The transcription factor TCF21 is necessary for adoption of cell fates by Foxd1+ stromal progenitors during kidney development.

Gal Finer, Mohammad D Khan, Yalu Zhou, Gaurav Gadhvi, George S Yacu, Joo-Seop Park, R Ariel Gomez, Maria Luisa S Sequeira-Lopez, Susan E Quaggin, Deborah R Winter
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引用次数: 0

Abstract

Normal kidney development requires the coordinated interactions between multiple progenitor cell lineages. Among these, Foxd1+ stromal progenitors are essential for nephrogenesis, giving rise to diverse cell types including the renal stroma, capsule, mesangial cells, renin cells, pericytes, and vascular smooth muscle cells (VSMCs). However, the molecular mechanisms governing their differentiation remain poorly understood. This study investigates the role of Tcf21, a mesoderm-specific bHLH transcription factor, in Foxd1+ cell fate determination. Using single-cell RNA sequencing (scRNA-seq), we analyzed 32,461 GFP+ cells from embryonic day 14.5 (E14.5) Foxd1 Cre/+ ;Rosa26 mTmG ;Tcf21 f/f kidneys ( Tcf21-cKO ) and controls. Clustering identified a predominant stromal population, further divided into six subpopulations associated with healthy kidney development: nephrogenic zone-associated stroma, proliferating stroma, medullary/perivascular stroma, collecting duct-associated stroma, differentiating stroma, and ureteric stroma. Loss of Tcf21 resulted in marked depletion of medullary/perivascular stroma, collecting duct-associated stroma, proliferating stroma, and nephrogenic zone-associated stroma stromal subpopulations, confirmed by immunostaining, which revealed severe constriction of medullary and collecting duct stromal spaces. Additionally, we identified a novel cluster unique to Tcf21-cKO kidneys, characterized by high expression of Endomucin (Emcn), a vascular endothelial marker. These cells spanned across pseudotime trajectories and were distributed broadly across the mutant kidney. The emergence of Emcn-expressing cells in Tcf21-cKO kidneys coincided with a reduction in Acta2-expressing medullary stromal cells, suggesting a population shift. Our findings highlight the critical role of Tcf21 in directing Foxd1+ progenitor differentiation. Loss of Tcf21 disrupts stromal cell fates, leading to aberrant kidney development and providing new insights into the mechanisms underlying congenital kidney anomalies.

Translational statement: This study reveals critical insights into kidney development and congenital anomalies by identifying the developmental origins of stromal heterogeneity and the key role of Tcf21 in stromal progenitor differentiation. These findings enhance our understanding of stromal cell fate decisions and their relevance to congenital disorders. Additionally, this work provides valuable information for improving the recapitulation of the stromal compartment ex vivo, a current challenge in kidney organoid models. The role of Tcf21 in stromal phenotypic modulation underscores its broader significance in tissue repair and fibrotic diseases, suggesting potential avenues for therapeutic intervention.

转录因子TCF21是肾脏发育过程中Foxd1+基质祖细胞采用细胞命运所必需的。
肾脏的正常发育需要多个祖细胞系之间的协调互动。Foxd1+基质祖细胞对正常肾脏生成至关重要,其异质性也日益受到重视。然而,人们对驱动 Foxd1+ 细胞向肾基质、囊、间质细胞、肾素细胞、周细胞和血管平滑肌细胞(VSMC)分化的分子机制和轨迹知之甚少。最近的研究发现,Tcf21 是一种中胚层特异性 bHLH 转录因子,对胚胎发生至关重要,它与肾间质和血管周围细胞的发育有关。为了研究Tcf21在Foxd1+细胞中的作用,我们对来自E14.5 Foxd1 Cre/+ ;Rosa26 mTmG ;Tcf21 f/f肾脏(Tcf21 -cKO)和对照组的GFP+细胞进行了单细胞RNA测序(scRNA-seq)。对整个数据集进行聚类,发现了大量基质细胞和较少的非基质细胞系。基质细胞的亚聚类分析确定了七个群体:髓质/血管周围基质、增殖基质、分化肾小球基质、肾源区相关基质、集合管相关基质和输尿管基质。缺失 Tcf21 会导致髓质/血管周围基质、增殖基质、肾原区基质和集合管相关基质亚群的急剧减少。免疫染色证实,Tcf21 -cKO导致髓质和集合管相关基质空间严重收缩。我们发现了一个 Tcf21 -cKO 肾脏特有的基因簇,该基因簇显示了基质成因细胞、增殖细胞和血管周围细胞基因的马赛克表达,跨越了所有假时空,表明细胞在分化过程中停止了分化。这些发现强调了Tcf21在Foxd1+衍生物出现过程中的关键作用,Tcf21的缺失会导致基质细胞命运的转变,从而导致肾脏发育异常:肾脏基质异质性出现的机制尚不清楚。通过对来自E14.5肾脏的Foxd1+富集细胞进行scRNA-seq分析,我们发现了7种分子上截然不同的基质细胞群及其区域关联。这些数据表明,转录因子Tcf21调节Foxd1+细胞的命运,而Foxd1+细胞是形成正常环境的基质衍生物所必需的,这样才能发育出正常大小和功能的肾脏。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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