Tian Jiaqi, Jia Wenjuan, Dong Haibin, Luo Xialin, Gong Lei, Ren Yanxin, Zhong Lin, Wang Jianxun, Shi Danfeng
School of Medical Informatics and Engineering, Xuzhou Medical University, Xuzhou 221140, Jiangsu Province, China.
Department of Cardiology, Yantai Yuhuangding Hospital, Yantai 264000, China.
J Chem Inf Model. 2025 Jan 13;65(1):390-401. doi: 10.1021/acs.jcim.4c02010. Epub 2024 Dec 31.
The β-1,4 galactosylation catalyzed by β-1,4 galactosyltransferases (β4Gal-Ts) is not only closely associated with diverse physiological and pathological processes in humans but also widely applied in the -glycan modification of protein glycoengineering. The loop-closing process of β4Gal-Ts is an essential intermediate step intervening in the binding events of donor substrate (UDP-Gal/Mn) and acceptor substrate during its catalytic cycle, with a significant impact on the galactosylation activities. However, the molecular mechanisms in regulating loop-closing dynamics are not entirely clear. Here, we construct Markov state models (MSMs) based on approximately 20 μs of all-atom molecular dynamics simulations to explore the loop-closing dynamics for β-1,4 galactosyltransferase 1 (β4Gal-T1). Our MSM reveals five key metastable states of β4Gal-T1 upon substrate binding, indicating that the entire conformational transition occurs on a time scale of ∼10 μs. Moreover, a regulatory mechanism involving six conserved residues (R187, H190, F222, W310, I341, and D346) among β4Gal-Ts is validated to account for the loop-closing dynamics of the C-loop and W-loop by site-directed mutagenesis and enzymatic activity assays, exhibiting high consistency with our computational predictions. Overall, our research proposes detailed atomic-level insight into the loop-closing dynamics of the C-loop and W-loop on β4Gal-T1, contributing to a deeper understanding of catalytic mechanisms of β-1,4 galactosylation.
由β-1,4半乳糖基转移酶(β4Gal-Ts)催化的β-1,4半乳糖基化不仅与人类多种生理和病理过程密切相关,而且在蛋白质糖工程的聚糖修饰中也有广泛应用。β4Gal-Ts的环闭合过程是其催化循环中介导供体底物(UDP-Gal/Mn)和受体底物结合事件的关键中间步骤,对半乳糖基化活性有重大影响。然而,调节环闭合动力学的分子机制尚不完全清楚。在此,我们基于约20微秒的全原子分子动力学模拟构建马尔可夫状态模型(MSMs),以探索β-1,4半乳糖基转移酶1(β4Gal-T1)的环闭合动力学。我们的MSM揭示了β4Gal-T1在底物结合时的五个关键亚稳态,表明整个构象转变发生在约10微秒的时间尺度上。此外,通过定点突变和酶活性测定验证了β4Gal-Ts中六个保守残基(R187、H190、F222、W310、I341和D346)参与的调节机制可解释C环和W环的环闭合动力学,与我们的计算预测高度一致。总体而言,我们的研究提出了对β4Gal-T1上C环和W环环闭合动力学的详细原子水平见解,有助于更深入地理解β-1,4半乳糖基化的催化机制。