Department of Molecular and Structural Biochemistry, North Carolina State University, Raleigh, North Carolina.
Am J Physiol Cell Physiol. 2022 Jun 1;322(6):C1201-C1213. doi: 10.1152/ajpcell.00130.2022. Epub 2022 Apr 20.
Hyaluronan is a versatile macromolecule capable of an exceptional range of functions from cushioning and hydration to dynamic signaling in development and disease. Because of its critical roles, hyaluronan production is regulated at multiple levels including epigenetic, transcriptional, and posttranslational control of the three hyaluronan synthase (HAS) enzymes. Precursor availability can dictate the rate and amount of hyaluronan synthesized and shed by the cells producing it. However, the nucleotide-activated sugar substrates for hyaluronan synthesis by HAS also participate in exquisitely fine-tuned cross-talking pathways that intersect with glycosaminoglycan production and central carbohydrate metabolism. Multiple UDP-sugars have alternative metabolic fates and exhibit coordinated and reciprocal allosteric control of enzymes within their biosynthetic pathways to preserve appropriate precursor ratios for accurate partitioning among downstream products, while also sensing and maintaining energy homeostasis. Since the dysregulation of nucleotide sugar and hyaluronan synthesis is associated with multiple pathologies, these pathways offer opportunities for therapeutic intervention. Recent structures of several key rate-limiting enzymes in the UDP-sugar synthesis pathways have offered new insights to the overall regulation of hyaluronan production by precursor fate decisions. The details of UDP-sugar control and the structural basis for underlying mechanisms are discussed in this review.
透明质酸是一种多功能的大分子,能够在发育和疾病中发挥从缓冲和水合作用到动态信号传递的多种功能。由于其关键作用,透明质酸的产生受到多种水平的调控,包括透明质酸合成酶 (HAS) 三种酶的表观遗传、转录和翻译后调控。前体的可用性可以决定产生它的细胞合成和释放透明质酸的速度和数量。然而,HAS 合成透明质酸的核苷酸激活糖底物也参与了精细的交叉对话途径,这些途径与糖胺聚糖的产生和中心碳水化合物代谢相交。多种 UDP-糖具有替代的代谢命运,并表现出对其生物合成途径中酶的协调和反向变构控制,以保持适当的前体比例,以便在下游产物之间进行准确分配,同时还能感应和维持能量平衡。由于核苷酸糖和透明质酸合成的失调与多种病理有关,这些途径为治疗干预提供了机会。最近 UDP-糖合成途径中几个关键限速酶的结构为通过前体命运决定来全面调控透明质酸的产生提供了新的见解。本文讨论了 UDP-糖的控制细节以及潜在机制的结构基础。