Department of Biochemistry, Duke University School of Medicine, Durham, NC 27710, USA.
Department of Infectious Diseases, Infection Control Research, University of Texas MD Anderson Cancer Center, Houston TX 77054, USA.
Nucleic Acids Res. 2020 Apr 17;48(7):3987-3997. doi: 10.1093/nar/gkaa149.
Hfq regulates bacterial gene expression post-transcriptionally by binding small RNAs and their target mRNAs, facilitating sRNA-mRNA annealing, typically resulting in translation inhibition and RNA turnover. Hfq is also found in the nucleoid and binds double-stranded (ds) DNA with a slight preference for A-tracts. Here, we present the crystal structure of the Escherichia coli Hfq Core bound to a 30 bp DNA, containing three 6 bp A-tracts. Although previously postulated to bind to the 'distal' face, three statistically disordered double stranded DNA molecules bind across the proximal face of the Hfq hexamer as parallel, straight rods with B-DNA like conformational properties. One DNA duplex spans the diameter of the hexamer and passes over the uridine-binding proximal-face pore, whereas the remaining DNA duplexes interact with the rims and serve as bridges between adjacent hexamers. Binding is sequence-independent with residues N13, R16, R17 and Q41 interacting exclusively with the DNA backbone. Atomic force microscopy data support the sequence-independent nature of the Hfq-DNA interaction and a role for Hfq in DNA compaction and nucleoid architecture. Our structure and nucleic acid-binding studies also provide insight into the mechanism of sequence-independent binding of Hfq to dsRNA stems, a function that is critical for proper riboregulation.
Hfq 通过结合小 RNA 和它们的靶 mRNA,在后转录水平上调节细菌基因表达,促进 sRNA-mRNA 退火,通常导致翻译抑制和 RNA 周转。Hfq 也存在于核体中,并与双链 (ds) DNA 结合,对 A 链有轻微偏好。在这里,我们展示了大肠杆菌 Hfq Core 与包含三个 6 个碱基 A 链的 30 个碱基对 DNA 结合的晶体结构。尽管先前推测 Hfq 结合在“远端”面,但三个统计上无序的双链 DNA 分子以平行的直棒形式结合在 Hfq 六聚体的近端面上,具有 B-DNA 样的构象特性。一个 DNA 双螺旋跨越六聚体的直径,并穿过尿嘧啶结合的近端面孔,而其余的 DNA 双螺旋与边缘相互作用,并作为相邻六聚体之间的桥梁。结合是序列非依赖性的,残基 N13、R16、R17 和 Q41 仅与 DNA 骨架相互作用。原子力显微镜数据支持 Hfq-DNA 相互作用的序列非依赖性,以及 Hfq 在 DNA 紧缩和核体结构中的作用。我们的结构和核酸结合研究也为 Hfq 与 dsRNA 茎的序列非依赖性结合机制提供了深入的了解,这一功能对于正确的核糖调控至关重要。