<i>PIK3CA</i> gain-of-function mutation in Schwann cells leads to severe neuropathy and aerobic glycolysis through a non-cell autonomous effect
Abstract
PIK3CA -related disorders are rare genetic disorders due to somatic gain-of-function mutations in PIK3CA during embryonic development, a pathway involved in cell growth, proliferation, and metabolism. Accumulating evidence from patients with PIK3CA -related disorders indicates that peripheral nerves are frequently affected, leading to severe neurological symptoms. However, the exact underlying mechanism of these disorders remains unclear. To address this, we developed a mouse model with a PIK3CA gain-of-function mutation specifically in Schwann cells, which successfully mirrored the clinical features observed in patients. In this model, we observed that PIK3CA -mutated cells communicate with neighboring healthy cells, such as adipocytes and hair follicles, through a unique crosstalk mechanism that triggers their growth, proliferation, and anagen phase expansion. Additionally, we demonstrated that PIK3CA mutation in peripheral nerves leads to a metabolic shift through glycolytic activation. We investigated the effects of alpelisib, an approved pharmacological inhibitor of PIK3CA, in the model. Early administration of alpelisib significantly improved the signs and symptoms in the mice. However, when treatment was delayed, its efficacy was diminished due to the drug’s inability to penetrate the myelin sheath effectively. In summary, our study offers a valuable mouse model for studying PIK3CA -related neuropathy, uncovers a unique communication between healthy and affected tissues, and highlights the potential benefits of early pharmacological intervention using alpelisib.
Article Details
Journal Info
Proceedings of the National Academy of Sciences
National Academy of Sciences
Authors (24)
Quitterie Venot
Université Paris Cité
Marina Firpion
Université Paris Cité
Sophia Ladraa
Université Paris Cité
Charles Bayard
Université Paris Cité
Sato Magassa
Renal Department, Medical Center—University of Freiburg
Roberta Di Guardo
Division of Neuroscience, Human Inherited Neuropathies Unit, Institute of Experimental Neurology, Ospedale San Raffaele
Antoine Fraissenon
Université Paris Cité
Clément Hoguin
Université Paris Cité
Sanela Protic
Université Paris Cité
Gabriel Morin
Université Paris Cité
Franck Mayeux
Université Paris Cité
Genevieve Gourdon
Sorbonne Université, Inserm, Centre de Recherche en Myologie
Sylvie Fraitag
Laboratoire d’Anatomie Pathologique, Hôpital Necker-Enfants Malades, Assistance Publique Hôpitaux de Paris
Estelle Balducci
Université Paris Cité
Sophie Kaltenbach
Université Paris Cité
Patrick Villarese
Université Paris Cité
Vahid Asnafi
Université Paris Cité
Thomas Viel
Plateforme Imageries du Vivant, Université de Paris, Paris Centre de Recherche Cardiovasculaire, INSERM
Gwennhael Autret
Plateforme Imageries du Vivant, Université de Paris, Paris Centre de Recherche Cardiovasculaire, INSERM
Bertrand Tavitian
Université Paris Cité
Nicolas Goudin
Necker Bio-Image Analysis, INSERM US24/CNRS UMS 3633
Laurent Guibaud
INSERM U1151, Institut Necker-Enfants Malades
Alessandra Bolino
Division of Neuroscience, Human Inherited Neuropathies Unit, Institute of Experimental Neurology, Ospedale San Raffaele
Guillaume Canaud
Université Paris Cité