Hurtaux Thomas, Sfihi-Loualia Ghenima, Brissonnet Yoan, Bouckaert Julie, Mallet Jean-Maurice, Sendid Boualem, Delplace Florence, Fabre Emeline, Gouin Sébastien G, Guérardel Yann
UMR 8576-UGSF-Unité de Glycobiologie Structurale et Fonctionnelle, Univ. Lille, CNRS, F 59000 Lille, France; CHU Lille, U995-LIRIC-Lille Inflammation Research International Center, Inserm, F-59000 Lille, France.
UMR 8576-UGSF-Unité de Glycobiologie Structurale et Fonctionnelle, Univ. Lille, CNRS, F 59000 Lille, France.
Carbohydr Res. 2016 Jun 24;429:123-7. doi: 10.1016/j.carres.2016.01.004. Epub 2016 Jan 22.
β-1,2-Linked oligomannosides substitute the cell wall of numerous yeast species. Several of those including Candida albicans may cause severe infections associated with high rates of morbidity and mortality, especially in immunocompromised patients. β-1,2-Mannosides are known to be involved in the pathogenic process and to elicit an immune response from the host. In C. albicans, the synthesis of β-mannosides is under the control of a family of nine genes coding for putative β-mannosyltransferases. Two of them, CaBmt1 and CaBmt3, have been shown to initiate and prime the elongation of the β-mannosides on the cell-wall mannan core. In the present study, we have assessed the modulating activities of monovalent and multivalent iminosugar analogs on these enzymes in order to control the enzymatic bio-synthesis of β-mannosides. We have identified a monovalent deoxynojirimycin (DNJ) derivative that inhibits the CaBmt1-catalyzed initiating activity, and mono-, tetra- and polyvalent deoxymannojirimycin (DMJ) that modulate the CaBmt1 activity toward the formation of a single major product. Analysis of the aggregating properties of the multivalent iminosugars showed their ability to elicit clusterization of both CaBmt1 and CaBmt3, without affecting their activity. These results suggest promising roles for multivalent iminosugars as controlling agents for the biosynthesis of β-1,2 mannosides and for monovalent DNJ derivative as a first target for the design of future β-mannosyltransferase inhibitors.
β-1,2-连接的寡甘露糖苷替代了许多酵母菌种的细胞壁。其中包括白色念珠菌在内的几种酵母可能会引发与高发病率和死亡率相关的严重感染,尤其是在免疫功能低下的患者中。已知β-1,2-甘露糖苷参与致病过程并引发宿主的免疫反应。在白色念珠菌中,β-甘露糖苷的合成受一个由九个基因组成的家族控制,这些基因编码推定的β-甘露糖基转移酶。其中两个基因,CaBmt1和CaBmt3,已被证明可启动并引导细胞壁甘露聚糖核心上β-甘露糖苷的延伸。在本研究中,我们评估了单价和多价亚氨基糖类似物对这些酶的调节活性,以控制β-甘露糖苷的酶促生物合成。我们鉴定出一种抑制CaBmt1催化起始活性的单价脱氧野尻霉素(DNJ)衍生物,以及调节CaBmt1活性以形成单一主要产物的单价、四价和多价脱氧甘露野尻霉素(DMJ)。对多价亚氨基糖聚集特性的分析表明,它们能够引发CaBmt1和CaBmt3的聚集,而不影响其活性。这些结果表明,多价亚氨基糖有望作为β-1,2-甘露糖苷生物合成的控制剂,而单价DNJ衍生物有望作为未来β-甘露糖基转移酶抑制剂设计的首个靶点。