| Literature DB >> 26892000 |
Ruchi Agarrwal1, Ayyagari Phani Padmakumari2, Jagadish S Bentur2,3, Suresh Nair4.
Abstract
BACKGROUND: An incompatible interaction betweenEntities:
Keywords: Aminotransferase; GABA; GC-MS; Hypersensitive response; Insect-plant interaction; Metabolic profiling; Microarray; Rice-gall midge interaction; Singlet oxygen; Transcript profiling
Year: 2016 PMID: 26892000 PMCID: PMC4759115 DOI: 10.1186/s12284-016-0077-6
Source DB: PubMed Journal: Rice (N Y) ISSN: 1939-8425 Impact factor: 4.783
Summary of microarray results
| Number of probes detected | Total number of probes filtered | Total number of DEGs ( | Up-regulateda genes | Down regulateda genes |
|---|---|---|---|---|
| 57381 | 43738 | 7598 | 1494 | 1367 |
DEGs: Differentially Expressed Genes
aUp- or down- regulated genes in rice tissues infested with the Asian rice gall midge biotype 1 (GMB1) as compared to un-infested tissues, at a fold change filter of 2. An indica rice variety RP2068-18-3-5 (RP) was used for the current study
Fig. 1MapMan-based representation of differentially expressed genes (DEGs) onto metabolic pathways. Mapping and distribution of DEGs in indica rice variety RP2068-18-3-5 (RP), challenged with the Asian rice gall midge biotype 1 (GMB1), onto metabolic pathway using MapMan software. Transcripts showing more than 2-fold difference between infested (RP-I) and un-infested (RP-UI) tissues of the resistant host RP have been mapped. Transcripts significantly up- and down-regulated are indicated in blue or red, respectively. Grey circles represent genes whose expression did not change more than 2-fold. For detailed information on these transcripts refer Additional file 6: Table S3
Fig. 2Summary of differentially expressed genes (DEGs) involved in photosynthesis and tetrapyrrole synthesis pathway. Mapping and distribution of DEGs, involved in photosynthesis and tetrapyrrole synthesis pathway (TSP), in indica rice variety RP2068-18-3-5 (RP), challenged with the Asian rice gall midge biotype 1 (GMB1). (a) DEGs involved in light reaction of photosynthesis; (b) DEGs involved in Calvin cycle; (c) DEGs involved in TSP. Transcripts showing more than 2-fold change between infested (RP-I) and un-infested (RP-UI) tissues of the resistant host RP have been mapped. Transcripts significantly up- or down-regulated are indicated in blue or red, respectively. Grey circles represent genes whose expression did not change more than 2-fold. For detailed information on these transcripts refer Additional file 7: Table S4
Fig. 3Summary of differentially expressed genes (DEGs) involved in regulation of cellular functioning. Mapping and distribution of DEGs, involved in regulation of cellular functioning, in indica rice variety RP2068-18-3-5 (RP), challenged with the Asian rice gall midge biotype 1 (GMB1). (a) DEGs encoding transcription factors; (b) DEGs involved in hormone synthesis; (c) DEGs involved in maintaining cellular redox state; (d) DEGs involved in cellular organization. Transcripts showing more than 2-fold change between infested (RP-I) and un-infested (RP-UI) tissues of the resistant host RP have been mapped. Transcripts significantly up- or down-regulated are indicated in blue or red, respectively. For detailed information on these transcripts refer Additional file 9: Table S6
Fig. 4Validation of microarray results by semi-quantitative RT-PCR. Graph represents the expression patterns of genes in indica rice variety RP2068-18-3-5 (RP), challenged with the Asian rice gall midge biotype 1 (GMB1), studied at three distinct time points of infestation i.e. 24 h, 48 h and 72 h. Y-axis depicts the log2 values of fold change (FC) in relative expression values (REV) of genes (mentioned on X-axis) between infested (RP-I) and un-infested (RP-UI) samples. Genes with significantly different (p-value ≤0.05) REVs between infested and un-infested samples have been indicated by (*) on the bars. RP: indica rice variety RP2068-18-3-5; h: hai
Fig. 5Model representing flow of events occurring during rice-gall midge compatible and incompatible interactions. Representation of flow of events related to rice-gall midge compatible and incompatible interactions (separated by dotted lines). Text within green and red boxes represents outcome of compatible and incompatible interactions, respectively. The attack by the Asian rice gall midge on a resistant host induces extensive transcriptomic and metabolomic reprogramming leading to an array of events that induce hypersensitive response (HR)-mediated host resistance against gall midge. The deregulation of carbon and nitrogen metabolism induces overexpression of genes involved in GABA shunt and accumulation of GABA that could be toxic to the feeding maggots (Ref 1) along with the concomitant release of reactive oxygen species, i.e. singlet oxygen, that trigger HR in the host. The disintegration of photosynthetic machinery leads to generation of singlet oxygen (Ref 2), which further mediates defense signaling involving phytohormones (Ref 3) and transcription factors (Ref 4). Singlet oxygen also induces lipid peroxidation (Ref 5) causing lipid mobilization that plays a role in defense signaling through release of free fatty acids (Ref 6). On the other hand, C/N shift towards nitrogen, during compatible interaction (Ref 7), favors maggot growth by promoting formation of nutritive tissue (Ref 8). Up-regulation of genes involved in cell cycle and organization during compatible interaction (Ref 9) also promotes establishment of nutritive tissue at feeding sites (Ref 10). In contrast, host cellular machinery breaks down at the site of HR during incompatible interaction. Therefore, the host cell death, during HR at feeding site, limits nutrient supply to the feeding maggots and prevents formation of nutritive tissue. The flow of events in the given model is re-constructed based on information available from the current study (text within black boxes) and earlier studies on other insect-plant interactions for which appropriate references have been cited in Additional file 11 : References S1