Enhancing sweet sorghum emergence and stress resilience in saline-alkaline soils through ABA seed priming: insights into hormonal and metabolic reprogramming.

IF 3.7 2区 生物学 Q2 BIOTECHNOLOGY & APPLIED MICROBIOLOGY BMC Genomics Pub Date : 2025-03-12 DOI:10.1186/s12864-025-11420-4
Jianfeng Yang, Wenlan Zhang, Tianyu Wang, Jiawei Xu, Jinjing Wang, Jiahao Huang, Yingpeng Sun, Yu Ni, Yanjun Guo
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Abstract

Sweet sorghum (Sorghum bicolor Moench) seedling emergence and growth are significantly impeded by physical soil crusts (PSCs) in saline-alkaline soils. Abscisic acid (ABA) is a potent seed priming agent known for modulating plant physiological and metabolic responses under salinity stress. However, the influence of ABA priming on seedling emergence in PSCs remains unclear. This study conducted both pot and field experiment to examine the effects of ABA priming on enhancing seedling emergence under PSC conditions. ABA priming altered the balance of at least 24 endogenous phytohormones, including abscisic acid, jasmonic acid, gibberellins, ethylene, auxins, and cytokinins. Additionally, it reprogrammed starch and sucrose metabolism, resulting in the differential expression of genes encoding key enzymes such as AMY, BAM, and INV, which are crucial for converting complex sugars into readily available energy sources, thereby supporting seedling growth. Furthermore, 52 differentially expressed metabolites (DEMs) of flavonoids were identified in germinating seedlings, including 15 anthocyanins, 3 flavones, 7 flavonols, 6 isoflavones, 7 flavanones, and 14 other flavonoids. Genetic and metabolic co-expression network analysis, along with flavonoid biosynthesis pathway exploration, revealed that the biosynthesis of 17 key DEMs-including liquiritigenin, apigenin, kaempferide, syringetin, phloretin, formononetin, dihydrokaempferol, and xanthohumol-was regulated by 10 differentially expressed genes (DEGs) associated with flavonoid biosynthesis. These DEGs encoded 7 enzymes critical for this pathway, including chalcone synthase, shikimate O-hydroxycinnamoyltransferase, bifunctional dihydroflavonol 4-reductase, naringenin 7-O-methyltransferase, and anthocyanidin reductase. This regulation, along with reduced levels of superoxide anion (O2-) and malondialdehyde and increased antioxidant enzyme activities, suggested that flavonoids played a vital role in mitigating oxidative stress. These findings demonstrate that ABA priming can effectively enhance sweet sorghum seedling emergence in PSCs by accelerating emergence and boosting stress resistance.

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通过ABA种子启动提高盐碱地甜高粱的出苗率和胁迫恢复力:激素和代谢重编程的见解。
在盐碱土壤中,物理结皮对甜高粱的出苗和生长有显著的阻碍作用。脱落酸(ABA)是一种有效的种子引物,可以调节植物在盐度胁迫下的生理和代谢反应。然而,ABA对PSCs幼苗出苗的影响尚不清楚。本研究通过盆栽和田间试验,探讨了在PSC条件下,ABA对幼苗出苗的促进作用。ABA诱导至少改变了24种内源植物激素的平衡,包括脱落酸、茉莉酸、赤霉素、乙烯、生长素和细胞分裂素。此外,它重新编程了淀粉和蔗糖的代谢,导致编码关键酶的基因的差异表达,如AMY, BAM和INV,这些酶对于将复杂的糖转化为容易获得的能量来源至关重要,从而支持幼苗的生长。在发芽幼苗中鉴定出52种黄酮差异表达代谢物,包括15种花青素、3种黄酮、7种黄酮醇、6种异黄酮、7种黄酮和14种其他黄酮。遗传和代谢共表达网络分析以及类黄酮生物合成途径探索发现,17种关键的类黄酮生物合成受10个与类黄酮生物合成相关的差异表达基因(DEGs)调控,包括甘草素、芹菜素、山奈素、紫丁香素、根皮素、刺芒柄花素、二氢山奈酚和黄腐醇。这些DEGs编码了7种对该途径至关重要的酶,包括查尔酮合成酶、shikimate o -羟基肉桂基转移酶、双功能二氢黄酮醇4-还原酶、柚皮素7- o -甲基转移酶和花青素还原酶。这种调节,以及超氧阴离子(O2-)和丙二醛水平的降低和抗氧化酶活性的增加,表明黄酮类化合物在缓解氧化应激中起着至关重要的作用。上述结果表明,ABA在PSCs中通过加速出苗和增强抗逆性,有效促进甜高粱幼苗出苗。
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来源期刊
BMC Genomics
BMC Genomics 生物-生物工程与应用微生物
CiteScore
7.40
自引率
4.50%
发文量
769
审稿时长
6.4 months
期刊介绍: BMC Genomics is an open access, peer-reviewed journal that considers articles on all aspects of genome-scale analysis, functional genomics, and proteomics. BMC Genomics is part of the BMC series which publishes subject-specific journals focused on the needs of individual research communities across all areas of biology and medicine. We offer an efficient, fair and friendly peer review service, and are committed to publishing all sound science, provided that there is some advance in knowledge presented by the work.
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