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Guided Differentiation of Mature Kidney Podocytes from Human Induced Pluripotent Stem Cells Under Chemically Defined Conditions
Published on: July 2, 2020
Kidney-differentiated cells derived from Lowe Syndrome patient's iPSCs show ciliogenesis defects and Six2 retention
Wen-Chieh Hsieh1, Swetha Ramadesikan1, Donna Fekete1,2,3,4
1Department of Biological Sciences, Purdue University, West Lafayette, IN United States of America.
Abstract:
Lowe syndrome is an X-linked condition characterized by congenital cataracts, neurological abnormalities and kidney malfunction. This lethal disease is caused by mutations in the OCRL1 gene, which encodes for the phosphatidylinositol 5-phosphatase Ocrl1. While in the past decade we witnessed substantial progress in the identification and characterization of LS patient cellular phenotypes, many of these studies have been performed in knocked-down cell lines or patient's cells from accessible cell types such as skin fibroblasts, and not from the organs affected. This is partially due to the limited accessibility of patient cells from eyes, brain and kidneys. Here we report the preparation of induced pluripotent stem cells (iPSCs) from patient skin fibroblasts and their reprogramming into kidney cells. These reprogrammed kidney cells displayed primary cilia assembly defects similar to those described previously in cell lines. Additionally, the transcription factor and cap mesenchyme marker Six2 was substantially retained in the Golgi complex and the functional nuclear-localized fraction was reduced. These results were confirmed using different batches of differentiated cells from different iPSC colonies and by the use of the human proximal tubule kidney cell line HK2. Indeed, OCRL1 KO led to both ciliogenesis defects and Six2 retention in the Golgi complex. In agreement with Six2's role in the suppression of ductal kidney lineages, cells from this pedigree were over-represented among patient kidney-reprogrammed cells. We speculate that this diminished efficacy to produce cap mesenchyme cells would cause LS patients to have difficulties in replenishing senescent or damaged cells derived from this lineage, particularly proximal tubule cells, leading to pathological scenarios such as tubular atrophy.
Insights
Lowe syndrome (LS) patients
Area of Science:
- Genetics and Molecular Biology
- Developmental Biology
- Nephrology
Background:
- Lowe syndrome is a severe X-linked disorder caused by mutations in the OCRL1 gene.
- Previous studies on Lowe syndrome cellular phenotypes were limited to accessible cell types like fibroblasts.
- Direct analysis of affected organs (kidney, brain, eye) in Lowe syndrome patients is challenging.
Purpose of the Study:
- To generate and characterize kidney cells derived from induced pluripotent stem cells (iPSCs) of Lowe syndrome patients.
- To investigate cellular defects in reprogrammed kidney cells relevant to Lowe syndrome.
- To explore the role of OCRL1 and Six2 in kidney development and disease pathology.
Main Methods:
- Generation of induced pluripotent stem cells (iPSCs) from Lowe syndrome patient fibroblasts.
- Reprogramming of iPSCs into kidney cells.
- Analysis of primary cilia assembly and transcription factor Six2 localization.
- Comparison with OCRL1 knockout (KO) cell lines and HK2 cells.
Main Results:
- Reprogrammed kidney cells exhibited primary cilia assembly defects.
- The transcription factor Six2 showed retention in the Golgi complex and reduced nuclear localization.
- OCRL1 KO recapitulated these ciliogenesis and Six2 localization defects.
- Cells from the Six2-expressing lineage were over-represented in patient-derived kidney cells.
Conclusions:
- Induced pluripotent stem cells offer a valuable model for studying Lowe syndrome in kidney cells.
- Defects in ciliogenesis and Six2 localization contribute to kidney pathology in Lowe syndrome.
- Impaired cap mesenchyme cell replenishment may lead to tubular atrophy in Lowe syndrome patients.

