Formation of keto-type ceramides in palmoplantar keratoderma based on biallelic KDSR mutations in patients

鞘脂 生物 神经酰胺 角化病 角质层 鱼鳞病 突变 生物化学 遗传学 角化过度 基因 细胞凋亡
作者
Robert Pilz,Lukáš Opálka,Adam Majcher,Elisabeth Grimm,Lionel Van Maldergem,Silvia Mihalceanu,Knut Schäkel,Alexander Enk,F. Aubin,Anne‐Claire Bursztejn,Elise Brischoux‐Boucher,Judith Fischer,Roger Sandhoff
出处
期刊:Human Molecular Genetics [Oxford University Press]
卷期号:31 (7): 1105-1114 被引量:8
标识
DOI:10.1093/hmg/ddab309
摘要

Functional skin barrier requires sphingolipid homeostasis; 3-ketodihydrosphingosine reductase or KDSR is a key enzyme of sphingolipid anabolism catalyzing the reduction of 3-ketodihydrosphingosine to sphinganine. Biallelic mutations in the KDSR gene may cause erythrokeratoderma variabilis et progressive-4, later specified as PERIOPTER syndrome, emphasizing a characteristic periorifical and ptychotropic erythrokeratoderma. We report another patient with compound heterozygous mutations in KDSR, born with generalized harlequin ichthyosis, which progressed into palmoplantar keratoderma. To determine whether patient-associated KDSR mutations lead to KDSR substrate accumulation and/or unrecognized sphingolipid downstream products in stratum corneum (SC), we analyzed lipids of this and previously published patients with non-identical biallelic mutations in KDSR. In SC of both patients, we identified 'hitherto' unobserved skin ceramides with an unusual keto-type sphingoid base in lesional and non-lesional areas, which accounted for up to 10% of the measured ceramide species. Furthermore, an overall shorter mean chain length of free and bound sphingoid bases was observed-shorter mean chain length of free sphingoid bases was also observed in lesional psoriasis vulgaris SC, but not generally in lesional atopic dermatitis SC. Formation of keto-type ceramides is probably due to a bottle neck in metabolic flux through KDSR and a bypass by ceramide synthases, which highlights the importance of tight intermediate regulation during sphingolipid anabolism and reveals substrate deprivation as potential therapy.

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