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Updated: Aug 16, 2025

Guided Differentiation of Mature Kidney Podocytes from Human Induced Pluripotent Stem Cells Under Chemically Defined Conditions
Published on: July 2, 2020
CHILKBP protects against podocyte injury by preserving ZO-1 expression
Chen Guo1,2, Yanyan Ding1, Aihua Yang1
1Department of Biology, School of Life Sciences, Guangdong Provincial Key Laboratory of Cell Microenvironment and Disease Research, Shenzhen Key Laboratory of Cell Microenvironment, Southern University of Science and Technology, Shenzhen, 518055, China.
Insights
CHILKBP protein loss in kidney podocytes causes severe kidney failure and proteinuria. Restoring CHILKBP or ZO-1 protein can protect against glomerular disease.
Area of Science:
- Nephrology
- Cell Biology
- Molecular Medicine
Background:
- Glomerular diseases cause significant global health and economic burdens.
- Identifying therapeutic targets for glomerular diseases is crucial.
- The role of CHILKBP (CHILKBP) in podocyte function is largely unknown.
Purpose of the Study:
- To investigate the function of CHILKBP in maintaining podocyte structure and function.
- To elucidate the molecular mechanisms underlying CHILKBP's role in podocyte homeostasis.
- To explore CHILKBP and ZO-1 as potential therapeutic targets for proteinuric kidney diseases.
Main Methods:
- Generated a conditional knockout mouse model (CHILKBP cKO) with CHILKBP gene deletion in podocytes.
- Performed histological analysis, including assessment of podocyte injury markers.
- Utilized in vitro and in vivo models to test the restoration of CHILKBP and ZO-1.
- Analyzed glomerular expression of CHILKBP and ZO-1 in patients with proteinuric kidney diseases.
Main Results:
- Ablation of CHILKBP in podocytes led to massive proteinuria and kidney failure in mice.
- CHILKBP deficiency caused podocyte loss, foot process effacement, and glomerulosclerosis.
- CHILKBP interacts with ZO-1; its loss reduced ZO-1 expression, disrupting actin organization and slit diaphragm integrity.
- Restoration of CHILKBP or ZO-1 ameliorated podocyte injury.
- Reduced glomerular expression of CHILKBP and ZO-1 was observed in proteinuric kidney disease patients.
Conclusions:
- CHILKBP is essential for maintaining podocyte structure and function.
- A novel signaling pathway involving CHILKBP and ZO-1 is critical for podocyte homeostasis.
- Targeting the CHILKBP-ZO-1 pathway offers potential therapeutic strategies for glomerular diseases.
Abstract:
Glomerular diseases afflict millions of people and impose an enormous burden on public healthcare costs worldwide. Identification of potential therapeutic targets for preventing glomerular diseases is of considerable clinical importance. CHILKBP is a focal adhesion protein and modulates a wide array of biological functions. However, little is known about the role of CHILKBP in glomerular diseases. To investigate the function of CHILKBP in maintaining the structure and function of podocytes in a physiologic setting, a mouse model (CHILKBP cKO) was generated in which CHILKBP gene was conditionally deleted in podocytes using the Cre-LoxP system. Ablation of CHILKBP in podocytes resulted in massive proteinuria and kidney failure in mice. Histologically, typical podocyte injury including podocyte loss, foot process effacement, and glomerulosclerosis was observed in CHILKBP cKO mice. Mechanistically, we identified ZO-1 as a key junctional protein that interacted with CHILKBP. Loss of CHILKBP in podocytes exhibited a significant reduction of ZO-1 expression, leading to abnormal actin organization, aberrant slit diaphragm protein expression and compromised podocyte filtration capacity. Restoration of CHILKBP or ZO-1 in CHILKBP-deficient podocytes effectively alleviated podocyte injury induced by the loss of CHILKBP in vitro and in vivo. Finally, we showed the glomerular expression of CHILKBP and ZO-1 was decreased in patients with proteinuric kidney diseases. Our findings reveal a novel signaling pathway consisting of CHILKBP and ZO-1 that plays an essential role in maintaining podocyte homeostasis and suggest novel therapeutic approaches to alleviate glomerular diseases.
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