Kidney Organoid Modeling of WT1 Mutations Reveals Key Regulatory Paths Underlying Podocyte Development

Author:

Wang Gang1,Wu Hangdi2,Zhai Xiuwen1,Zhang Li234,Zhang Changming1,Cheng Chen234,Xu Xiaodong1,Gao Erzhi1,Xiong Xushen235,Zhang Jin2346,Liu Zhihong13ORCID

Affiliation:

1. National Clinical Research Center of Kidney Diseases Jinling Hospital Nanjing University School of Medicine Nanjing Jiangsu 210002 China

2. Department of Basic Medical Sciences Zhejiang University School of Medicine Hangzhou Zhejiang 310058 China

3. Liangzhu Laboratory Zhejiang University Hangzhou 311121 China

4. Center for Stem Cell and Regenerative Medicine Department of Basic Medical Sciences & The First Affiliated Hospital Zhejiang University School of Medicine Hangzhou Zhejiang 310058 China

5. State Key Laboratory of Transvascular Implantation Devices The Second Affiliated Hospital Zhejiang University School of Medicine Hangzhou 311121 China

6. Hematology Institute Zhejiang University Hangzhou Zhejiang 310058 China

Abstract

AbstractWilms tumor‐1(WT1) is a crucial transcription factor that regulates podocyte development. However, the epigenomic mechanism underlying the function of WT1 during podocyte development has yet to be fully elucidated. Here, single‐cell chromatin accessibility and gene expression maps of foetal kidneys and kidney organoids are generated. Functional implications of WT1‐targeted genes, which are crucial for the development of podocytes and the maintenance of their structure, including BMPER/PAX2/MAGI2 that regulates WNT signaling pathway, MYH9 that maintains actin filament organization and NPHS1 that modulates cell junction assembly are identified. To further illustrate the functional importance of WT1‐mediated transcriptional regulation during podocyte development, cultured and implanted patient‐derived kidney organoids derived from the Induced Pluripotent Stem Cell (iPSCs) of a patient with a heterozygous missense mutation in WT1 are generated. Results from single‐cell RNA sequencing (scRNA‐seq) and functional assays confirm that the WT1 mutation leads to delays in podocyte development and causes damage to cell structures, due to its failure to activate the targeting genes MAGI2, MYH9, and NPHS1. Notably, correcting the mutation in the patient iPSCs using CRISPR‐Cas9 gene editing rescues the podocyte phenotype. Collectively, this work elucidates the WT1‐related epigenomic landscape with respect to human podocyte development and identifies the disease‐causing role of a WT1 mutation.

Funder

Natural Science Foundation of Jiangsu Province

National Natural Science Foundation of China

Publisher

Wiley

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