Clinical and genetic research links altered cholesterol metabolism with ALS development and progression, yet pinpointing specific pathomechanisms remain challenging. We investigated how cholesterol dysmetabolism interacts with protein aggregation, demyelination, and neuronal loss in ALS. Bulk RNAseq transcriptomics showed decreased cholesterol biosynthesis and increased cholesterol export in ALS mouse models (GA-Nes, GA-Camk2a GA-CFP, rNLS8) and patient samples (spinal cord), suggesting an adaptive response to cholesterol overload. Consequently, we assessed the efficacy of the cholesterol-binding drug 2-hydroxypropyl-β-cyclodextrin (CD) in a fast-progressing C9orf72 ALS mouse model with extensive poly-GA expression and myelination deficits. CD treatment normalized cholesteryl ester levels, lowered neurofilament light chain levels, and prolonged lifespan in female but not male GA-Nes mice, without impacting poly-GA aggregates. Single nucleus transcriptomics indicated that CD primarily affected oligodendrocytes, significantly restored myelin gene expression, increased density of myelinated axons, inhibited the disease-associated oligodendrocyte response, and downregulated the lipid-associated genes Plin4 and ApoD. These results suggest that reducing excess free cholesterol in the CNS could be a viable ALS treatment strategy.
Correction of dysregulated lipid metabolism normalizes gene expression in oligodendrocytes and prolongs lifespan in female poly-GA C9orf72 mice.
纠正脂质代谢紊乱可使少突胶质细胞中的基因表达正常化,并延长雌性 poly-GA C9orf72 小鼠的寿命
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作者:Rezaei Ali, Kocsis-Jutka Virág, Gunes Zeynep I, Zeng Qing, Kislinger Georg, Bauernschmitt Franz, Isilgan Huseyin Berkcan, Parisi Laura R, Kaya TuÄberk, Franzenburg Sören, Koppenbrink Jonas, Knogler Julia, Arzberger Thomas, Farny Daniel, Nuscher Brigitte, Katona Eszter, Dhingra Ashutosh, Yang Chao, Gouna Garyfallia, LaClair Katherine D, Janjic Aleksandar, Enard Wolfgang, Zhou Qihui, Hagan Nellwyn, Ofengeim Dimitry, Beltrán Eduardo, Gokce Ozgun, Simons Mikael, Liebscher Sabine, Edbauer Dieter
| 期刊: | Nature Communications | 影响因子: | 15.700 |
| 时间: | 2025 | 起止号: | 2025 Apr 11; 16(1):3442 |
| doi: | 10.1038/s41467-025-58634-4 | 研究方向: | 代谢、细胞生物学 |
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