabe Hiroshi, Shibuya Hitoshi, Miura Masahiko
Molecular Diagnosis and Therapeutics, Department of Oral Restitution, Graduate School, Tokyo Medical and Dental University, 1-5-45 Yushima, Bunkyo-ku, Tokyo 113-8549, Japan.
J Biol Chem. 2003 Feb 28;278(9):6702-9. doi: 10.1074/jbc.M209809200. Epub 2002 Dec 18.
The insulin-like growth factor I receptor (IGF-IR) has the ability to confer clonogenic radioresistance following ionizing irradiation. We attempted to determine the downstream pathways involved in IGF-IR-mediated radioresistance and used mouse embryo fibroblasts deficient in endogenous IGF-IR (R-) as recipients for a number of mutant IGF-IRs. Mutational analysis revealed that the tyrosine at residue 950 (Tyr-950) of IGF-IR, as well as the C-terminal domain, are required for radioresistance and that both domains must be mutated to abrogate the phenotype. Furthermore, the contribution of downstream pathways was analyzed by combining the use of wild-type or Tyr-950 and C-terminal mutants with specific inhibitors of phosphatidylinositol 3'-kinase (PI3-K) or mitogen-activated protein extracellular signal-regulated kinase (ERK) kinase (MEK). Radioresistance could be induced by IGF-IR as long as the ability of the receptor to stimulate the MEK/ERK pathway was retained. This was confirmed by the expression of constitutively active MEK in R- cells. The ability to stimulate the PI3-K pathway alone was not sufficient, but PI3-K activation coupled with MEK/ERK pathway-independent signals from the C terminus was able to induce radioresistance. Taken together, these results indicate that the IGF-IR-mediated radioresistant signaling mechanism progresses through redundant downstream pathways.
胰岛素样生长因子I受体(IGF-IR)在电离辐射后具有赋予克隆性放射抗性的能力。我们试图确定参与IGF-IR介导的放射抗性的下游途径,并使用缺乏内源性IGF-IR(R-)的小鼠胚胎成纤维细胞作为多种突变型IGF-IR的受体。突变分析表明,IGF-IR第950位残基的酪氨酸(Tyr-950)以及C末端结构域是放射抗性所必需的,并且两个结构域都必须发生突变才能消除该表型。此外,通过将野生型或Tyr-950和C末端突变体与磷脂酰肌醇3'-激酶(PI3-K)或丝裂原活化蛋白细胞外信号调节激酶(ERK)激酶(MEK)的特异性抑制剂联合使用,分析了下游途径的作用。只要受体刺激MEK/ERK途径的能力得以保留,IGF-IR就能诱导放射抗性。这通过R-细胞中组成型活性MEK的表达得到证实。单独刺激PI3-K途径是不够的,但PI3-K激活与来自C末端的MEK/ERK途径非依赖性信号相结合能够诱导放射抗性。综上所述,这些结果表明IGF-IR介导的放射抗性信号传导机制通过冗余的下游途径进行。