Jackson Leslie F, Qiu Ting Hu, Sunnarborg Susan W, Chang Aileen, Zhang Chunlian, Patterson Cam, Lee David C
Department of Biochemistry & Biophysics, UNC Lineberger Comprehensive Cancer Center, University of North Carolina School of Medicine, Chapel Hill, NC 27599, USA.
EMBO J. 2003 Jun 2;22(11):2704-16. doi: 10.1093/emboj/cdg264.
Heparin-binding epidermal growth factor (HB-EGF) and betacellulin (BTC) are activating ligands for EGF receptor (EGFR/ErbB1) and ErbB4. To identify their physiological functions, we disrupted mouse HB-EGF and BTC alleles by homologous recombination. Most HB-EGF(-/-) mice died before weaning, and survivors had enlarged, dysfunctional hearts and reduced lifespans. Although BTC(-/-) mice were viable and fertile and displayed no overt defects, the lifespan of double null HB-EGF(-/-)/BTC(-/-) mice was further reduced, apparently due to accelerated heart failure. HB-EGF(-/-) newborns had enlarged and malformed semilunar and atrioventricular heart valves, and hypoplastic, poorly differentiated lungs. Defective cardiac valvulogenesis was the result of abnormal mesenchymal cell proliferation during remodeling, and was associated with dramatic increases in activated Smad1/5/8. Consistent with the phenotype, HB-EGF transcripts were localized to endocardial cells lining the margins of wild-type valves. Similarly defective valvulogenesis was observed in newborn mice lacking EGFR and tumor necrosis factor-alpha converting enzyme (TACE). These results suggest that cardiac valvulogenesis is dependent on EGFR activation by TACE-derived soluble HB-EGF, and that EGFR signaling is required to regulate bone morphogenetic protein signaling in this context.
肝素结合表皮生长因子(HB-EGF)和β细胞素(BTC)是表皮生长因子受体(EGFR/ErbB1)和ErbB4的激活配体。为了确定它们的生理功能,我们通过同源重组破坏了小鼠的HB-EGF和BTC等位基因。大多数HB-EGF(-/-)小鼠在断奶前死亡,存活的小鼠心脏增大、功能失调且寿命缩短。尽管BTC(-/-)小鼠能够存活且可育,没有明显缺陷,但双敲除HB-EGF(-/-)/BTC(-/-)小鼠的寿命进一步缩短,显然是由于心力衰竭加速。HB-EGF(-/-)新生小鼠的半月瓣和房室瓣增大且畸形,肺发育不全、分化不良。心脏瓣膜发生缺陷是重塑过程中间充质细胞异常增殖的结果,并且与活化的Smad1/5/8显著增加有关。与该表型一致,HB-EGF转录本定位于野生型瓣膜边缘的内皮细胞。在缺乏EGFR和肿瘤坏死因子-α转换酶(TACE)的新生小鼠中也观察到了类似的瓣膜发生缺陷。这些结果表明,心脏瓣膜发生依赖于TACE衍生的可溶性HB-EGF对EGFR的激活,并且在这种情况下,EGFR信号传导是调节骨形态发生蛋白信号传导所必需的。