Xu Manming, Jiang Jiwen, Gao Lin, Alyemni Saleh O, Haider Shozeb
UCL School of Pharmacy, University College London, London WC1N 1AX, U.K.
University of Tabuk (PFSCBR), Tabuk 71491, Saudi Arabia.
ACS Pharmacol Transl Sci. 2025 May 15;8(6):1778-1790. doi: 10.1021/acsptsci.5c00209. eCollection 2025 Jun 13.
Glucose transporters (GLUTs) play critical roles in cellular energy homeostasis and substrate-specific transport. Dysfunctional mutations can cause GLUT1 deficiency syndrome, and excessive expression of GLUT1 is linked to cancer progression, while abnormal regulation of urate transport by GLUT9 is associated with hyperuricemia and gout. In this study, machine-learning-driven molecular dynamics simulations have been employed to investigate the mechanistic insights into the substrate egress pathways of GLUT1 and GLUT9, including the inhibition mechanism of GLUT9 by apigenin. Our findings reveal that intracellular helices play a crucial role in facilitating the transition from inward-closed to -open conformations in both transporters. Additionally, aromatic residues, F and W in GLUT1 and W and F in GLUT9, are identified as key mediators of conformational changes. Analysis of substrate exit pathways provides mechanistic insights into transport profiles and aligns with clinically observed mutations. Furthermore, the inhibitory effect of apigenin on GLUT9 is shown to arise from steric hindrance due to increased substrate size rather than stable interactions. These findings enhance our understanding of GLUT transporter dynamics and highlight the potential of targeting substrate pathways for therapeutic intervention.
葡萄糖转运蛋白(GLUTs)在细胞能量稳态和底物特异性转运中发挥着关键作用。功能失调的突变可导致GLUT1缺乏综合征,而GLUT1的过度表达与癌症进展相关,同时GLUT9对尿酸转运的异常调节与高尿酸血症和痛风有关。在本研究中,采用机器学习驱动的分子动力学模拟来研究GLUT1和GLUT9底物流出途径的机制,包括芹菜素对GLUT9的抑制机制。我们的研究结果表明,细胞内螺旋在促进两种转运蛋白从内向封闭构象向内向开放构象的转变中起着关键作用。此外,芳香族残基,GLUT1中的F和W以及GLUT9中的W和F,被确定为构象变化的关键介质。对底物流出途径的分析为转运特征提供了机制见解,并与临床观察到的突变相符。此外,芹菜素对GLUT9的抑制作用被证明是由于底物尺寸增加导致的空间位阻,而非稳定的相互作用。这些发现加深了我们对GLUT转运蛋白动力学的理解,并突出了靶向底物途径进行治疗干预的潜力。