Scott Kyle, Gadomski Therese, Kozicz Tamas, Morava Eva
Hayward Genetics Center, Tulane University School of Medicine, 1430 Tulane Ave, New Orleans, LA, 70112, USA.
J Inherit Metab Dis. 2014 Jul;37(4):609-17. doi: 10.1007/s10545-014-9720-9. Epub 2014 May 15.
Almost 50 inborn errors of metabolism have been described due to congenital defects in N-linked glycosylation. These phenotypically diverse disorders typically present as clinical syndromes, affecting multiple systems including the central nervous system, muscle function, transport, regulation, immunity, endocrine system, and coagulation. An increasing number of disorders have been discovered using novel techniques that combine glycobiology with next-generation sequencing or use tandem mass spectrometry in combination with molecular gene-hunting techniques. The number of "classic" congenital disorders of glycosylation (CDGs) due to N-linked glycosylation defects is still rising. Eight novel CDGs affecting N-linked glycans were discovered in 2013 alone. Newly discovered genes teach us about the significance of glycosylation in cell-cell interaction, signaling, organ development, cell survival, and mosaicism, in addition to the consequences of abnormal glycosylation for muscle function. We have learned how important glycosylation is in posttranslational modification and how glycosylation defects can imitate recognizable, previously described phenotypes. In many CDG subtypes, patients unexpectedly presented with long-term survival, whereas some others presented with nonsyndromic intellectual disability. In this review, recently discovered N-linked CDGs are described, with a focus on clinical presentations and therapeutic ideas. A diagnostic approach in unsolved N-linked CDG cases with abnormal transferrin screening results is also suggested.
由于N-糖基化的先天性缺陷,已描述了近50种先天性代谢缺陷。这些表型多样的疾病通常表现为临床综合征,影响多个系统,包括中枢神经系统、肌肉功能、转运、调节、免疫、内分泌系统和凝血。使用将糖生物学与下一代测序相结合的新技术,或结合串联质谱与分子基因搜寻技术,发现了越来越多的疾病。由于N-糖基化缺陷导致的“经典”先天性糖基化障碍(CDG)的数量仍在增加。仅在2013年就发现了8种影响N-聚糖的新型CDG。新发现的基因让我们了解了糖基化在细胞间相互作用、信号传导、器官发育、细胞存活和嵌合体中的重要性,以及糖基化异常对肌肉功能的影响。我们已经了解到糖基化在翻译后修饰中的重要性,以及糖基化缺陷如何模仿可识别的、先前描述的表型。在许多CDG亚型中,患者意外地长期存活,而其他一些患者则表现为非综合征性智力残疾。在这篇综述中,描述了最近发现的N-连接CDG,重点是临床表现和治疗思路。还提出了一种对转铁蛋白筛查结果异常的未解决N-连接CDG病例的诊断方法。