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Glycine decarboxylase deficiency–induced motor dysfunction in zebrafish is rescued by counterbalancing glycine synaptic level
Raphaëlle Riché, Meijiang Liao, Izabella A. Pena, Kit-Yi Leung, Nathalie Lepage, Nicolas D.E. Greene, Kyriakie Sarafoglou, Lisa A. Schimmenti, Pierre Drapeau, Éric Samarut
Raphaëlle Riché, Meijiang Liao, Izabella A. Pena, Kit-Yi Leung, Nathalie Lepage, Nicolas D.E. Greene, Kyriakie Sarafoglou, Lisa A. Schimmenti, Pierre Drapeau, Éric Samarut
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Research Article Genetics Neuroscience

Glycine decarboxylase deficiency–induced motor dysfunction in zebrafish is rescued by counterbalancing glycine synaptic level

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Abstract

Glycine encephalopathy (GE), or nonketotic hyperglycinemia (NKH), is a rare recessive genetic disease caused by defective glycine cleavage and characterized by increased accumulation of glycine in all tissues. Here, based on new case reports of GLDC loss-of-function mutations in GE patients, we aimed to generate a zebrafish model of severe GE in order to unravel the molecular mechanism of the disease. Using CRISPR/Cas9, we knocked out the gldc gene and showed that gldc–/– fish recapitulate GE on a molecular level and present a motor phenotype reminiscent of severe GE symptoms. The molecular characterization of gldc–/– mutants showed a broad metabolic disturbance affecting amino acids and neurotransmitters other than glycine, with lactic acidosis at stages preceding death. Although a transient imbalance was found in cell proliferation in the brain of gldc–/– zebrafish, the main brain networks were not affected, thus suggesting that GE pathogenicity is mainly due to metabolic defects. We confirmed that the gldc–/– hypotonic phenotype is due to NMDA and glycine receptor overactivation, and demonstrated that gldc–/– larvae depict exacerbated hyperglycinemia at these synapses. Remarkably, we were able to rescue the motor dysfunction of gldc–/– larvae by counterbalancing pharmacologically or genetically the level of glycine at the synapse.

Authors

Raphaëlle Riché, Meijiang Liao, Izabella A. Pena, Kit-Yi Leung, Nathalie Lepage, Nicolas D.E. Greene, Kyriakie Sarafoglou, Lisa A. Schimmenti, Pierre Drapeau, Éric Samarut

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Figure 3

Gldc–/– larvae die prematurely and show disease-reminiscent motor phenotypes.

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Gldc–/– larvae die prematurely and show disease-reminiscent motor pheno...
(A) Gldc–/– larvae die prematurely between 7 and 9 days after fertilization (dpf). (B) The general morphology of the fish is not affected, as shown by the quantification of the eye spacing distance, eye diameter, and body length of gldc–/– compared with gldc+/+ larvae. (C) Although there is no obvious morphological defect in gldc–/– at 7 dpf, gldc–/– larvae are distinguishable from their siblings because of their hyperpigmentation. (D) H&E staining performed on transverse sections from 7 dpf gldc+/+ and gldc–/– larvae shows no obvious difference in brain morphology. (E) Analysis of the frequency of spontaneous coiling of the tail at 21 hours after fertilization, the earliest motor phenotype in zebrafish embryo, reveals a decrease in this behavior in gldc–/– compared with gldc+/+ larvae (ANOVA ****P = 0.0002). (F) Analysis of the total distance swimming distance over 1 hour at 7 days reveals a significant decrease in gldc–/– compared with gldc+/+ (ANOVA ***P = 0.0077). (G) Tracking of the position of gldc+/+ and gldc–/– 7-dpf larvae from the center point after application of a water current shows a balance problem in gldc–/– larvae. (H) Indeed, gldc–/– larvae take significantly more time to stabilize their swimming after application of the water current compared with gldc+/+ (t test, ****P = 0.0008). (I) Heatmap tracking of the swimming zone of 7-dpf larvae over 10 minutes reveals that gldc–/– larvae swim only in the upper part of water, whereas gldc+/+ swim in both the upper and lower sections of the water. (J) Quantification of the time spent in the upper versus lower swimming zone of the water reveals that gldc–/– larvae spend significantly more time in the upper swimming zone compared with gldc+/+ (ANOVA, ****P < 0.0001). Boxes and whiskers represent minimum and maximum values, and a line shows the median value. Each dot corresponds to an individual experiment (N) with at least 5 fish (n > 5). “+/sib” indicates gldc+/+ and gldc–/+ siblings.

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