Elrouby Nabil
Boyce Thompson Institute, 533 Tower Road, Ithaca, NY, 14853, USA.
Adv Exp Med Biol. 2017;963:227-247. doi: 10.1007/978-3-319-50044-7_14.
This chapter clearly demonstrates the breadth and spectrum of the processes that SUMO regulates during plant development. The gross phenotypes observed in mutants of the SUMO conjugation and deconjugation enzymes reflect these essential roles, and detailed analyses of these mutants under different growth conditions revealed roles in biotic and abiotic stress responses, phosphate starvation, nitrate and sulphur metabolism, freezing and drought tolerance and response to excess copper. SUMO functions also intersect with those regulated by several hormones such as salicylic acid , abscisic acid , gibberellins and auxin, and detailed studies provide mechanistic clues of how sumoylation may regulate these processes. The regulation of COP1 and PhyB functions by sumoylation provides very strong evidence that SUMO is heavily involved in the regulation of light signaling in plants. At the cellular and subcellular levels, SUMO regulates meristem architecture, the switch from the mitotic cycle into the endocycle, meiosis, centromere decondensation and exit from mitosis, transcriptional control, and release from transcriptional silencing. Most of these advances in our understanding of SUMO functions during plant development emerged over the past 6-7 years, and they may only predict a prominent rise of SUMO as a major regulator of eukaryotic cellular and organismal growth and development.
本章清晰地展示了SUMO在植物发育过程中所调控的过程的广度和范围。在SUMO缀合和去缀合酶突变体中观察到的总体表型反映了这些重要作用,并且在不同生长条件下对这些突变体的详细分析揭示了其在生物和非生物胁迫响应、磷饥饿、硝酸盐和硫代谢、耐寒耐旱以及对过量铜的响应中的作用。SUMO的功能还与水杨酸、脱落酸、赤霉素和生长素等多种激素所调控的功能相互交织,详细研究提供了关于SUMO化如何调控这些过程的机制线索。SUMO化对COP1和PhyB功能的调控提供了非常有力的证据,表明SUMO在植物光信号调控中发挥着重要作用。在细胞和亚细胞水平上,SUMO调控分生组织结构、从有丝分裂周期向末期循环的转换、减数分裂、着丝粒解聚和有丝分裂退出、转录控制以及转录沉默的解除。我们对SUMO在植物发育过程中功能的大部分认识进展是在过去6至7年中取得的,它们可能仅仅预示着SUMO作为真核细胞和生物体生长发育的主要调节因子将显著崛起。