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不同光质对番茄幼苗蔗糖代谢和碳运转的响应。

The Responses of Sucrose Metabolism and Carbon Translocation in Tomato Seedlings under Different Light Spectra.

机构信息

Photobiology Research Center, Institute of Urban Agriculture, Chinese Academy of Agricultural Sciences, Chengdu 610000, China.

Institute of Agricultural Information, Key Laboratory of Intelligent Agricultural Technology (Changjiang Delta), Institute of Agricultural Information, Ministry of Agriculture and Rural Affairs, Jiangsu Academy of Agricultural Sciences, Nanjing 210014, China.

出版信息

Int J Mol Sci. 2023 Oct 10;24(20):15054. doi: 10.3390/ijms242015054.

Abstract

Light plays a dominant role in the biosynthesis and accumulation of photosynthetic products. However, the metabolism and translocation of photosynthetic products in plants under different light spectra remain elusive. In this study, tomato ( L.) seedlings were treated with different light spectra delivered by light-emitting diodes (LEDs) with the same photosynthetic photon flux density at 300 μmol m s, including monochromatic red (660 nm, R), blue (450 nm, B), sun-like white (W, 380-780 nm), or a combination of R and B lights (R:B = 1:1, RB). Compared with W, the biomass distribution ratio for leaves under R, B, and RB decreased by 5.01-9.53%, while the ratio for stems and roots increased by 3.71-6.92% and 0.14-2.81%, respectively. The photosynthetic carbon distribution expressed as C enrichment was higher in stems and roots under RB and R, while B led to more C transported from leaves and enriched in stems when compared with W. Meanwhile, RB led to significant increases in the activities of phosphate synthase (SPS), sucrose synthase (SS), vacuolar acid invertase (VI), and neutral invertase (NI). The R was more efficient in increasing the activity of SPS and SS, while B was more effective in promoting the activity of VI and NI. The transcript levels of , , , and were upregulated under R, B, and RB. However, the transcript patterns of , , , and were not consistent with the changes in their encoded enzymes, especially the transcript patterns of and . Our study suggests that the red- and blue-light-induced long-distance and short-distance transport of photosynthetic products in plants, respectively, might result from different regulation of sucrose-metabolizing enzymes from transcriptional and post-transcriptional levels.

摘要

光是光合作用产物生物合成和积累的主要调控因子。然而,在不同光谱光下植物光合作用产物的代谢和转运仍然难以捉摸。在这项研究中,番茄(L.)幼苗用相同光合光子通量密度为 300 μmol m s 的发光二极管(LED)提供的不同光谱光处理,包括单色红光(660nm,R)、蓝光(450nm,B)、类似太阳光的白光(W,380-780nm)或 R 和 B 光的组合(R:B=1:1,RB)。与 W 相比,R、B 和 RB 下叶片的生物量分配比例分别降低了 5.01-9.53%,而茎和根的比例分别增加了 3.71-6.92%和 0.14-2.81%。以 C 富集表示的光合碳分配在 RB 和 R 下的茎和根中更高,而 B 导致更多的 C 从叶片中运输并富集在茎中,与 W 相比。同时,RB 导致磷酸合酶(SPS)、蔗糖合酶(SS)、液泡酸性转化酶(VI)和中性转化酶(NI)的活性显著增加。R 更有效地增加 SPS 和 SS 的活性,而 B 更有效地促进 VI 和 NI 的活性。在 R、B 和 RB 下,、、和 的转录水平上调。然而,、、和 的转录模式与编码酶的变化不一致,特别是和的转录模式。我们的研究表明,红光和蓝光分别诱导植物光合作用产物的长距离和短距离运输,可能是由于蔗糖代谢酶从转录和转录后水平的不同调节。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9a8a/10606089/8975d23616b1/ijms-24-15054-g001.jpg

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