Özel, Cem ORCID: 0009-0006-7091-7027, Reitmeier, Katrin M. ORCID: 0009-0003-8534-520X, Kieckhöfer, Emilia ORCID: 0009-0004-7888-9185, Abualia, Khawla ORCID: 0000-0002-7534-4014, Nguyen‐Minh, Duc, Matin, Mahsa ORCID: 0000-0001-7954-6863, Hagmann, Henning ORCID: 0000-0002-2624-2740, Coward, Richard J. M. ORCID: 0000-0001-6183-2546, Brähler, Sebastian, Antczak, Philipp ORCID: 0000-0001-9600-7757, Schermer, Bernhard ORCID: 0000-0002-5194-9000, Benzing, Thomas ORCID: 0000-0003-0512-1066, Giavalisco, Patrick ORCID: 0000-0002-4636-1827 and Brinkkoetter, Paul T. ORCID: 0000-0002-4287-2080 (2025). Disruption of Mitochondrial Dynamics and Integrity Drives Divergent Metabolic Flexibility and Resilience in Podocytes. The FASEB Journal, 39 (24). pp. 1-18. Wiley. ISSN 0892-6638

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Identification Number:10.1096/fj.202502934R

Abstract

[Artikel-Nr.: e71340] Mitochondrial dysfunction is central to the pathogenesis of podocytopathies, yet the determinants of metabolic resilience versus failure remain elusive. We investigated how distinct disruptions of mitochondrial architecture, specifically hyperfusion via OMA1 deletion versus compromised inner mitochondrial membrane (IMM) integrity via PHB2 knockdown, influence the metabolic fate and insulin responsiveness of podocytes. To this end, we analyzed conditionally immortalized mouse podocytes with genetic OMA1 deletion or inducible PHB2 knockdown and employed an integrated approach combining bioenergetic studies, quantitative proteomics, phosphoproteomics, metabolomics, and stable isotope tracing studies with 13C6-glucose and 13C5-glutamine. We characterized metabolic remodeling at baseline and after insulin treatment and uncovered profoundly divergent metabolic states. OMA1 deficiency conferred robust metabolic resilience, characterized by a compensatory glycolytic shift and remodeling of TCA cycle flux through glutamine-driven anaplerosis while maintaining oxidative phosphorylation. OMA1-deficient podocytes sustained bioenergetic homeostasis upon insulin challenge by flexibly rerouting carbon flux, including the GABA shunt. In contrast, PHB2 deficiency led to metabolic failure, impaired respiration, and anaplerotic insufficiency. While maintaining basal ATP levels at baseline, PHB2-deficient podocytes exhibited energetic collapse upon insulin treatment, revealing profound metabolic inflexibility. Taken together, the structural integrity of the inner mitochondrial membrane, rather than mitochondrial morphology per se, is a driving determinant of metabolic competence and resilience in podocytes.

Item Type: Article
Creators:
Creators
Email
ORCID
ORCID Put Code
Özel, Cem
UNSPECIFIED
UNSPECIFIED
Reitmeier, Katrin M.
UNSPECIFIED
UNSPECIFIED
Kieckhöfer, Emilia
UNSPECIFIED
UNSPECIFIED
Abualia, Khawla
UNSPECIFIED
UNSPECIFIED
Nguyen‐Minh, Duc
UNSPECIFIED
UNSPECIFIED
UNSPECIFIED
Matin, Mahsa
UNSPECIFIED
UNSPECIFIED
Hagmann, Henning
UNSPECIFIED
UNSPECIFIED
Coward, Richard J. M.
UNSPECIFIED
UNSPECIFIED
Brähler, Sebastian
UNSPECIFIED
UNSPECIFIED
UNSPECIFIED
Antczak, Philipp
UNSPECIFIED
UNSPECIFIED
Schermer, Bernhard
UNSPECIFIED
UNSPECIFIED
Benzing, Thomas
UNSPECIFIED
UNSPECIFIED
Giavalisco, Patrick
UNSPECIFIED
UNSPECIFIED
Brinkkoetter, Paul T.
UNSPECIFIED
UNSPECIFIED
URN: urn:nbn:de:hbz:38-813045
Identification Number: 10.1096/fj.202502934R
Journal or Publication Title: The FASEB Journal
Volume: 39
Number: 24
Page Range: pp. 1-18
Number of Pages: 18
Date: 31 December 2025
Publisher: Wiley
ISSN: 0892-6638
Language: English
Faculty: External institution
Faculty of Medicine
Divisions: Außeruniversitäre Forschungseinrichtungen > MPI for Biology of Ageing
Faculty of Medicine > Innere Medizin > Klinik II für Innere Medizin - Nephrologie, Rheumatologie, Diabetologie und Allgemeine Innere Medizin
Subjects: Medical sciences Medicine
Uncontrolled Keywords:
Keywords
Language
anaplerosis ; glycolysis ; insulin signaling ; metabolism ; mitochondria ; OMA1 ; PHB2 ; podocytes
English
['eprint_fieldname_oa_funders' not defined]: Publikationsfonds UzK
Refereed: Yes
URI: http://kups.ub.uni-koeln.de/id/eprint/81304

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