METABOLIC PATHWAYS ANALYSIS AND IDENTIFICATION OF HEAT RESPONSE GENES OF PINEAPPLE [ANANAS COMOSUS (L.) MERR.] FRUIT AFFECTED BY ELEVATED POSTHARVEST TEMPERATURE

被引:0
|
作者
Liu, Chuan-He [1 ,2 ,3 ]
Liu, Yan [1 ,2 ,3 ]
Kuang, Shi-Zi [1 ,2 ,3 ]
Xiao, Wei-Qiang [1 ,2 ,3 ]
机构
[1] Guangdong Acad Agr Sci, Inst Fruit Tree Res, Guangzhou 510640, Guangdong, Peoples R China
[2] Minist Agr, Key Lab South Subtrop Fruit Biol & Genet Resource, Guangzhou 510640, Guangdong, Peoples R China
[3] Guangdong Prov Key Lab Trop & Subtrop Fruit Tree, Guangzhou 510640, Guangdong, Peoples R China
关键词
Ananas comosus (L.); Gene ontology; Elevated postharvest temperature (EPT); Heat response genes; DIFFERENTIALLY EXPRESSED GENES; RNA-SEQ; PENICILLIUM-EXPANSUM; SHOCK PROTEINS; STRESS; ACCUMULATION; ANNOTATION; TOLERANCE; TOOL;
D O I
10.30848/PJB2019-4(42)
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Pineapple [Ananas comosus (L.) Mem] is an important tropical fruit. The pineapple fruits that are ripened in the high-temperature season have better quality, whereas those ripened in low-temperature season are acidic in taste. Elevated postharvest temperature (EPT) could enhance the quality of winter-harvested pineapple fruit. Based on transcriptome and differentially expressed genes analysis, we explored the GO (Gene Ontology) terms and KEGG (Kyoto Encyclopedia of Genes and Genomes) metabolic pathways associated with the EPT treatment and the differentially expressed heat response genes of pineapple fruit after EPT treatment. GO classifications suggested that DEGs (differentially expressed genes) were predominantly annotated to "response to stimulus", "response to external stimulus" and "aromatic compound biosynthetic process" in the biological process ontology, "hydrolase activity" and "glucosidase activity" in the molecular function ontology, as well as "intrinsic to membrane" and "cell wall" in the cellular component ontology. KEGG metabolic pathways analysis revealed that the DEGs were dominantly enriched to "starch and sucrose metabolism", "biosynthesis of secondary metabolites", "pentose and glucuronate interconversions", "carotenoid biosynthesis", "metabolic pathways" "galactose metabolism" and "plant hormone signal transduction". Nineteen HSP (heat shock protein) and sHSP (small HSP) DEGs were screened, and most of them were up-regulated by EPT. Most of the transcription factor genes, including HSF, bHLH, WRKY, MYB, AP2/ERF, bZIP and NAC, were down-regulated by EPT. The SOD (Superoxide dismutase) genes were induced by EPT, while most of the POD (Peroxidase) and CAT (Catalase) genes were repressed. This work would help to understand the molecular mechanisms for EPT process to improve the quality of pineapple fruits.
引用
收藏
页码:1311 / 1316
页数:6
相关论文
共 50 条
  • [31] Comparative economic analysis of different technologies for pineapple (Ananas comosus (L.) merr.) production in Veracruz, Mexico
    Del Angel-Pérez, A
    Villagómez-Cortés, J
    Rebolledo-Martínez, L
    PROCEEDINGS OF THE IVTH INTERNATIONAL PINEAPPLE SYMPOSIUM, 2005, (666): : 59 - 69
  • [32] EVALUATION OF INFLUENCE FROM TEMPERATURE AND ENZYMATIC TREATMENT IN THE RHEOLOGICAL BEHAVIOR OF PINEAPPLE (Ananas comosus L. Merr.) JUICE
    Calandrini Braga, Adriano Cesar
    da Cruz Rodrigues, Antonio Manoel
    Meller da Silva, Luiza Helena
    de Araujo, Licia Amazonas
    REVISTA BRASILEIRA DE FRUTICULTURA, 2013, 35 (01) : 226 - 237
  • [33] Infusion of Pineapple (Ananas comosus (L.) Merr.) Wine with Rangoon Creeper (Quisqualis indica L.) Flower
    Orillaza, Audrey Mae, V
    Navarro, Baby Richard R.
    PHILIPPINE AGRICULTURAL SCIENTIST, 2019, 102 (04): : 361 - 367
  • [34] Analysis of pineapple [Ananas comosus (L.) Merr.] fruit proteinases by 2-D zymography and direct identification of the major zymographic spots by mass spectrometry
    Larocca, Marilena
    Rossano, Rocco
    Santamaria, Monica
    Riccio, Paolo
    FOOD CHEMISTRY, 2010, 123 (04) : 1334 - 1342
  • [35] Integrated Metabolome and Transcriptome Analysis Reveals a Potential Mechanism for Water Accumulation Mediated Translucency in Pineapple (Ananas comosus (L.) Merr.) Fruit
    Chen, Jing
    Yao, Yanli
    Zeng, Hui
    Zhang, Xiumei
    INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES, 2023, 24 (08)
  • [36] Antimicrobial activity and phytochemical analysis of orange (Citrus aurantium L.) and pineapple (Ananas comosus (L.) Merr.) peel extract
    Gunwantrao, Biradar Balasaheb
    Bhausaheb, Sonawane Kaveri
    Ramrao, Barge Sagar
    Subhash, Kharade Sachin
    ANNALS OF PHYTOMEDICINE-AN INTERNATIONAL JOURNAL, 2016, 5 (02): : 156 - 160
  • [37] Genetic Diversity of Indonesian Pineapple ( Ananas comosus (L.) Merr.) Cultivars Based on ISSR Markers
    Hayati, Risyda
    Kasiamdari, Rina Sri
    PERTANIKA JOURNAL OF TROPICAL AGRICULTURAL SCIENCE, 2024, 47 (04): : 1087 - 1100
  • [38] Suitability of RAPD for analyzing spined and spineless variant regenerants of pineapple (Ananas comosus L., Merr.)
    Soneji J.R.
    Rao P.S.
    Mhatre M.
    Plant Molecular Biology Reporter, 2002, 20 (3) : 307a - 307i
  • [39] Enzyme Maceration, Fluorescent Staining, and FISH of rDNA of Pineapple (Ananas comosus (L.) Merr.) Chromosomes
    Yamamoto, Masashi
    Takeuchi, Makoto
    Nashima, Kenji
    Yamamoto, Toshiya
    HORTICULTURE JOURNAL, 2019, 88 (04): : 455 - 461
  • [40] Volatile compounds in fresh pulp of pineapple (Ananas comosus [L.] Merr.) from French Polynesia
    Teai, T
    Claude-Lafontaine, A
    Schippa, C
    Cozzolino, F
    JOURNAL OF ESSENTIAL OIL RESEARCH, 2001, 13 (05) : 314 - 318