Omics profiling identifies the regulatory functions of the MAPK/ERK pathway in nephron progenitor metabolism

Author:

Kwon Hyuk Nam123,Kurtzeborn Kristen123,Iaroshenko Vladislav123ORCID,Jin Xing4,Loh Abigail5ORCID,Escande-Beillard Nathalie567ORCID,Reversade Bruno58ORCID,Park Sunghyouk4ORCID,Kuure Satu1239ORCID

Affiliation:

1. Helsinki Institute of Life Science, University of Helsinki 1 , Helsinki, FIN-00014 , Finland

2. Stem Cells and Metabolism Research Program 2 , Faculty of Medicine , , Helsinki, FIN-00014 , Finland

3. University of Helsinki 2 , Faculty of Medicine , , Helsinki, FIN-00014 , Finland

4. College of Pharmacy, Natural Product Research Institute, Seoul National University 3 , Seoul 08826 , Korea

5. Institute of Molecular and Cellular Biology (IMCB), A*STAR 4 , Singapore 138648 , Singapore

6. Stem Cells and Metabolism Research Program 5 , Faculty of Medicine , , Helsinki, FIN-00014 , Finland

7. University of Helsinki 5 , Faculty of Medicine , , Helsinki, FIN-00014 , Finland

8. School of Medicine, Koç University 6 Medical Genetics Department , , Istanbul 34010 , Turkey

9. GM-unit, Laboratory Animal Center, Helsinki Institute of Life Science, University of Helsinki 7 , Helsinki, FIN-00014 , Finland

Abstract

ABSTRACT Nephron endowment is defined by fetal kidney growth and crucially dictates renal health in adults. Defects in the molecular regulation of nephron progenitors contribute to only a fraction of reduced nephron mass cases, suggesting alternative causative mechanisms. The importance of MAPK/ERK activation in nephron progenitor maintenance has been previously demonstrated, and here, we characterized the metabolic consequences of MAPK/ERK deficiency. Liquid chromatography/mass spectrometry-based metabolomics profiling identified 42 reduced metabolites, of which 26 were supported by in vivo transcriptional changes in MAPK/ERK-deficient nephron progenitors. Among these, mitochondria, ribosome and amino acid metabolism, together with diminished pyruvate and proline metabolism, were the most affected pathways. In vitro cultures of mouse kidneys demonstrated a dosage-specific function for pyruvate in controlling the shape of the ureteric bud tip, a regulatory niche for nephron progenitors. In vivo disruption of proline metabolism caused premature nephron progenitor exhaustion through their accelerated differentiation in pyrroline-5-carboxylate reductases 1 (Pycr1) and 2 (Pycr2) double-knockout kidneys. Pycr1/Pycr2-deficient progenitors showed normal cell survival, indicating no changes in cellular stress. Our results suggest that MAPK/ERK-dependent metabolism functionally participates in nephron progenitor maintenance by monitoring pyruvate and proline biogenesis in developing kidneys.

Funder

Academy of Finland

Suomen Kulttuurirahasto

Maud Kuistilan Muistosäätiö

Lasten Syöpäsäätiö Väreen

Aamu Pediatric Cancer Foundation

Orionin Tutkimussäätiö

Helsingin Yliopisto

Publisher

The Company of Biologists

Subject

Developmental Biology,Molecular Biology

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