Artner Isabella, Blanchi Bruno, Raum Jeffrey C, Guo Min, Kaneko Tomomi, Cordes Sabine, Sieweke Michael, Stein Roland
Department of Molecular Physiology and Biophysics, Vanderbilt University Medical Center, 723 Light Hall, Nashville, TN 37232, USA.
Proc Natl Acad Sci U S A. 2007 Mar 6;104(10):3853-8. doi: 10.1073/pnas.0700013104. Epub 2007 Feb 22.
Pancreatic endocrine cell differentiation depends on transcription factors that also contribute in adult insulin and glucagon gene expression. Islet cell development was examined in mice lacking MafB, a transcription factor expressed in immature alpha (glucagon(+)) and beta (insulin(+)) cells and capable of activating insulin and glucagon expression in vitro. We observed that MafB(-/-) embryos had reduced numbers of insulin(+) and glucagon(+) cells throughout development, whereas the total number of endocrine cells was unchanged. Moreover, production of insulin(+) cells was delayed until embryonic day (E) 13.5 in mutant mice and coincided with the onset of MafA expression, a MafB-related activator of insulin transcription. MafA expression was only detected in the insulin(+) cell population in MafB mutants, whereas many important regulatory proteins continued to be expressed in insulin(-) beta cells. However, Pdx1, Nkx6.1, and GLUT2 were selectively lost in these insulin-deficient cells between E15.5 and E18.5. MafB appears to directly regulate transcription of these genes, because binding was observed within endogenous control region sequences. These results demonstrate that MafB plays a previously uncharacterized role by regulating transcription of key factors during development that are required for the production of mature alpha and beta cells.
胰腺内分泌细胞的分化依赖于转录因子,这些转录因子也参与成年期胰岛素和胰高血糖素基因的表达。我们在缺乏MafB的小鼠中研究了胰岛细胞的发育,MafB是一种在未成熟的α(胰高血糖素阳性)和β(胰岛素阳性)细胞中表达的转录因子,能够在体外激活胰岛素和胰高血糖素的表达。我们观察到,在整个发育过程中,MafB基因敲除(MafB(-/-))胚胎中胰岛素阳性和胰高血糖素阳性细胞数量减少,而内分泌细胞总数不变。此外,在突变小鼠中,胰岛素阳性细胞的产生延迟至胚胎第13.5天(E13.5),并与胰岛素转录的MafB相关激活因子MafA表达的开始相吻合。在MafB突变体中,仅在胰岛素阳性细胞群体中检测到MafA表达,而许多重要的调节蛋白在胰岛素阴性的β细胞中继续表达。然而,在E15.5至E18.5期间,这些胰岛素缺乏的细胞中Pdx1、Nkx6.1和GLUT2选择性缺失。MafB似乎直接调控这些基因的转录,因为在内源控制区序列中观察到了结合。这些结果表明,MafB在发育过程中通过调控成熟α和β细胞产生所需的关键因子的转录,发挥了以前未被描述的作用。