Current research and future directions of melatonin's role in seed germination.

Ze Liu, Hengrui Dai, Jinjiang Hao, Rongrong Li, Xiaojun Pu, Miao Guan, Qi Chen
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Abstract

Seed germination is a complex process regulated by internal and external factors. Melatonin (N-acetyl-5-methoxytryptamine) is a ubiquitous signaling molecule, playing an important role in regulating seed germination under normal and stressful conditions. In this review, we aim to provide a comprehensive overview on melatonin's effects on seed germination on the basis of existing literature. Under normal conditions, exogenous high levels of melatonin can suppress or delay seed germination, suggesting that melatonin may play a role in maintaining seed dormancy and preventing premature germination. Conversely, under stressful conditions (e.g., high salinity, drought, and extreme temperatures), melatonin has been found to accelerate seed germination. Melatonin can modulate the expression of genes involved in ABA and GA metabolism, thereby influencing the balance of these hormones and affecting the ABA/GA ratio. Melatonin has been shown to modulate ROS accumulation and nutrient mobilization, which can impact the germination process. In conclusion, melatonin can inhibit germination under normal conditions while promoting germination under stressful conditions via regulating the ABA/GA ratios, ROS levels, and metabolic enzyme activity. Further research in this area will deepen our understanding of melatonin's intricate role in seed germination and may contribute to the development of improved seed treatments and agricultural practices.

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褪黑素在种子萌发中的研究现状及未来发展方向。
种子萌发是一个受内外因素调控的复杂过程。褪黑素(n -乙酰基-5-甲氧基色胺)是一种普遍存在的信号分子,在正常和胁迫条件下对种子萌发起着重要的调节作用。本文在现有文献的基础上,对褪黑素对种子萌发的影响进行综述。在正常情况下,外源性高水平的褪黑素可以抑制或延迟种子萌发,提示褪黑素可能在维持种子休眠和防止过早萌发方面发挥作用。相反,在压力条件下(例如,高盐度,干旱和极端温度),褪黑素被发现可以加速种子发芽。褪黑素可以调节ABA和GA代谢相关基因的表达,从而影响这些激素的平衡,影响ABA/GA比值。褪黑素已被证明可以调节活性氧的积累和营养动员,从而影响种子的萌发过程。综上所述,褪黑素通过调节ABA/GA比值、ROS水平和代谢酶活性,在正常条件下抑制萌发,而在胁迫条件下促进萌发。这一领域的进一步研究将加深我们对褪黑素在种子萌发中的复杂作用的理解,并可能有助于改进种子处理和农业实践的发展。
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