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Bitopertin, a selective oral GLYT1 inhibitor, improves anemia in a mouse model of β-thalassemia
Alessandro Matte, Enrica Federti, Michael Winter, Annette Koerner, Anja Harmeier, Norman Mazer, Tomas Tomka, Maria Luisa Di Paolo, Luigia De Falco, Immacolata Andolfo, Elisabetta Beneduce, Achille Iolascon, Alejandra Macias-Garcia, Jane-Jane Chen, Anne Janin, Christhophe Lebouef, Franco Turrini, Carlo Brugnara, Lucia De Franceschi
Alessandro Matte, Enrica Federti, Michael Winter, Annette Koerner, Anja Harmeier, Norman Mazer, Tomas Tomka, Maria Luisa Di Paolo, Luigia De Falco, Immacolata Andolfo, Elisabetta Beneduce, Achille Iolascon, Alejandra Macias-Garcia, Jane-Jane Chen, Anne Janin, Christhophe Lebouef, Franco Turrini, Carlo Brugnara, Lucia De Franceschi
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Research Article Hematology

Bitopertin, a selective oral GLYT1 inhibitor, improves anemia in a mouse model of β-thalassemia

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Abstract

Anemia of β-thalassemia is caused by ineffective erythropoiesis and reduced red cell survival. Several lines of evidence indicate that iron/heme restriction is a potential therapeutic strategy for the disease. Glycine is a key initial substrate for heme and globin synthesis. We provide evidence that bitopertin, a glycine transport inhibitor administered orally, improves anemia, reduces hemolysis, diminishes ineffective erythropoiesis, and increases red cell survival in a mouse model of β-thalassemia (Hbbth3/+ mice). Bitopertin ameliorates erythroid oxidant damage, as indicated by a reduction in membrane-associated free α-globin chain aggregates, in reactive oxygen species cellular content, in membrane-bound hemichromes, and in heme-regulated inhibitor activation and eIF2α phosphorylation. The improvement of β-thalassemic ineffective erythropoiesis is associated with diminished mTOR activation and Rab5, Lamp1, and p62 accumulation, indicating an improved autophagy. Bitopertin also upregulates liver hepcidin and diminishes liver iron overload. The hematologic improvements achieved by bitopertin are blunted by the concomitant administration of the iron chelator deferiprone, suggesting that an excessive restriction of iron availability might negate the beneficial effects of bitopertin. These data provide important and clinically relevant insights into glycine restriction and reduced heme synthesis strategies for the treatment of β-thalassemia.

Authors

Alessandro Matte, Enrica Federti, Michael Winter, Annette Koerner, Anja Harmeier, Norman Mazer, Tomas Tomka, Maria Luisa Di Paolo, Luigia De Falco, Immacolata Andolfo, Elisabetta Beneduce, Achille Iolascon, Alejandra Macias-Garcia, Jane-Jane Chen, Anne Janin, Christhophe Lebouef, Franco Turrini, Carlo Brugnara, Lucia De Franceschi

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Figure 2

Bitopertin reduces β-thalassemic ineffective erythropoiesis.

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Bitopertin reduces β-thalassemic ineffective erythropoiesis.
(A) Spleen ...
(A) Spleen weight/mouse weight ratio in WT and Hbbth3/+ mice with and without bitopertin treatment (30 mg/kg/d, 28 days). Data are presented as median and minimum/maximum (n = 6); *P < 0.05 compared with WT mice; °P < 0.05 compared with vehicle-treated group; Mann-Whitney U test with multiple-comparisons corrections. (B) Iron staining (Pearl’s Prussian blue) in spleens from WT and Hbbth3/+ mice with and without bitopertin treatment (30 mg/kg/d, 28 days). One representative image from the other 6 with similar results is presented. Original magnification, ×200. See Supplemental Figure 2A for quantitative results of iron staining on Pearl’s Prussian blue. (C) Flow cytometric analysis combining CD44-Ter119 and cell size marker strategy (CD44+Ter119+Fschi) on bone marrow and spleens from WT and Hbbth3/+ mice with and without bitopertin treatment (28 days). Data are presented as median and minimum/maximum (n = 3); *P < 0.05 compared with WT mice; °P < 0.05 compared with vehicle-treated mice; 2-way ANOVA with Holm-Šídák test for multiple comparisons. (D) Upper: Morphology of sorted erythroid cells from Hbbth3/+ mice with and without bitopertin treatment (30 mg/kg/d, 28 days). Cytospins were stained with May-Grünwald-Giemsa. Cells were imaged under oil at original magnification ×100 using a Panfluor objective with 1.30 numeric aperture on a Nikon Eclipse DS-5M camera and processed with Digital Slide (DS-L1) Nikon. We show 1 representative image from a total of 6. Erythroblasts with abnormal nuclear shape and binuclear erythroblasts (white arrowhead) from Hbbth3/+ mice evaluated on cytospin stained with May-Grünwald-Giemsa. Lower: Data are presented as median and minimum/maximum (n = 6); °P < 0.05 compared with vehicle-treated group; 2-way ANOVA with Holm-Šídák test for multiple comparisons. (E) Box plot showing the ratio between polychromatic/orthochromatic erythroblasts used as a maturation index in spleens analyzed by flow cytometry from Hbbth3/+ mice with and without bitopertin treatment (30 mg/kg/d, 28 days). Data are presented as median and minimum/maximum (n = 6); °P < 0.05 compared with standard diet; 2-way ANOVA with Holm-Šídák test for multiple comparisons. (F) mRNA expression by real-time reverse transcription PCR (qRT-PCR) of Cish, NAD(P)H quinone-1 (Nqo1), and erythroferrone (Erfe; Fam132b normalized on number of sorted cells in each subpopulation) genes on sorted polychromatic erythroblasts (Pop III) and orthochromatic erythroblasts (Pop IV) from bone marrow of WT and Hbbth3/+ mice with and without bitopertin treatment (30 mg/kg/d, 28 days). Experiments were performed in triplicate. Data are presented as median and minimum/maximum; °P < 0.05 compared with vehicle; ^P < 0.05 Pop IV vs. Pop III; Mann-Whitney U test with multiple-comparison corrections.

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