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脊椎动物氨基糖的 N-乙酰化基团代谢:α2-8 连接的 N-乙酰神经氨酸对酶切的抗性。

Metabolism of vertebrate amino sugars with N-glycolyl groups: resistance of α2-8-linked N-glycolylneuraminic acid to enzymatic cleavage.

机构信息

Department of Medicine, Glycobiology Research and Training Center, University of California San Diego, La Jolla, California 92093-0687, USA.

出版信息

J Biol Chem. 2012 Aug 17;287(34):28917-31. doi: 10.1074/jbc.M112.365056. Epub 2012 Jun 12.

Abstract

The sialic acid (Sia) N-acetylneuraminic acid (Neu5Ac) and its hydroxylated derivative N-glycolylneuraminic acid (Neu5Gc) differ by one oxygen atom. CMP-Neu5Gc is synthesized from CMP-Neu5Ac, with Neu5Gc representing a highly variable fraction of total Sias in various tissues and among different species. The exception may be the brain, where Neu5Ac is abundant and Neu5Gc is reported to be rare. Here, we confirm this unusual pattern and its evolutionary conservation in additional samples from various species, concluding that brain Neu5Gc expression has been maintained at extremely low levels over hundreds of millions of years of vertebrate evolution. Most explanations for this pattern do not require maintaining neural Neu5Gc at such low levels. We hypothesized that resistance of α2-8-linked Neu5Gc to vertebrate sialidases is the detrimental effect requiring the relative absence of Neu5Gc from brain. This linkage is prominent in polysialic acid (polySia), a molecule with critical roles in vertebrate neural development. We show that Neu5Gc is incorporated into neural polySia and does not cause in vitro toxicity. Synthetic polymers of Neu5Ac and Neu5Gc showed that mammalian and bacterial sialidases are much less able to hydrolyze α2-8-linked Neu5Gc at the nonreducing terminus. Notably, this difference was not seen with acid-catalyzed hydrolysis of polySias. Molecular dynamics modeling indicates that differences in the three-dimensional conformation of terminal saccharides may partly explain reduced enzymatic activity. In keeping with this, polymers of N-propionylneuraminic acid are sensitive to sialidases. Resistance of Neu5Gc-containing polySia to sialidases provides a potential explanation for the rarity of Neu5Gc in the vertebrate brain.

摘要

唾液酸(Sia)的 N-乙酰神经氨酸(Neu5Ac)和其羟化衍生物 N-羟乙酰神经氨酸(Neu5Gc)仅相差一个氧原子。CMP-Neu5Gc 由 CMP-Neu5Ac 合成,Neu5Gc 是各种组织和不同物种中总 Sia 的高度可变部分。但大脑可能是个例外,因为大脑中 Neu5Ac 含量丰富,而 Neu5Gc 含量则很少。在此,我们通过来自不同物种的更多样本确认了这种不同寻常的模式及其在进化上的保守性,得出结论:脑 Neu5Gc 表达在脊椎动物进化的数亿年中一直保持在极低水平。这种模式的大多数解释并不需要将神经 Neu5Gc 维持在如此低的水平。我们假设,α2-8 连接的 Neu5Gc 对脊椎动物唾液酸酶的抗性是需要将 Neu5Gc 从大脑中相对去除的有害影响。这种连接在多唾液酸(polySia)中很突出,polySia 是一种在脊椎动物神经发育中具有关键作用的分子。我们发现 Neu5Gc 被掺入神经多唾液酸中,且不会导致体外毒性。Neu5Ac 和 Neu5Gc 的合成聚合物表明,哺乳动物和细菌唾液酸酶对非还原末端的α2-8 连接的 Neu5Gc 的水解能力要低得多。值得注意的是,在酸性条件下多唾液酸的水解中没有观察到这种差异。分子动力学模拟表明,末端糖的三维构象的差异可能部分解释了酶活性的降低。与这一结果一致,N-丙酰神经氨酸聚合物对唾液酸酶敏感。含 Neu5Gc 的多唾液酸对唾液酸酶的抗性为脊椎动物大脑中 Neu5Gc 的稀有性提供了潜在的解释。

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