Department of Cellular and Molecular Medicine, Faculty of Health Sciences, Copenhagen Center for Glycomics, University of Copenhagen, DK-2200 Copenhagen, Denmark.
Department of Biochemistry and Molecular Biophysics, Columbia University, New York, NY 10032.
Proc Natl Acad Sci U S A. 2017 Oct 17;114(42):11163-11168. doi: 10.1073/pnas.1708319114. Epub 2017 Oct 2.
The cadherin (cdh) superfamily of adhesion molecules carry O-linked mannose (O-Man) glycans at highly conserved sites localized to specific β-strands of their extracellular cdh (EC) domains. These O-Man glycans do not appear to be elongated like O-Man glycans found on α-dystroglycan (α-DG), and we recently demonstrated that initiation of cdh/protocadherin (pcdh) O-Man glycosylation is not dependent on the evolutionary conserved POMT1/POMT2 enzymes that initiate O-Man glycosylation on α-DG. Here, we used a CRISPR/Cas9 genetic dissection strategy combined with sensitive and quantitative O-Man glycoproteomics to identify a homologous family of four putative protein O-mannosyltransferases encoded by the genes, which were found to be imperative for cdh and pcdh O-Man glycosylation. KO of all four genes in HEK293 cells resulted in specific loss of cdh and pcdh O-Man glycosylation, whereas combined KO of and resulted in selective loss of O-Man glycans on specific β-strands of EC domains, suggesting that each isoenzyme serves a different function. In addition, O-Man glycosylation of IPT/TIG domains of plexins and hepatocyte growth factor receptor was not affected in TMTC KO cells, suggesting the existence of yet another O-Man glycosylation machinery. Our study demonstrates that regulation of O-mannosylation in higher eukaryotes is more complex than envisioned, and the discovery of the functions of TMTCs provide insight into cobblestone lissencephaly caused by deficiency in TMTC3.
钙黏蛋白(cdh)黏附分子超家族在其细胞外 cdh(EC)结构域的特定 β-链上高度保守的位点携带 O-连接甘露糖(O-Man)聚糖。这些 O-Man 聚糖似乎不像α- 连接甘露糖聚糖(α-DG)上发现的 O-Man 聚糖那样被拉长,我们最近证明,cdh/原钙黏蛋白(pcdh)O-Man 糖基化的起始并不依赖于启动α-DG 上 O-Man 糖基化的进化保守的 POMT1/POMT2 酶。在这里,我们使用了 CRISPR/Cas9 基因敲除策略,结合敏感和定量的 O-Man 糖组学,鉴定出编码 基因的四个假定的蛋白 O-甘露糖基转移酶同源家族,它们对于 cdh 和 pcdh O-Man 糖基化是必不可少的。在 HEK293 细胞中敲除所有四个 基因导致 cdh 和 pcdh O-Man 糖基化的特异性丧失,而 和 的联合敲除导致 EC 结构域特定 β-链上 O-Man 聚糖的选择性丧失,表明每个同工酶具有不同的功能。此外,在 TMTC KO 细胞中,IPT/TIG 结构域的 plexin 和肝细胞生长因子受体的 O-Man 糖基化不受影响,这表明存在另一种 O-Man 糖基化机制。我们的研究表明,高等真核生物中 O-甘露糖基化的调控比想象的要复杂,TMTC 的功能发现为 TMTC3 缺乏引起的鹅卵石样无脑回提供了深入的了解。