Suppr超能文献

LacdiNAc 合成酶 B4GALNT3 具有独特的 PA14 结构域,能抑制 N-糖链加帽。

LacdiNAc synthase B4GALNT3 has a unique PA14 domain and suppresses N-glycan capping.

机构信息

Institute for Glyco-core Research (iGCORE), Gifu University, Gifu, Japan.

Department of Molecular Immunology, Research Institute for Microbial Diseases, Osaka University, Suita, Japan; Laboratory of Molecular Immunology, Immunology Frontier Research Center (IFReC), Osaka University, Suita, Japan.

出版信息

J Biol Chem. 2024 Jul;300(7):107450. doi: 10.1016/j.jbc.2024.107450. Epub 2024 Jun 4.

Abstract

Structural variation of N-glycans is essential for the regulation of glycoprotein functions. GalNAcβ1-4GlcNAc (LacdiNAc or LDN), a unique subterminal glycan structure synthesized by B4GALNT3 or B4GALNT4, is involved in the clearance of N-glycoproteins from the blood and maintenance of cell stemness. Such regulation of glycoprotein functions by LDN is largely different from that by the dominant subterminal structure, N-acetyllactosamine (Galβ1-4GlcNAc, LacNAc). However, the mechanisms by which B4GALNT activity is regulated and how LDN plays different roles from LacNAc remain unclear. Here, we found that B4GALNT3 and four have unique domain organization containing a noncatalytic PA14 domain, which is a putative glycan-binding module. A mutant lacking this domain dramatically decreases the activity toward various substrates, such as N-glycan, O-GalNAc glycan, and glycoproteins, indicating that this domain is essential for enzyme activity and forms part of the catalytic region. In addition, to clarify the mechanism underlying the functional differences between LDN and LacNAc, we examined the effects of LDN on the maturation of N-glycans, focusing on the related glycosyltransferases upstream and downstream of B4GALNT. We revealed that, unlike LacNAc synthesis, prior formation of bisecting GlcNAc in N-glycan almost completely inhibits LDN synthesis by B4GALNT3. Moreover, the presence of LDN negatively impacted the actions of many glycosyltransferases for terminal modifications, including sialylation, fucosylation, and human natural killer-1 synthesis. These findings demonstrate that LDN has significant impacts on N-glycan maturation in a completely different way from LacNAc, which could contribute to obtaining a comprehensive overview of the system regulating complex N-glycan biosynthesis.

摘要

N-糖链结构的变化对于糖蛋白功能的调节至关重要。GalNAcβ1-4GlcNAc(乳糖-N-新四糖或 LDN)是 B4GALNT3 或 B4GALNT4 合成的独特末端糖链结构,参与 N-糖蛋白从血液中的清除和细胞干性的维持。LDN 对糖蛋白功能的这种调节在很大程度上不同于主导末端结构 N-乙酰乳糖胺(Galβ1-4GlcNAc,LacNAc)。然而,B4GALNT 活性的调节机制以及 LDN 如何发挥与 LacNAc 不同的作用仍不清楚。在这里,我们发现 B4GALNT3 和 B4GALNT4 具有独特的结构域组织,包含一个非催化的 PA14 结构域,这是一个假定的聚糖结合模块。缺乏这个结构域的突变体显著降低了对各种底物(如 N-聚糖、O-GalNAc 聚糖和糖蛋白)的活性,表明这个结构域对于酶活性是必不可少的,并构成催化区域的一部分。此外,为了阐明 LDN 和 LacNAc 之间功能差异的机制,我们研究了 LDN 对 N-糖链成熟的影响,重点关注 B4GALNT 上下游的相关糖基转移酶。我们揭示了与 LacNAc 合成不同的是,N-聚糖中双分支 GlcNAc 的先形成几乎完全抑制了 B4GALNT3 对 LDN 的合成。此外,LDN 的存在对许多末端修饰的糖基转移酶的作用产生负面影响,包括唾液酸化、岩藻糖化和人自然杀伤-1 的合成。这些发现表明,LDN 对 N-糖链成熟的影响与 LacNAc 完全不同,这可能有助于全面了解调节复杂 N-糖链生物合成的系统。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9d6b/11254600/c08ff8a5c766/gr1.jpg

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验