| Literature DB >> 32967624 |
Zexi Chen1,2, Wenbo Wang1,2,3, Xiaojun Pu1, Xiumei Dong1, Bei Gao4, Ping Li1, Yanxia Jia5, Aizhong Liu1,6, Li Liu7,8.
Abstract
BACKGROUND: Autophagy is anEntities:
Keywords: ATG; Autophagy defect; C/N ratio; Chloroplast plastoglobuli; Fatty acid; Moss; Premature senescence
Mesh:
Substances:
Year: 2020 PMID: 32967624 PMCID: PMC7513309 DOI: 10.1186/s12870-020-02651-6
Source DB: PubMed Journal: BMC Plant Biol ISSN: 1471-2229 Impact factor: 4.215
Fig. 1Tissue-expression profiles, subcellular localization and targeted disruption of PpATG3 gene. a PpATG3 expression profiles in different P. patens tissues. The expression data was retrieved from a previous research by Ortiz-Ramírez et al. b Subcellular localization of PpATG3. Confocal microscopy images of P. patens protoplasts by PEG-mediated transformation with empty vector (EV) or with p35S:PpATG3-eGFP construct. The scale bar = 10 μm. c Targeted disruption of PpATG3 gene and PCR confirmation. Schematic representation showing deletion of Exons 4–5 that corresponds to removal of a 573 bp genomic region and insertion of a 2078 bp nptII cassette. Right and left arrows were indicated forward and reverse primers, respectively. PCR analysis was used to verify genomic insertion of nptII cassette and loss of PpATG3 transcripts. Primer pairs of P5/C1 and C2/P6 were used for verifying double-ended insertion of the nptII cassette at genomic level. Primer pairs of P7/P8 and C3/C4 were used for verifying the loss of PpATG3 transcripts and the expression of nptII cassette, respectively. PpUbiquitin and PpAdePRT were used as a DNA or cDNA template quality control, respectively. The fragment length and DNA size markers were shown on the gel right and left, respectively
Fig. 2PpATG3 affects growth and photosynthetic regulation in P. patens. a WT and Ppatg3 knockout plants were observed after growing 7 to 56 days at normal growth conditions. The scale bar = 4 mm. b PpATG3 affects the formation of new protonemata. The 56-day-old plants were used for analysis and the red circles were indicated newly formed protonemata. The scale bar = 4 mm. c Fv/Fm values of WT and Ppatg3 plants. d Chlorophyll decreased in the Ppatg3 knockout plants. Three biological replicates were analyzed and error bars show the mean value ± SD. The asterisks indicate a significant change between the Ppatg3 and WT plants at (*) p < 0.05, (**) p < 0.01, and (***) p < 0.001
Fig. 3PpATG3 affects the cell development in P. patens. a and b Leafy gametophore cells were observed by light microscopy. The scale bar = 0.3 mm. c and d Detection of autophagosome in the gametophore cells of WT and Ppatg3 knockout plants by TEM. The 28-day-old plants after treatment for 1 h of 100 mM NaCl were used for analysis. The black arrows were indicated the formation of autophagosomes in WT and the red arrows were indicated the bulk cytosolic components accumulated in Ppatg3 mutants due to autophagy defect. e and f PpATG3 dysfunction causes the accumulation of chloroplast plastoglobuli. The 28-day-old plants at normal growth conditions were used for analysis. CP, chloroplast; PGs, plastoglobuli; T, thylakoid; CR, chloroplast ribosome; MT, mitochondrion; CW, cell wall
Fig. 4Comparison of C/N ratio and fatty acid content. a-c Differences in N concentrations between WT and Ppatg3 resulted in changes in the C/N ratio. The 14-day-old, 28-day-old and 56-day-old plants were used for analysis. d-e Abundance comparison of six fatty acids from WT and Ppatg3. Fatty acid profiles were established from 28-day-old and 56-day-old plants. Three biological replicates were analyzed and error bars show the mean value ± SD. The asterisks indicate a significant change between the Ppatg3 and WT plants at (*) p < 0.05, (**) p < 0.01, and (***) p < 0.001. Non-significant differences between the Ppatg3 and WT plants are denoted (ns)
Fig. 5Differential expression of genes related to nitrogen metabolism and lipid/fatty acid metabolism in Ppatg3 plants. a-c Transcriptional analysis for a subset of genes related to nitrogen metabolism and lipid/fatty acid metabolism in WT and Ppatg3. Expression levels shown as log2(FPKM+ 1) values. Three biological replicates were analyzed. Detailed information for each gene is supplied in Additional file 8
Fig. 6Transcriptional profiles of a subset genes related to protein metabolism, ROS metabolism and endocytosis in Ppatg3 plants. a-c Differentially expressed genes related to ubiquitin, 26S proteasome and HSP, respectively. d Differentially expressed genes related to endocytosis. e Differentially expressed genes related to ROS metabolism. Expression levels shown as log2(FPKM+ 1) values. Three biological replicates were analyzed. Detailed information for each gene is supplied in Additional file 8
Fig. 7Transcript abundances of the nitrogen metabolism related genes (a) and SAGs (b) were confirmed by RT-qPCR. Three biological replicates were analyzed and error bars show the mean value ± SD. The expression value of WT sample was normalized to 1