Wang Bin, Dunlap Jay C
bioRxiv. 2023 Feb 26:2023.02.25.530043. doi: 10.1101/2023.02.25.530043.
In the negative feedback loop composing the circadian clock, the core element, FREQUENCY (FRQ) binds with FRH (FRQ-interacting RNA helicase) and Casein Kinase 1 (CK1) to form the FRQ-FRH complex (FFC) which represses its own expression by interacting with and promoting phosphorylation of its transcriptional activators White Collar-1 (WC-1) and WC-2 (together forming the White Collar Complex, WCC). Physical interaction between FFC and WCC is a prerequisite for the repressive phosphorylations, and although the motif on WCC needed for this interaction is known, the reciprocal recognition motif(s) on FRQ remains poorly defined. To address this, FFC-WCC was assessed in a series of segmental-deletion mutants, confirming that multiple dispersed regions on FRQ are necessary for its interaction with WCC. Biochemical analysis shows that interaction between FFC and WCC but not within FFC or WCC can be disrupted by high salt, suggesting that electrostatic forces drive the association of the two complexes. As a basic sequence on WC-1 was previously identified as a key motif for WCC-FFC assembly, our mutagenetic analysis targeted negatively charged residues of FRQ leading to identification of three Asp/Glu clusters in FRQ that are indispensable for FFC-WCC formation. Surprisingly, in several Asp/Glu-to-Ala mutants that vastly diminish FFC-WCC interaction, the core clock still oscillates robustly with an essentially WT period, indicating that the binding strength between the positive and negative elements in the feedback loop is required for the clock but is not a determinant of the period length.
在构成生物钟的负反馈回路中,核心元件频率(FRQ)与FRQ相互作用RNA解旋酶(FRH)和酪蛋白激酶1(CK1)结合,形成FRQ - FRH复合物(FFC),该复合物通过与转录激活因子白领-1(WC-1)和WC-2(共同形成白领复合物,WCC)相互作用并促进其磷酸化来抑制自身表达。FFC与WCC之间的物理相互作用是抑制性磷酸化的先决条件,虽然已知这种相互作用所需的WCC上的基序,但FRQ上的相互识别基序仍定义不清。为了解决这个问题,对一系列片段缺失突变体中的FFC-WCC进行了评估,证实FRQ上多个分散区域对于其与WCC的相互作用是必需的。生化分析表明,高盐可破坏FFC与WCC之间的相互作用,但不会破坏FFC或WCC内部的相互作用,这表明静电力驱动了这两种复合物的结合。由于WC-1上的一个基本序列先前被确定为WCC-FFC组装的关键基序,我们的诱变分析针对FRQ的带负电荷残基,从而确定了FRQ中三个天冬氨酸/谷氨酸簇,它们对于FFC-WCC的形成是不可或缺的。令人惊讶的是,在几个极大减少FFC-WCC相互作用的天冬氨酸/谷氨酸到丙氨酸突变体中,核心生物钟仍以基本为野生型的周期强劲振荡,这表明反馈回路中正负元件之间的结合强度是生物钟所必需的,但不是周期长度的决定因素。