Center for Genomics and Systems Biology, Department of Biology, New York University, New York, NY, 10003, USA.
Biosciences Division, Oak Ridge National Laboratory, Oak Ridge, TN, 37831, USA.
Nat Commun. 2023 May 5;14(1):2600. doi: 10.1038/s41467-023-38096-2.
Many eukaryotic transcription factors (TF) form homodimer or heterodimer complexes to regulate gene expression. Dimerization of BASIC LEUCINE ZIPPER (bZIP) TFs are critical for their functions, but the molecular mechanism underlying the DNA binding and functional specificity of homo- versus heterodimers remains elusive. To address this gap, we present the double DNA Affinity Purification-sequencing (dDAP-seq) technique that maps heterodimer binding sites on endogenous genomic DNA. Using dDAP-seq we profile twenty pairs of C/S1 bZIP heterodimers and S1 homodimers in Arabidopsis and show that heterodimerization significantly expands the DNA binding preferences of these TFs. Analysis of dDAP-seq binding sites reveals the function of bZIP9 in abscisic acid response and the role of bZIP53 heterodimer-specific binding in seed maturation. The C/S1 heterodimers show distinct preferences for the ACGT elements recognized by plant bZIPs and motifs resembling the yeast GCN4 cis-elements. This study demonstrates the potential of dDAP-seq in deciphering the DNA binding specificities of interacting TFs that are key for combinatorial gene regulation.
许多真核转录因子 (TF) 形成同源二聚体或异源二聚体复合物来调节基因表达。碱性亮氨酸拉链 (bZIP) TF 的二聚化对于它们的功能至关重要,但同源二聚体与异源二聚体的 DNA 结合和功能特异性的分子机制仍然难以捉摸。为了解决这一差距,我们提出了双 DNA 亲和力纯化测序 (dDAP-seq) 技术,该技术可在内源性基因组 DNA 上绘制异源二聚体结合位点。使用 dDAP-seq,我们对拟南芥中的二十对 C/S1 bZIP 异源二聚体和 S1 同源二聚体进行了分析,结果表明异源二聚化显著扩展了这些 TF 的 DNA 结合偏好性。dDAP-seq 结合位点的分析揭示了 bZIP9 在脱落酸响应中的功能以及 bZIP53 异源二聚体特异性结合在种子成熟中的作用。C/S1 异源二聚体对植物 bZIP 识别的 ACGT 元件和类似于酵母 GCN4 顺式元件的基序表现出明显的偏好。这项研究表明 dDAP-seq 具有解析相互作用的 TF 的 DNA 结合特异性的潜力,这些 TF 对于组合基因调控至关重要。