Singh Puja, Han Eun Hee, Endrizzi James A, O'Brien Richard M, Chi Young-In
Section of Structural Biology, Hormel Institute, University of Minnesota, Austin, MN 55912, United States.
Department of Molecular Physiology and Biophysics, Vanderbilt University School of Medicine, Nashville, TN 37232, United States.
J Struct Biol. 2017 Apr;198(1):54-64. doi: 10.1016/j.jsb.2017.02.006. Epub 2017 Feb 20.
Human glucose-6-phosphatase plays a vital role in blood glucose homeostasis and holds promise as a therapeutic target for diabetes. Expression of its catalytic subunit gene 1 (G6PC1) is tightly regulated by metabolic-response transcription factors such as FoxO1 and CREB. Although at least three potential FoxO1 binding sites (insulin response elements, IREs) and one CREB binding site (cAMP response element, CRE) within the proximal region of the G6PC1 promoter have been identified, the interplay between FoxO1 and CREB and between FoxO1 bound at multiple IREs has not been well characterized. Here we present the crystal structures of the FoxO1 DNA binding domain in complex with the G6PC1 promoter. These complexes reveal the presence of a new non-consensus FoxO1 binding site that overlaps the CRE, suggesting a mutual exclusion mechanism for FoxO1 and CREB binding at the G6PC1 promoter. Additional findings include (i) non-canonical FoxO1 recognition sites, (ii) incomplete FoxO1 occupancies at the available IRE sites, and (iii) FoxO1 dimeric interactions that may play a role in stabilizing DNA looping. These findings provide insight into the regulation of G6PC1 gene transcription by FoxO1, and demonstrate a high versatility of target gene recognition by FoxO1 that correlates with its diverse roles in biology.
人类葡萄糖-6-磷酸酶在血糖稳态中起着至关重要的作用,有望成为糖尿病的治疗靶点。其催化亚基基因1(G6PC1)的表达受到FoxO1和CREB等代谢反应转录因子的严格调控。尽管在G6PC1启动子近端区域已鉴定出至少三个潜在的FoxO1结合位点(胰岛素反应元件,IREs)和一个CREB结合位点(cAMP反应元件,CRE),但FoxO1与CREB之间以及多个IREs上结合的FoxO1之间的相互作用尚未得到充分表征。在此,我们展示了与G6PC1启动子复合的FoxO1 DNA结合结构域的晶体结构。这些复合物揭示了一个与CRE重叠的新的非共识FoxO1结合位点的存在,这表明在G6PC1启动子上FoxO1和CREB结合存在相互排斥机制。其他发现包括:(i)非经典的FoxO1识别位点;(ii)在可用IRE位点上FoxO1的不完全占据;(iii)可能在稳定DNA环化中起作用的FoxO1二聚体相互作用。这些发现为FoxO1对G6PC1基因转录的调控提供了见解,并证明了FoxO1对靶基因识别的高度通用性,这与其在生物学中的多种作用相关。