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PMID: 24088225 Published · epublish English Journal Article Randomized Controlled Trial Research Support, Non-U.S. Gov't

Lovastatin improves impaired synaptic plasticity and phasic alertness in patients with neurofibromatosis type 1.

BMC neurology ·Vol. 13 ·2013-10-02 ·Pages 131

Mainberger F, Jung NH, Zenker M, Wahlländer U, Freudenberg L, Langer S, Berweck S, Winkler T, Straube A, Heinen F, Granström S, Mautner VF, Lidzba K, Mall V

Abstract

Neurofibromatosis type 1 (NF1) is one of the most common genetic disorders causing learning disabilities by mutations in the neurofibromin gene, an important inhibitor of the RAS pathway. In a mouse model of NF1, a loss of function mutation of the neurofibromin gene resulted in increased gamma aminobutyric acid (GABA)-mediated inhibition which led to decreased synaptic plasticity and deficits in attentional performance. Most importantly, these defictis were normalized by lovastatin. This placebo-controlled, double blind, randomized study aimed to investigate synaptic plasticity and cognition in humans with NF1 and tried to answer the question whether potential deficits may be rescued by lovastatin. In NF1 patients (n = 11; 19-44 years) and healthy controls (HC; n = 11; 19-31 years) paired pulse transcranial magnetic stimulation (TMS) was used to study intracortical inhibition (paired pulse) and synaptic plasticity (paired associative stimulation). On behavioural level the Test of Attentional Performance (TAP) was used. To study the effect of 200 mg lovastatin for 4 days on all these parameters, a placebo-controlled, double blind, randomized trial was performed. In patients with NF1, lovastatin revealed significant decrease of intracortical inhibition, significant increase of synaptic plasticity as well as significant increase of phasic alertness. Compared to HC, patients with NF1 exposed increased intracortical inhibition, impaired synaptic plasticity and deficits in phasic alertness. This study demonstrates, for the first time, a link between a pathological RAS pathway activity, intracortical inhibition and impaired synaptic plasticity and its rescue by lovastatin in humans. Our findings revealed mechanisms of attention disorders in humans with NF1 and support the idea of a potential clinical benefit of lovastatin as a therapeutic option.

MeSH Terms
Adult Anticholesteremic Agents/pharmacology,therapeutic use Attention/drug effects,physiology Cerebral Cortex/drug effects,physiology Cohort Studies Decision Making/drug effects Double-Blind Method Evoked Potentials, Motor/drug effects Female Humans Long-Term Potentiation/drug effects Lovastatin/pharmacology,therapeutic use Male Neural Inhibition/drug effects Neurofibromatosis 1/drug therapy,pathology Time Factors Transcranial Magnetic Stimulation Young Adult
Chemicals
Anticholesteremic Agents Lovastatin
Authors & Affiliations
14 authors, click to expand affiliations / ORCID
Mainberger Florian
Department of Pediatrics, Technical University Munich, Kinderzentrum München gemeinnützige GmbH, Heiglhofstrasse 63, 81377 Munich, Germany. [email protected].
Jung Nikolai H
Zenker Martin
Wahlländer Ute
Freudenberg Leonie
Langer Susanne
Berweck Steffen
Winkler Tobias
Straube Andreas
Heinen Florian
Granström Sofia
Mautner Victor-Felix
Lidzba Karen
Mall Volker
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Article Info
Journal
BMC neurology
Abbr.
BMC Neurol
ISSN
1471-2377
Published
2013-10-02
Epub
2013-00-02
Pages
131
Language
English
Region
England
NLM ID
100968555
PMCID
PMC4015838
Subset
IM
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