Gene therapy for aromatic L-amino acid decarboxylase deficiency: Requirements for safe application and knowledge-generating follow-up.

Agathe Roubertie, Thomas Opladen, Heiko Brennenstuhl, Oya Kuseyri Hübschmann, Lisa Flint, Michel A Willemsen, Vincenzo Leuzzi, Angels Garcia Cazorla, Manju A Kurian, Marie Céline François-Heude, Paul Hwu, Bruria Ben Zeev, Karl Kiening, Thomas Roujeau, Roser Pons, Toni S Pearson

Journal: Journal of inherited metabolic disease 2024;47(3):463-475

PMID: 37402126

Abstract

The autosomal recessive defect of aromatic L-amino acid decarboxylase (AADC) leads to a severe neurological disorder with manifestation in infancy due to a pronounced, combined deficiency of dopamine, serotonin and catecholamines. The success of conventional drug treatment is very limited, especially in patients with a severe phenotype. The development of an intracerebral AAV2-based gene delivery targeting the putamen or substantia nigra started more than 10 years ago. Recently, the putaminally-delivered construct, Eladocagene exuparvovec has been approved by the European Medicines Agency and by the British Medicines and Healthcare products Regulatory Agency. This now available gene therapy provides for the first time also for AADC deficiency (AADCD) a causal therapy, leading this disorder into a new therapeutic era. By using a standardized Delphi approach members of the International Working Group on Neurotransmitter related Disorders (iNTD) developed structural requirements and recommendations for the preparation, management and follow-up of AADC deficiency patients who undergo gene therapy. This statement underlines the necessity of a framework for a quality-assured application of AADCD gene therapy including Eladocagene exuparvovec. Treatment requires prehospital, inpatient and posthospital care by a multidisciplinary team in a specialized and qualified therapy center. Due to lack of data on long-term outcomes and the comparative efficacy of alternative stereotactic procedures and brain target sites, a structured follow-up plan and systematic documentation of outcomes in a suitable, industry-independent registry study are necessary.

© 2023 The Authors. Journal of Inherited Metabolic Disease published by John Wiley & Sons Ltd on behalf of SSIEM.

Address: CHU Montpellier, Département de Neuropédiatrie, INM, Univ Montpellier, INSERM U 1298, Montpellier, France.; Division of Child Neurology and Metabolic Medicine, University Children's Hospital Heidelberg, Germany.; Division of Child Neurology and Metabolic Medicine, University Children's Hospital Heidelberg, Germany.; Institute Human Genetics, University Children's Hospital Heidelberg, Germany.; AADC Research Trust, Caterham, UK.; Department of Pediatric Neurology, Donders Institute for Brain, Cognition, and Behavior, Radboud University Medical Center, Nijmegen, The Netherlands.; Department of Human Neuroscience-Unit of Child Neurology and Psychiatry, University of Rome La Sapienza.; Neurometabolism Unit, Department of Neurology, CIBERER and MetabERN, Hospital Sant Joan de Déu, Barcelona, Spain.; Developmental Neurosciences, Zayed Centre for Research into Rare Disease in Children, Great Ormond Street Institute of Child Health, University College London, London, UK.; Department of Neurology, Great Ormond Street Hospital for Children, London, UK.; Department of Pediatrics and Medical Genetics, National Taiwan University Hospital, Taipei, Taiwan.; Pediatric Neurology Unit, Edmond and Lily Safra Children's Hospital, Sheba Medical Center, Ramat Gan, Israel.; Sackler School of Medicine, Tel Aviv University, Tel Aviv, Israel.; Division of Stereotactic Neurosurgery, University Hospital Heidelberg, Germany.; CHU Montpellier, Département de Neurochirurgie, Montpellier, France.; First Department of Pediatrics, National and Kapodistrian University of Athens, Aghia Sofia Hospital, Athens, Greece.; Division of Neurology, Nationwide Children's Hospital, Columbus, Ohio, USA.
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