Impact of N-Glycosylation on Protein Structure and Dynamics Linked to Enzymatic C–H Activation in the M. oryzae Lipoxygenase

IF 2.9 3区 生物学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY Biochemistry Biochemistry Pub Date : 2024-05-01 DOI:10.1021/acs.biochem.4c00109
Chris Whittington, Ajay Sharma, S. Gage Hill, Anthony T. Iavarone, Brian M. Hoffman and Adam R. Offenbacher*, 
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Abstract

Lipoxygenases (LOXs) from pathogenic fungi are potential therapeutic targets for defense against plant and select human diseases. In contrast to the canonical LOXs in plants and animals, fungal LOXs are unique in having appended N-linked glycans. Such important post-translational modifications (PTMs) endow proteins with altered structure, stability, and/or function. In this study, we present the structural and functional outcomes of removing or altering these surface carbohydrates on the LOX from the devastating rice blast fungus, M. oryzae, MoLOX. Alteration of the PTMs did notinfluence the active site enzyme–substrate ground state structures as visualized by electron–nuclear double resonance (ENDOR) spectroscopy. However, removal of the eight N-linked glycans by asparagine-to-glutamine mutagenesis nonetheless led to a change in substrate selectivity and an elevated activation energy for the reaction with substrate linoleic acid, as determined by kinetic measurements. Comparative hydrogen–deuterium exchange mass spectrometry (HDX-MS) analysis of wild-type and Asn-to-Gln MoLOX variants revealed a regionally defined impact on the dynamics of the arched helix that covers the active site. Guided by these HDX results, a single glycan sequon knockout was generated at position 72, and its comparative substrate selectivity from kinetics nearly matched that of the Asn-to-Gln variant. The cumulative data from model glyco-enzyme MoLOX showcase how the presence, alteration, or removal of even a single N-linked glycan can influence the structural integrity and dynamics of the protein that are linked to an enzyme’s catalytic proficiency, while indicating that extensive glycosylation protects the enzyme during pathogenesis by protecting it from protease degradation.

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N-糖基化对蛋白结构和动力学的影响与 M. oryzae 脂氧合酶的酶促 C-H 活化有关
病原真菌中的脂氧合酶 (LOX) 是预防植物和某些人类疾病的潜在治疗靶标。与植物和动物中的典型 LOX 不同,真菌 LOX 具有独特的附加 N-连接聚糖。这种重要的翻译后修饰(PTM)使蛋白质的结构、稳定性和/或功能发生改变。在本研究中,我们介绍了去除或改变毁灭性稻瘟病真菌 M. oryzae 的 LOX(MoLOX)表面碳水化合物的结构和功能结果。通过电子核双共振(ENDOR)光谱观察,PTMs 的改变并不影响活性位点酶-底物基态结构。然而,通过天冬酰胺-谷氨酰胺诱变去除八个 N-连接聚糖后,底物选择性发生了变化,而且通过动力学测定,与底物亚油酸反应的活化能升高。对野生型和Asn-to-Gln MoLOX变体进行的氢-氘交换质谱(HDX-MS)比较分析表明,对覆盖活性位点的拱形螺旋的动力学产生了区域性影响。在这些 HDX 结果的指导下,在第 72 位产生了一个单糖序列敲除,其从动力学上比较底物选择性几乎与 Asn-Gln 变体相匹配。模型糖基化酶 MoLOX 的累积数据展示了即使是单个 N-连接聚糖的存在、改变或去除也会影响蛋白质的结构完整性和动态性,而这与酶的催化能力有关,同时表明广泛的糖基化在致病过程中通过保护酶免受蛋白酶降解而起到保护作用。
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来源期刊
Biochemistry Biochemistry
Biochemistry Biochemistry 生物-生化与分子生物学
CiteScore
5.50
自引率
3.40%
发文量
336
审稿时长
1-2 weeks
期刊介绍: Biochemistry provides an international forum for publishing exceptional, rigorous, high-impact research across all of biological chemistry. This broad scope includes studies on the chemical, physical, mechanistic, and/or structural basis of biological or cell function, and encompasses the fields of chemical biology, synthetic biology, disease biology, cell biology, nucleic acid biology, neuroscience, structural biology, and biophysics. In addition to traditional Research Articles, Biochemistry also publishes Communications, Viewpoints, and Perspectives, as well as From the Bench articles that report new methods of particular interest to the biological chemistry community.
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