Suppr超能文献

乳糖酶-芹菜素水解酶在早期分泌途径中作为一种多结构域膜糖蛋白的转运的结构决定因素。

Structural determinants for transport of lactase phlorizin-hydrolase in the early secretory pathway as a multi-domain membrane glycoprotein.

机构信息

Department of Physiological Chemistry, University of Veterinary Medicine Hannover, Hannover, Germany.

Institute of Physiology and Pathophysiology, Philipps-University Marburg, Marburg, Germany.

出版信息

Biochim Biophys Acta Gen Subj. 2017 Jan;1861(1 Pt A):3119-3128. doi: 10.1016/j.bbagen.2016.10.016. Epub 2016 Oct 21.

Abstract

BACKGROUND

Lactase phlorizin-hydrolase (LPH) is a membrane anchored type I glycoprotein of the intestinal epithelium that is composed of four homologous structural domains. The role of each distinct domain in the intramolecular organization and function of LPH is not completely understood.

METHODS

Here, we analyzed the early events of LPH biosynthesis and trafficking by directed restructuring of the domain compositions.

RESULTS

Removal of domain I (LPH∆1) results in a malfolded ER-localized protein. By contrast, LPH without domain II (LPH∆2) is normally transported along the secretory pathway, but does not dimerize nor is enzymatically active. Interestingly a polypeptide stretch in domain II between L-R exerts an intriguing role in modulating the trafficking behavior of LPH and its biological function. In fact, association of this stretch with transport-competent LPH chimeras results in their ER-arrest or aberrant trafficking. This stretch harbors a unique N-glycosylation site that is responsible for LPH retention in the ER via association with calnexin and facilitates proper folding of domains I and III before ER exit of LPH. Notably, a similar N-glycosylation site is also found in domain IV with comparable effects on the trafficking of LPH-derived molecules.

CONCLUSIONS

Our study provides novel insights into the intramolecular interactions and the sequence of events involved in the folding, dimerization and transport of LPH.

GENERAL SIGNIFICANCE

Elucidation of the structural-functional relevance of the domains in pro-LPH is crucial in unravelling and understanding the molecular basis of carbohydrate malabsorption disorders that are associated with lactase deficiency or lactase malfunction.

摘要

背景

乳糖-植酸钠水解酶(LPH)是肠道上皮的一种膜锚定的 I 型糖蛋白,由四个同源结构域组成。每个不同结构域在 LPH 分子内组织和功能中的作用尚不完全清楚。

方法

在这里,我们通过定向重构结构域组成来分析 LPH 生物合成和运输的早期事件。

结果

去除结构域 I(LPH∆1)会导致错误折叠的内质网定位蛋白。相比之下,没有结构域 II(LPH∆2)的 LPH 正常沿分泌途径运输,但不二聚化也没有酶活性。有趣的是,结构域 II 中 L-R 之间的多肽片段在调节 LPH 的运输行为及其生物学功能方面发挥着有趣的作用。事实上,该片段与具有运输能力的 LPH 嵌合体的结合导致其内质网滞留或异常运输。该片段含有一个独特的 N-糖基化位点,该位点通过与钙连蛋白结合将 LPH 保留在内质网中,并在 LPH 从内质网逸出之前促进结构域 I 和 III 的正确折叠。值得注意的是,结构域 IV 中也存在类似的 N-糖基化位点,对 LPH 衍生分子的运输具有类似的影响。

结论

我们的研究为 LPH 折叠、二聚化和运输过程中的分子内相互作用和事件序列提供了新的见解。

一般意义

阐明前 LPH 中结构域的结构-功能相关性对于阐明和理解与乳糖酶缺乏或乳糖酶功能障碍相关的碳水化合物吸收不良疾病的分子基础至关重要。

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