Johnson Lisa A, Zhao Ying, Golden Krista, Barolo Scott
Department of Cell and Developmental Biology, University of Michigan Medical School, Ann Arbor, Michigan, USA.
Tissue Eng Part A. 2008 Sep;14(9):1549-59. doi: 10.1089/ten.tea.2008.0074.
Enhancers, or cis-regulatory elements, are the principal determinants of spatiotemporal patterning of gene expression. For reasons of clinical and research utility, it is desirable to build customized enhancers that drive novel gene expression patterns, but currently, we largely rely on "found" genomic elements. Synthetic enhancers, assembled from transcription factor binding sites taken from natural signal-regulated enhancers, generally fail to behave like their wild-type counterparts when placed in transgenic animals, suggesting that important aspects of enhancer function are still unexplored. As a step toward the creation of a truly synthetic regulatory element, we have undertaken an extensive structure-function study of an enhancer of the Drosophila decapentaplegic (dpp) gene that drives expression in the developing visceral mesoderm (VM). Although considerable past efforts have been made to dissect the dppVM enhancer, transgenic experiments presented here indicate that its activity cannot be explained by the known regulators alone. dppVM contains multiple, previously uncharacterized, regulatory sites, some of which exhibit functional redundancy. The results presented here suggest that even the best-studied enhancers must be further dissected before they can be fully understood, and before faithful synthetic elements based on them can be created. Implications for developmental genetics, mathematical modeling, and therapeutic applications are discussed.
增强子,即顺式调控元件,是基因表达时空模式的主要决定因素。出于临床和研究实用性的考虑,构建能够驱动新基因表达模式的定制增强子是很有必要的,但目前,我们很大程度上依赖于“已发现”的基因组元件。由取自天然信号调控增强子的转录因子结合位点组装而成的合成增强子,在转基因动物中通常表现得与野生型对应物不同,这表明增强子功能的重要方面仍未被探索。作为迈向创建真正合成调控元件的一步,我们对果蝇的双胸节(dpp)基因的一个增强子进行了广泛的结构-功能研究,该增强子在发育中的内脏中胚层(VM)中驱动基因表达。尽管过去已经付出了相当大的努力来剖析dppVM增强子,但此处展示的转基因实验表明,其活性不能仅由已知的调控因子来解释。dppVM包含多个先前未被表征的调控位点,其中一些表现出功能冗余。此处呈现的结果表明,即使是研究最深入的增强子,在其被完全理解以及基于它们的可靠合成元件被创建之前,也必须进一步剖析。文中还讨论了对发育遗传学、数学建模和治疗应用的影响。