Root and Leaf Anatomy, Ion Accumulation, and Transcriptome Pattern under Salt Stress Conditions in Contrasting Genotypes of Sorghum bicolor .
Appa Rao KarumanchiPramod SivanDivya KummariG RajashekerS Anil KumarPalakolanu Sudhakar ReddyPrashanth SuravajhalaSudhakar PodhaPolavarapu Kavi KishorPublished in: Plants (Basel, Switzerland) (2023)
Roots from salt-susceptible ICSR-56 (SS) sorghum plants display metaxylem elements with thin cell walls and large diameter. On the other hand, roots with thick, lignified cell walls in the hypodermis and endodermis were noticed in salt-tolerant CSV-15 (ST) sorghum plants. The secondary wall thickness and number of lignified cells in the hypodermis have increased with the treatment of sodium chloride stress to the plants (STN). Lignin distribution in the secondary cell wall of sclerenchymatous cells beneath the lower epidermis was higher in ST leaves compared to the SS genotype. Casparian thickenings with homogenous lignin distribution were observed in STN roots, but inhomogeneous distribution was evident in SS seedlings treated with sodium chloride (SSN). Higher accumulation of K + and lower Na + levels were noticed in ST compared to the SS genotype. To identify the differentially expressed genes among SS and ST genotypes, transcriptomic analysis was carried out. Both the genotypes were exposed to 200 mM sodium chloride stress for 24 h and used for analysis. We obtained 70 and 162 differentially expressed genes (DEGs) exclusive to SS and SSN and 112 and 26 DEGs exclusive to ST and STN, respectively. Kyoto Encyclopaedia of Genes and Genomes (KEGG) and Gene Ontology (GO) enrichment analysis unlocked the changes in metabolic pathways in response to salt stress. qRT-PCR was performed to validate 20 DEGs in each SSN and STN sample, which confirms the transcriptomic results. These results surmise that anatomical changes and higher K + /Na + ratios are essential for mitigating salt stress in sorghum apart from the genes that are differentially up- and downregulated in contrasting genotypes.
Keyphrases
- genome wide
- single cell
- genome wide identification
- induced apoptosis
- cell wall
- stress induced
- cell cycle arrest
- rna seq
- genome wide analysis
- dna methylation
- ionic liquid
- cell therapy
- bioinformatics analysis
- gene expression
- oxidative stress
- transcription factor
- heat stress
- cell proliferation
- mesenchymal stem cells
- cell death
- newly diagnosed
- smoking cessation
- combination therapy
- optic nerve
- essential oil