Škyvarová Daniela, Brunoni Federica, Žukauskaitė Asta, Pěnčík Aleš
Department of Chemical Biology, Faculty of Science, Palacký University, Olomouc, Czech Republic.
Laboratory of Growth Regulators, Faculty of Science, Palacký University, Olomouc, Czech Republic.
Physiol Plant. 2025 Mar-Apr;177(2):e70170. doi: 10.1111/ppl.70170.
Auxin glycosylation plays a fundamental role in the regulation of auxin homeostasis, activity, and transport, contributing to the dynamic control of plant growth and development. Glycosylation enhances auxin stability, solubility, and storage capacity, serving as a key mechanism for both temporary inactivation and long-term storage of auxin molecules. Specific glycosyltransferases are critical for this process, catalyzing glycosylation at either the carboxyl group or the nitrogen atom of the indole ring. The storage roles of glycosylated auxins, such as IAA-N-Glc, have been shown to be essential during embryogenesis and seed germination, while irreversible conjugation into catabolic products helps to maintain auxin homeostasis in vegetative tissues. This review highlights the diversity, enzymatic specificity, and physiological relevance of auxin glycosylation pathways, including a frequently overlooked N-glycosylation, underscoring its importance in the complex network of auxin metabolism.
生长素糖基化在生长素稳态、活性和运输的调节中起着基础性作用,有助于对植物生长发育进行动态控制。糖基化增强了生长素的稳定性、溶解性和储存能力,是生长素分子临时失活和长期储存的关键机制。特定的糖基转移酶对这一过程至关重要,催化吲哚环羧基或氮原子上的糖基化反应。已证明糖基化生长素(如IAA-N-Glc)在胚胎发生和种子萌发过程中的储存作用至关重要,而不可逆地结合形成分解代谢产物有助于维持营养组织中的生长素稳态。本综述强调了生长素糖基化途径的多样性、酶特异性和生理相关性,包括常被忽视的N-糖基化,突出了其在生长素代谢复杂网络中的重要性。