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Rescuing compounds for Lesch-Nyhan disease identified using stem cell–based phenotypic screening
Valentin Ruillier, Johana Tournois, Claire Boissart, Marie Lasbareilles, Gurvan Mahé, Laure Chatrousse, Michel Cailleret, Marc Peschanski, Alexandra Benchoua
Valentin Ruillier, Johana Tournois, Claire Boissart, Marie Lasbareilles, Gurvan Mahé, Laure Chatrousse, Michel Cailleret, Marc Peschanski, Alexandra Benchoua
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Research Article Stem cells

Rescuing compounds for Lesch-Nyhan disease identified using stem cell–based phenotypic screening

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Abstract

Lesch-Nyhan disease (LND) is a rare monogenic disease caused by deficiency of the salvage pathway enzyme hypoxanthine-guanine phosphoribosyltransferase (HGPRT). LND is characterized by severe neuropsychiatric symptoms that currently cannot be treated. Predictive in vivo models are lacking for screening and evaluating candidate drugs because LND-associated neurological symptoms are not recapitulated in HGPRT-deficient animals. Here, we used human neural stem cells and neurons derived from induced pluripotent stem cells (iPSCs) of children affected with LND to identify neural phenotypes of interest associated with HGPRT deficiency to develop a target-agnostic–based drug screening system. We screened more than 3000 molecules and identified 6 pharmacological compounds, all possessing an adenosine moiety, that corrected HGPRT deficiency–associated neuronal phenotypes by promoting metabolism compensations in an HGPRT-independent manner. This included S-adenosylmethionine, a compound that had already been used as a compassionate approach to ease the neuropsychiatric symptoms in LND. Interestingly, these compounds compensate abnormal metabolism in a manner complementary to the gold standard allopurinol and can be provided to patients with LND via simple food supplementation. This experimental paradigm can be easily adapted to other metabolic disorders affecting normal brain development and functioning in the absence of a relevant animal model.

Authors

Valentin Ruillier, Johana Tournois, Claire Boissart, Marie Lasbareilles, Gurvan Mahé, Laure Chatrousse, Michel Cailleret, Marc Peschanski, Alexandra Benchoua

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Figure 2

Effect of azaserine treatment on NSCs derived from control individuals or individuals with Lesch-Nyhan disease.

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Effect of azaserine treatment on NSCs derived from control individuals o...
(A) Percentage of cell viability quantified using Hoechst-PI staining after treatment with azaserine starting on day 1 of differentiation (D1) compared with cells exposed to 0.1% DMSO. (B) Percentage of cell viability after azaserine treatment starting on day 5 of differentiation (D5) compared with cells exposed to 0.1% DMSO. (C) Quantification of the percentage of Ki-67+ cells after treatment with azaserine started on day 5 of differentiation compared with cells exposed to 0.1% DMSO. (D) Quantification of the total number of cells quantified using Hoechst nuclear staining after treatment with azaserine started on day 5 of differentiation compared with cells exposed to 0.1% DMSO. (E) Quantification of the percentage of HuC/D+ neurons after treatment with azaserine started on day 5 of differentiation compared with cells exposed to 0.1% DMSO. (F) Quantification of the total number of HuC/D+ neurons after treatment with azaserine started on day 5 of differentiation compared with cells exposed to 0.1% DMSO. (G) Representative images of immunocytochemistry for Ki-67 on day 7 of differentiation and HuC/D on day 14 of differentiation in control (CTL) and Lesch-Nyhan disease (LND) cells exposed to 0.1% DMSO or 2.0 μM azaserine from day 5. Scale bar: 100 μm. All quantitative results are expressed as the mean ± SD of the 2 control (blue lines) and 2 LND (red lines) cell lines, with 4 technical replicates. Azaserine was added at 0.5 (solid lines) or 2.0 μM (dotted lines). *P < 0.01 Holm-Sidak post hoc test.

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