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Fatty acid amide hydrolase inhibition for treatment of amyotrophic lateral sclerosis
Daisuke Ito, Madoka Iida, Yohei Iguchi, Atsushi Hashizume, Shinichiro Yamada, Yoshiyuki Kishimoto, Shota Komori, Kazuki Obara, Shuto Nishisaki, Satoshi Yokoi, Teppei Shimamura, Yuto Takemoto, Masahiro Nakatochi, Tomohiro Akashi, Kunihiko Hinohara, Hyeon-Cheol Lee-Okada, Yohei Okada, Junichi Niwa, Gen Sobue, Shinji Tanaka, Ken Takashina, Takehiko Yokomizo, Masahisa Katsuno
Daisuke Ito, Madoka Iida, Yohei Iguchi, Atsushi Hashizume, Shinichiro Yamada, Yoshiyuki Kishimoto, Shota Komori, Kazuki Obara, Shuto Nishisaki, Satoshi Yokoi, Teppei Shimamura, Yuto Takemoto, Masahiro Nakatochi, Tomohiro Akashi, Kunihiko Hinohara, Hyeon-Cheol Lee-Okada, Yohei Okada, Junichi Niwa, Gen Sobue, Shinji Tanaka, Ken Takashina, Takehiko Yokomizo, Masahisa Katsuno
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Research Article Metabolism Neuroscience

Fatty acid amide hydrolase inhibition for treatment of amyotrophic lateral sclerosis

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Abstract

Amyotrophic lateral sclerosis (ALS) is a devastating neurodegenerative disease caused by the selective loss of upper and lower motor neurons. There is a considerable variability in the disease progression of sporadic ALS, but the molecular basis for phenotypic heterogeneity remains largely unknown. Patients with ALS often manifest systemic metabolic abnormalities such as glucose intolerance and hypermetabolic state. We conducted reverse translational research to explore therapeutic targets in ALS based on the systemic metabolic alterations in patients and identified several metabolites associated with the disease progression, including metabolites involved in the expanded endocannabinoid system (ECS). In particular, the levels of N-acyl taurines (NATs) were correlated with the longitudinal change in the revised ALS functional rating scale and survival. Experiments with ALS cellular models and induced pluripotent stem (iPS) cells derived from patients with ALS and SOD1G93A transgenic mice revealed that PF-04457845, a fatty acid amide hydrolase inhibitor, upregulated the expanded ECS, particularly the levels of NATs and ameliorated motor neuron degeneration through the regulation of microglial environment, synapse plasticity, and neuronal development. These results collectively indicate that dysregulation of NATs is associated with ALS progression and PF-04457845 may represent a potential disease-modifying therapy for ALS.

Authors

Daisuke Ito, Madoka Iida, Yohei Iguchi, Atsushi Hashizume, Shinichiro Yamada, Yoshiyuki Kishimoto, Shota Komori, Kazuki Obara, Shuto Nishisaki, Satoshi Yokoi, Teppei Shimamura, Yuto Takemoto, Masahiro Nakatochi, Tomohiro Akashi, Kunihiko Hinohara, Hyeon-Cheol Lee-Okada, Yohei Okada, Junichi Niwa, Gen Sobue, Shinji Tanaka, Ken Takashina, Takehiko Yokomizo, Masahisa Katsuno

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Figure 4

Cellular assays of compounds targeting the expanded endocannabinoid system and efficacy of PF-04457845 in NSC-34 cells and iPSC-derived motor neurons from sporadic patients with ALS.

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Cellular assays of compounds targeting the expanded endocannabinoid syst...
We tested a total of 29 compounds that target the identified metabolic pathways. We used NSC-34 cells transiently overexpressing TDP-43A315T or SOD1G93A and assessed cell viability using the WST-8 assay and cytotoxicity using the lactate dehydrogenase (LDH) assay. Results for the representative agents that modulate the expanded endocannabinoid system including N-acyl taurines are shown in this figure, and the other results are summarized in Supplemental Table 6. (A) Protocol of the cell viability assay. (B–E) Effects of compounds targeting expanded endocannabinoid system (B, PF-04457845; C, arachidonoyl ethanolamide [AEA]), and N-acyl taurine in expanded endocannabinoid system (D, N-stearoyl taurine; E, N-palmitoyl taurine), on cell viability. (F and G) Neuroprotective effects of PF-04457845 and N-stearoyl taurine were examined by LDH assays (F, PF-04457845; G, N-stearoyl taurine). (H) Protocol of administration of PF-04457845 on iPSC-derived motor neurons (iPS-MN) derived from 3 sporadic patients with ALS. (I) Analysis of cell morphology by IncuCyte SX5. iPS-MN were captured by phase separation and neurites (purple) and cell clusters (yellow) were automatically recognized by NeuroTrack algorithm. (J) The result of neurite length (N = 3 each from 3 iPS-MN). (K) The result of number of cell clusters (N = 3 each from 3 iPS-MN). (L) The result of area of cell clusters (N = 3 each from 3 iPS-MN). (M) The result of LDH assay (N = 3 each from 3 iPS-MN). For NSC-34 cells, 1-way ANOVA followed by Dunnett’s multiple-comparisons test was performed, with each concentration compared with the baseline condition. For iPSC-derived motor neurons, data were analyzed using a mixed-effects model, with treatment as a fixed effect and iPSC line as a random effect, followed by Dunnett’s multiple-comparisons test. (*P < 0.05, **P < 0.01, ****P < 0.0001). Scale bars: 200 μm. Data are shown as mean ± SEM.

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