Agoro Rafiou, Myslinski Jered, Marambio Yamil G, Janosevic Danielle, Jennings Kayleigh N, Liu Sheng, Hibbard Lainey M, Fang Fang, Ni Pu, Noonan Megan L, Solis Emmanuel, Chu Xiaona, Wang Yue, Dagher Pierre C, Liu Yunlong, Wan Jun, Hato Takashi, White Kenneth E
Department of Medical and Molecular Genetics, Indiana University School of Medicine, Indianapolis, Indiana, USA; The Jackson Laboratory, Bar Harbor, Maine, USA.
Department of Medicine, Division of Nephrology, Indiana University School of Medicine, Indianapolis, Indiana, USA.
Kidney Int. 2025 Apr;107(4):687-699. doi: 10.1016/j.kint.2024.12.014. Epub 2025 Jan 17.
Fibroblast growth factor 23 (FGF23) via its coreceptor αKlotho (KL) provides critical control of phosphate metabolism, which is altered in both rare and very common syndromes. However, the spatial-temporal mechanisms dictating kidney FGF23 functions remain poorly understood. Thus, developing approaches to modify specific FGF23-dictated pathways has proven problematic. Herein, wild type mice were injected with rFGF23 for one, four and 12h and kidney FGF23 bioactivity was determined at single cell resolution. Computational analysis identified distinct epithelial, endothelial, stromal, and immune cell clusters, with differential expressional analysis uniquely tracking FGF23 bioactivity at each time point. FGF23 actions were sex independent but critically relied upon constitutive KL expression mapped within proximal tubule (segments S1-S3) and distal convoluted tub/connecting tubule cell sub-populations. Temporal KL-dependent FGF23 responses drove unique and transient cellular identities, including genes in key MAPK-signaling and vitamin D-metabolic pathways via early- (transcription factor AP-1-related) and late-phase (initiation factor EIF2 signaling) transcriptional regulons. Combining ATACseq/RNAseq data from a cell line stably expressing KL with the in vivo scRNAseq pinpointed genomic accessibility changes in MAPK-dependent genes, including the identification of FGF23-dependent early growth factor-1 distal enhancers. Finally, we identified unexpected crosstalk between FGF23-mediated MAPK signaling and pro inflammatory TNF receptor activation via transcription factor NF-κB, which blocked FGF23 bioactivity in vitro and in vivo. Collectively, our findings have uncovered novel pathways at the single cell level that likely influence FGF23-dependent disease mechanisms.
成纤维细胞生长因子23(FGF23)通过其共受体α-klotho(KL)对磷酸盐代谢起关键调控作用,这一过程在罕见和常见综合征中均会发生改变。然而,决定肾脏FGF23功能的时空机制仍知之甚少。因此,开发修饰特定FGF23主导途径的方法已被证明存在问题。在此,给野生型小鼠注射重组FGF23 1小时、4小时和12小时,并在单细胞分辨率下测定肾脏FGF23的生物活性。计算分析确定了不同的上皮细胞、内皮细胞、基质细胞和免疫细胞簇,差异表达分析能够在每个时间点独特地追踪FGF23的生物活性。FGF23的作用与性别无关,但关键依赖于定位于近端小管(S1 - S3节段)和远端曲管/连接小管细胞亚群中的组成型KL表达。KL依赖性的FGF23瞬时反应驱动了独特且短暂的细胞特性,包括通过早期(转录因子AP - 1相关)和晚期(起始因子EIF2信号)转录调节子调控关键的丝裂原活化蛋白激酶(MAPK)信号通路和维生素D代谢途径中的基因。将稳定表达KL的细胞系的ATACseq/RNAseq数据与体内单细胞RNA测序相结合,确定了MAPK依赖性基因的基因组可及性变化,包括鉴定出FGF23依赖性的早期生长因子 - 1远端增强子。最后,我们发现FGF23介导的MAPK信号通路与通过转录因子NF - κB激活的促炎肿瘤坏死因子受体之间存在意外的相互作用,这在体外和体内均阻断了FGF23的生物活性。总的来说,我们的研究结果在单细胞水平上揭示了可能影响FGF23依赖性疾病机制的新途径。