CNS distribution and preclinical activity of the PI3K/AKT inhibitors inavolisib and ipatasertib in pediatric-type diffuse high-grade gliomas

PURPOSE: Pediatric-type diffuse high-grade gliomas (pHGG) are aggressive, largely incurable malignancies often characterized by PI3K/AKT pathway activation. This study investigated whether the PI3K inhibitor inavolisib and the AKT inhibitor ipatasertib could achieve therapeutic concentrations in the central nervous system (CNS) and demonstrate efficacy against PIK3CA-mutated pHGG. METHODS: A panel of 12 pHGG cell lines with diverse PI3K/AKT genetic aberrations was screened for sensitivity to inavolisib and ipatasertib. Pharmacokinetic (PK) modeling was performed in mice to determine brain-to-plasma exposure ratios following oral administration (50 mg/kg inavolisib and 100 mg/kg ipatasertib). Finally, the in vivo efficacy of both inhibitors was evaluated using intracranial PIK3CA-mutated pHGG xenograft models, with survival and cerebrospinal fluid (CSF) circulating tumor DNA (ctDNA) levels as primary endpoints. RESULTS: = 0.016 µM for inavolisib; 0.52 µM for ipatasertib). PK modeling revealed geometric mean brain-to-plasma ratios of 0.07 for inavolisib and 0.20 for ipatasertib, with model-predicted maximum brain concentrations of 0.69 µM and 0.93 µM, respectively. In vivo, inavolisib significantly extended survival (P = 0.0070) and increased CSF ctDNA release (P = 0.0317). In contrast, ipatasertib did not demonstrate significant in vivo activity. CONCLUSION: These findings highlight the therapeutic potential of inavolisib for treating PIK3CA-mutated pHGG. Despite the blood-brain barrier, inavolisib achieved sufficient CNS exposure to prolong survival in preclinical models, whereas ipatasertib efficacy did not translate from in vitro to in vivo settings.

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Journal
Cancer Chemotherapy and Pharmacology
Published
2026-09-17
DOI
https://doi.org/10.1007/s00280-026-04950-5
Primary Topic
Glioma Diagnosis and Treatment
Type
article
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article

CNS distribution and preclinical activity of the PI3K/AKT inhibitors inavolisib and ipatasertib in pediatric-type diffuse high-grade gliomas

Alberto Gómez‐Caballero, Merce Baulenas‐Farres, Meritxell Teixidò, Rafael Artuch et al.
Cancer Chemotherapy and Pharmacology
Glioma Diagnosis and Treatment
article

CNS distribution and preclinical activity of the PI3K/AKT inhibitors inavolisib and ipatasertib in pediatric-type diffuse high-grade gliomas

Alberto Gómez‐Caballero, Merce Baulenas‐Farres, Meritxell Teixidò, Rafael Artuch, Rosario Aschero, Gaia Botteri, Aída Ormazábal, Nuria Martinez-Velasco, Nora Unceta, Claudia Resa‐Pares, Leire Balaguer‐Lluna, Macarena Sánchez‐Navarro, Ángel M. Carcaboso, Lucas Brstilo, Eva Rodríguez, J Möhr, Auriane Giron, Paula Schaiquevich, Cinzia Lavarino, Ana Rodríguez, Federica Marino, Alex Ruano, Ángela García-Pelayo, Yutian Hu, Jaume Mora, Raúl Mañogil, Lydia Li-Chen
article en

Abstract

PURPOSE: Pediatric-type diffuse high-grade gliomas (pHGG) are aggressive, largely incurable malignancies often characterized by PI3K/AKT pathway activation. This study investigated whether the PI3K inhibitor inavolisib and the AKT inhibitor ipatasertib could achieve therapeutic concentrations in the central nervous system (CNS) and demonstrate efficacy against PIK3CA-mutated pHGG. METHODS: A panel of 12 pHGG cell lines with diverse PI3K/AKT genetic aberrations was screened for sensitivity to inavolisib and ipatasertib. Pharmacokinetic (PK) modeling was performed in mice to determine brain-to-plasma exposure ratios following oral administration (50 mg/kg inavolisib and 100 mg/kg ipatasertib). Finally, the in vivo efficacy of both inhibitors was evaluated using intracranial PIK3CA-mutated pHGG xenograft models, with survival and cerebrospinal fluid (CSF) circulating tumor DNA (ctDNA) levels as primary endpoints. RESULTS: = 0.016 µM for inavolisib; 0.52 µM for ipatasertib). PK modeling revealed geometric mean brain-to-plasma ratios of 0.07 for inavolisib and 0.20 for ipatasertib, with model-predicted maximum brain concentrations of 0.69 µM and 0.93 µM, respectively. In vivo, inavolisib significantly extended survival (P = 0.0070) and increased CSF ctDNA release (P = 0.0317). In contrast, ipatasertib did not demonstrate significant in vivo activity. CONCLUSION: These findings highlight the therapeutic potential of inavolisib for treating PIK3CA-mutated pHGG. Despite the blood-brain barrier, inavolisib achieved sufficient CNS exposure to prolong survival in preclinical models, whereas ipatasertib efficacy did not translate from in vitro to in vivo settings.

Cancer Chemotherapy and PharmacologyVol. 96(1)
Roche (Switzerland) (CH), Hospital Sant Joan de Déu Barcelona (ES), University of the Basque Country (ES), Garrahan Hospital (AR), Instituto de Salud Carlos III (ES), Centro Científico Tecnológico - San Juan (AR), Centre for Biomedical Network Research on Rare Diseases (ES), Institute for Research in Biomedicine (ES), Sant Joan de Déu Research Foundation (ES)
Fundació la Marató de TV3, Centres de Recerca de Catalunya, Agence Nationale de la Recherche, Bundesministerium für Bildung und Forschung, China Scholarship Council, Xarxa de Bancs de Tumors de Catalunya, Instituto de Salud Carlos III
Good health and well-being
Openalex Percentile: Top 12%
Glioma Diagnosis and Treatment
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