Schlaeger Thorsten M, Schuh Anna, Flitter Simon, Fisher Andreas, Mikkola Hanna, Orkin Stuart H, Vyas Paresh, Porcher Catherine
Department of Hematology/Oncology, Children's Hospital and Dana Farber Cancer Institute, Howard Hughes Medical Institute, Harvard Medical School, Boston, MA, USA.
Mol Cell Biol. 2004 Sep;24(17):7491-502. doi: 10.1128/MCB.24.17.7491-7502.2004.
The helix-loop-helix (HLH) domain is employed by many transcription factors that control cell fate choice in multiple developmental settings. Previously, we demonstrated that the HLH domain of the class II basic HLH (bHLH) protein SCL/Tal-1 is critical for hematopoietic specification. We have now identified residues in this domain that are essential for restoring hematopoietic development to SCL-/- embryonic stem cells and sufficient to convert a muscle-specific HLH domain to one able to rescue hematopoiesis. Most of these critical residues are distributed in the loop of SCL, with one in helix 2. This is in contrast to the case for MyoD, the prototype of class II bHLH proteins, where the loop seems to serve mainly as a linker between the two helices. Among the identified residues, some promote heterodimerization with the bHLH partners of SCL (E12/E47), while others, unimportant for this property, are still crucial for the biological function of SCL. Importantly, the residue in helix 2 specifically promotes interaction with a known partner of SCL, the LIM-only protein LMO2, a finding that strengthens genetic evidence that these proteins interact. Our data highlight the functional complexity of bHLH proteins, provide mechanistic insight into SCL function, and strongly support the existence of an active SCL/LMO2-containing multiprotein complex in early hematopoietic cells.
螺旋-环-螺旋(HLH)结构域被许多转录因子所采用,这些转录因子在多种发育环境中控制细胞命运的选择。此前,我们证明了II类碱性HLH(bHLH)蛋白SCL/Tal-1的HLH结构域对造血细胞特化至关重要。我们现在已经确定了该结构域中的一些残基,这些残基对于恢复SCL-/-胚胎干细胞的造血发育是必不可少的,并且足以将肌肉特异性HLH结构域转化为能够挽救造血功能的结构域。这些关键残基大多分布在SCL的环中,其中一个在螺旋2中。这与II类bHLH蛋白的原型MyoD的情况形成对比,在MyoD中,环似乎主要作为两个螺旋之间的连接物。在已确定的残基中,一些促进与SCL的bHLH伙伴(E12/E47)形成异二聚体,而其他对该特性不重要的残基,对SCL的生物学功能仍然至关重要。重要的是,螺旋2中的残基特异性地促进与SCL的已知伙伴、仅含LIM结构域的蛋白LMO2的相互作用,这一发现强化了这些蛋白相互作用的遗传学证据。我们的数据突出了bHLH蛋白的功能复杂性,提供了对SCL功能的机制性见解,并有力地支持了早期造血细胞中存在一种活跃的含SCL/LMO2的多蛋白复合物。