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Meis family proteins are required for hindbrain development in the zebrafish.

机译:Meis家族蛋白是斑马鱼后脑发育所必需的。

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Meis homeodomain proteins function as Hox-cofactors by binding Pbx and Hox proteins to form multimeric complexes that control transcription of genes involved in development and differentiation. It is not known what role Meis proteins play in these complexes, nor is it clear which Hox functions require Meis proteins in vivo. We now show that a divergent Meis family member, Prep1, acts as a Hox co-factor in zebrafish. This suggests that all Meis family members have at least one shared function and that this function must be carried out by a conserved domain. We proceed to show that the Meinox domain, an N-terminal conserved domain shown to mediate Pbx binding, is sufficient to provide Meis activity to a Pbx/Hox complex. We find that this activity is separable from Pbx binding and resides within the M1 subdomain. This finding also presents a rational strategy for interfering with Meis activity in vivo. We accomplish this by expressing the Pbx4/Lzr N-terminus, which sequesters Meis proteins in the cytoplasm away from the nuclear transcription complexes. Sequestering Meis proteins in the cytoplasm leads to extensive loss of rhombomere (r) 3- and r4-specific gene expression, as well as defective rhombomere boundary formation in this region. These changes in gene expression correlate with impaired neuronal differentiation in r3 and r4, e.g. the loss of r3-specific nV branchiomotor neurons and r4-specific Mauthner neurons. We conclude that Meis family proteins are essential for the specification of r3 and r4 of the hindbrain.
机译:Meis同源结构域蛋白通过结合Pbx和Hox蛋白形成多聚体复合物来控制Hos辅因子,从而控制涉及发育和分化的基因的转录。尚不清楚Meis蛋白在这些复合物中起什么作用,也不清楚在体内哪些Hox功能需要Meis蛋白。现在,我们显示,一个不同的Meis家族成员Prep1,充当斑马鱼的Hox辅助因子。这表明所有Meis家族成员都具有至少一个共享功能,并且该功能必须由保守域来执行。我们继续表明,Meinox域,显示为介导Pbx结合的N端保守域,足以为Pbx / Hox复合物提供Meis活性。我们发现该活动与Pbx绑定是可分离的,并且位于M1子域内。该发现还提出了干扰体内Meis活性的合理策略。我们通过表达Pbx4 / Lzr N末端来实现此目的,该末端会隔离细胞质中的Meis蛋白,使其远离核转录复合物。在细胞质中隔离Meis蛋白会导致菱形(r)3-和r4特异性基因表达大量丧失,以及在该区域中菱形边界的缺陷形成。基因表达的这些变化与r3和r4中神经元分化的受损有关,例如r3特异性nV分支运动神经元和r4特异性Mauthner神经元的丢失。我们得出结论,Meis家族蛋白对于后脑r3和r4的规范至关重要。

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