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比较蛋白质组学分析揭示了胚胎败育诱导甜樱桃幼果脱落的机制。

Comparative Proteomics Profiling Illuminates the Fruitlet Abscission Mechanism of Sweet Cherry as Induced by Embryo Abortion.

机构信息

Key Laboratory of Plant Resources Conservation and Germplasm Innovation in Mountainous Region (Guizhou University), Ministry of Education, Institute of Agro-Bioengineering/College of Life Sciences, Guizhou University, Guiyang 550025, China.

Institute for Forest Resources & Environment of Guizhou, College of Forestry, Guizhou University, Guiyang 550025, China.

出版信息

Int J Mol Sci. 2020 Feb 11;21(4):1200. doi: 10.3390/ijms21041200.

Abstract

Sweet cherry (P L.) is a delicious nutrient-rich fruit widely cultivated in countries such as China, America, Chile, and Italy. However, the yield often drops severely due to the frequently-abnormal fruitlet abscission, and few studies on the metabolism during its ripening process at the proteomic level have been executed so far. To get a better understanding regarding the sweet cherry abscission mechanism, proteomic analysis between the abscising carpopodium and non-abscising carpopodium of sweet cherry was accomplished using a newly developed Liquid chromatography-mass spectrometry/mass spectrometry with Tandem Mass Tag (TMT-LC-MS/MS) methodology. The embryo viability experiments showed that the vigor of the abscission embryos was significantly lower than that of retention embryo. The activity of cell wall degrading enzymes in abscising carpopodium was significantly higher than that in non-abscising carpopodium. The anatomy results suggested that cells in the abscission zone were small and separated. In total, 6280 proteins were identified, among which 5681 were quantified. It has been observed that differentially accumulated proteins (DAPs) influenced several biological functions and various subcellular localizations. The Kyoto Encyclopedia of Genes and Genomes (KEGG) enrichment analysis showed that plenty of metabolic pathways were notably enriched, particularly those involved in phytohormone biosynthesis, cell wall metabolism, and cytoskeletal metabolism, including 1-aminocyclopropane-1-carboxylate oxidase proteins which promote ethylene synthesis, and proteins promoting cell wall degradation, such as endoglucanases, pectinase, and polygalacturonase. Differential expression of proteins concerning phytohormone biosynthesis might activate the shedding regulation signals. Up-regulation of several cell wall degradation-related proteins possibly regulated the shedding of plant organs. Variations of the phytohormone biosynthesis and cell wall degradation-related proteins were explored during the abscission process. Furthermore, changes in cytoskeleton-associated proteins might contribute to the abscission of carpopodium. The current work represented the first study using comparative proteomics between abscising carpopodium and non-abscising carpopodium. These results indicated that embryo abortion might lead to phytohormone synthesis disorder, which effected signal transduction pathways, and hereby controlled genes involved in cell wall degradation and then caused the abscission of fruitlet. Overall, our data may give an intrinsic explanation of the variations in metabolism during the abscission of carpopodium.

摘要

甜樱桃(P L.)是一种美味且营养丰富的水果,在中国、美国、智利和意大利等国家广泛种植。然而,由于果实经常异常脱落,产量严重下降,目前为止,在蛋白质组学水平上对其成熟过程中的代谢研究很少。为了更好地了解甜樱桃脱落的机制,使用新开发的液相色谱-质谱/质谱与串联质量标签(TMT-LC-MS/MS)方法对甜樱桃脱落和不脱落的果柄进行了蛋白质组分析。胚胎活力实验表明,脱落胚胎的活力明显低于保留胚胎。脱落果柄中细胞壁降解酶的活性明显高于不脱落果柄。解剖结果表明,脱落带细胞小而分离。总共鉴定出 6280 种蛋白质,其中 5681 种被定量。结果表明,差异积累蛋白(DAP)影响了几个生物学功能和各种亚细胞定位。京都基因与基因组百科全书(KEGG)富集分析表明,大量代谢途径显著富集,特别是那些与植物激素生物合成、细胞壁代谢和细胞骨架代谢相关的途径,包括促进乙烯合成的 1-氨基环丙烷-1-羧酸氧化酶蛋白和促进细胞壁降解的蛋白,如内切葡聚糖酶、果胶酶和多聚半乳糖醛酸酶。植物激素生物合成相关蛋白的差异表达可能激活脱落调控信号。几个细胞壁降解相关蛋白的上调可能调节植物器官的脱落。在脱落过程中探索了植物激素生物合成和细胞壁降解相关蛋白的变化。此外,细胞骨架相关蛋白的变化可能有助于果柄的脱落。本研究首次利用比较蛋白质组学方法研究了脱落果柄和不脱落果柄之间的差异。这些结果表明,胚胎败育可能导致植物激素合成紊乱,影响信号转导途径,从而控制参与细胞壁降解的基因,进而导致果实脱落。总的来说,我们的数据可能为果柄脱落过程中代谢的变化提供内在的解释。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6adb/7072775/f9c254e4d6f4/ijms-21-01200-g001.jpg

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