对分枝杆菌细胞壁阿拉伯聚糖末端阿拉伯糖基化生物合成的结构研究

Yaqi Liu, Chelsea M. Brown, Satchal Erramilli, Yi-Chia Su, Po-Sen Tseng, Yu-Jen Wang, Nam Ha Duong, Piotr Tokarz, Brian Kloss, Cheng-Ruei Han, Hung-Yu Chen, Jose Rodrigues, Margarida Archer, Todd L. Lowary, Anthony A. Kossiakoff, Phillip J. Stansfeld, Rie Nygaard, Filippo Mancia
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引用次数: 0

摘要

耐药菌株的出现加剧了由结核分枝杆菌(Mtb)引起的结核病所带来的全球性挑战。Mtb致病性的核心是其复杂的细胞包膜,它是抵御免疫系统和药物攻击的屏障。这种包膜的两个关键成分阿拉伯半乳聚糖(AG)和脂质阿拉伯甘露聚糖(LAM)是复杂的多糖,含有对细胞壁结构和功能完整性非常重要的整体阿拉伯聚糖结构域。阿拉伯呋喃糖基转移酶 AftB 通过催化添加 β-(1→2)-linked 末端阿拉伯呋喃糖残基来终止这些阿拉伯聚糖结构域的合成。在此,我们展示了分枝杆菌 AftB 的低温电子显微镜结构,该结构分别以 2.9 Å 和 3.4 Å 的分辨率测定了 AftB 的 apo 和供体底物类似物结合形式。我们的结构显示,AftB 有一个 GT-C 折叠跨膜 (TM) 结构域,由 11 个 TM 螺旋和一个外质帽结构域组成。AftB 有一个不规则的管状空腔,它连接着两个拟议的底物结合位点。通过整合结构分析、生化试验和分子动力学模拟,我们阐明了 AftB 反应机制的分子基础,并提出了一个催化模型。
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Structural insights into terminal arabinosylation biosynthesis of the mycobacterial cell wall arabinan
The emergence of drug-resistant strains exacerbates the global challenge of tuberculosis caused by Mycobacterium tuberculosis (Mtb). Central to the pathogenicity of Mtb is its complex cell envelope, which serves as a barrier against both immune system and pharmacological attacks. Two key components of this envelope, arabinogalactan (AG) and lipoarabinomannan (LAM) are complex polysaccharides that contain integral arabinan domains important for cell wall structural and functional integrity. The arabinofuranosyltransferase AftB terminates the synthesis of these arabinan domains by catalyzing the addition of the addition of β-(1→2)-linked terminal arabinofuranose residues. Here, we present the cryo-EM structures of Mycobacterium chubuense AftB in its apo and donor substrate analog-bound form, determined to 2.9 Å and 3.4 Å resolution, respectively. Our structures reveal that AftB has a GT-C fold transmembrane (TM) domain comprised of eleven TM helices and a periplasmic cap domain. AftB has an irregular tube-shaped cavity that bridges the two proposed substrate binding sites. By integrating structural analysis, biochemical assays, and molecular dynamics simulations, we elucidate the molecular basis of the reaction mechanism of AftB and propose a model for catalysis.
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