CSIRO Agriculture and Food, Canberra, Australian Capital Territory 2601, Australia.
Institute of Crop Science & Institute of Bioinformatics, Zhejiang University, Hangzhou 310058, China.
Plant Physiol. 2019 May;180(1):240-252. doi: 10.1104/pp.18.01205. Epub 2019 Feb 1.
Hybrids are used extensively in agriculture due to their superior performance in seed yield and plant growth, yet the molecular mechanisms underpinning hybrid performance are not well understood. Recent evidence has suggested that a decrease in basal defense response gene expression regulated by reduced levels of salicylic acid (SA) may be important for vigor in certain hybrid combinations. Decreasing levels of SA in the Arabidopsis () accession C24 through the introduction of the SA catabolic enzyme salicylate1 hydroxylase (NahG) increases plant size, phenocopying the large-sized C24/Landsberg (L) F1 hybrids. C24♀ × L♂ F1 hybrids and C24 NahG lines shared differentially expressed genes and pathways associated with plant defense and leaf senescence including decreased expression of SA biosynthetic genes and SA response genes. The expression of , a key regulator in resource allocation between growth and defense, was decreased in both the F1 hybrid and the C24 NahG lines, which may promote growth. Both C24 NahG lines and the F1 hybrids showed decreased expression of the key senescence-associated transcription factors , -, and with a delayed onset of senescence compared to C24 plants. The delay in senescence resulted in an extension of the photosynthetic period in the leaves of F1 hybrids compared to the parental lines, potentially allowing each leaf to contribute more resources toward growth.
杂种在农业中被广泛应用,因为它们在种子产量和植物生长方面表现出色,但其杂种优势的分子机制尚不清楚。最近的证据表明,降低水杨酸(SA)水平下调基础防御反应基因的表达可能对某些杂种组合的活力很重要。通过引入 SA 分解酶水杨酸 1 羟化酶(NahG),降低拟南芥()品系 C24 中的 SA 水平,增加了植物的大小,表现出与大型 C24/Landsberg (L)F1 杂种相似的表型。C24♀×L♂F1 杂种和 C24 NahG 系共享与植物防御和叶片衰老相关的差异表达基因和途径,包括 SA 生物合成基因和 SA 反应基因的表达下调。在 F1 杂种和 C24 NahG 系中,关键的资源分配调节因子的表达均下调,这可能促进了生长。与 C24 植株相比,C24 NahG 系和 F1 杂种均表现出关键衰老相关转录因子、、的表达下调,衰老起始延迟。衰老的延迟导致 F1 杂种的叶片光合作用期延长,与亲本系相比,每个叶片可能为生长贡献更多的资源。