Deregulated Sphingolipid Metabolism and Membrane Organization in Neurodegenerative Disorders

被引:0
|
作者
Marco Piccinini
Federica Scandroglio
Simona Prioni
Barbara Buccinnà
Nicoletta Loberto
Massimo Aureli
Vanna Chigorno
Elisa Lupino
Giovanni DeMarco
Annarosa Lomartire
Maria Teresa Rinaudo
Sandro Sonnino
Alessandro Prinetti
机构
[1] University of Milan,Center of Excellence on Neurodegenerative Diseases, Department of Medical Chemistry, Biochemistry and Biotechnology
[2] University of Turin,Section of Biochemistry, Department of Medicine and Experimental Oncology
[3] Università degli Studi di Milano,Dipartimento di Chimica, Biochimica e Biotecnologie per la Medicina
来源
Molecular Neurobiology | 2010年 / 41卷
关键词
Sphingolipids; Sphingomyelin; Glycosphingolipids; Gangliosides; Alzheimer’s disease; Sphingolipid storage diseases; Parkinson’s disease; Prion diseases;
D O I
暂无
中图分类号
学科分类号
摘要
Sphingolipids are polar membrane lipids present as minor components in eukaryotic cell membranes. Sphingolipids are highly enriched in nervous cells, where they exert important biological functions. They deeply affect the structural and geometrical properties and the lateral order of cellular membranes, modulate the function of several membrane-associated proteins, and give rise to important intra- and extracellular lipid mediators. Sphingolipid metabolism is regulated along the differentiation and development of the nervous system, and the expression of a peculiar spatially and temporarily regulated sphingolipid pattern is essential for the maintenance of the functional integrity of the nervous system: sphingolipids in the nervous system participate to several signaling pathways controlling neuronal survival, migration, and differentiation, responsiveness to trophic factors, synaptic stability and synaptic transmission, and neuron–glia interactions, including the formation and stability of central and peripheral myelin. In several neurodegenerative diseases, sphingolipid metabolism is deeply deregulated, leading to the expression of abnormal sphingolipid patterns and altered membrane organization that participate to several events related to the pathogenesis of these diseases. The most impressive consequence of this deregulation is represented by anomalous sphingolipid–protein interactions that are at least, in part, responsible for the misfolding events that cause the fibrillogenic and amyloidogenic processing of disease-specific protein isoforms, such as amyloid β peptide in Alzheimer’s disease, huntingtin in Huntington’s disease, α-synuclein in Parkinson’s disease, and prions in transmissible encephalopathies. Targeting sphingolipid metabolism represents today an underexploited but realistic opportunity to design novel therapeutic strategies for the intervention in these diseases.
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页码:314 / 340
页数:26
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