The authors' results identified candidate cold-responsive miRNAs in M. falcata and predicted their target genes involved in diverse biological processes and showed that the miR408-5p-MfbZIP10 module plays a crucial regulatory role in low-temperature adaptation.
Abstract
Background
Low temperature severely restricts plant growth and development. Medicago falcata is an important germplasm resource for alfalfa breeding because of its strong adaptability and tolerance to abiotic stresses, particularly low-temperature stress. MicroRNAs (miRNAs) are key regulators of stress-responsive genes and modulate plant adaptation to stress by directing transcript cleavage or translational repression. However, the roles of miRNAs in low-temperature response mechanisms in M. falcata remain largely unclear.
Results
Here, we constructed miRNA libraries from M. falcata roots grown under normal or low-temperature conditions. High-throughput sequencing identified 442 miRNAs, including 245 known and 197 novel miRNAs. Among these, 74 were putatively upregulated and 37 were putatively downregulated under chilling and freezing treatments. Based on degradome sequencing, 193 target genes involved in diverse biological processes were predicted. The M. falcata MfbZIP transcription factor family, consisting of 41 members across six subfamilies, responded to the cold treatments. Of these, MfbZIP10, a nuclear-localized protein homologous to a bZIP transcription factor in M. truncatula, showed the most significant response to cold stress in stems and roots. miR408-5p was responsive to chilling and freezing, and could cleave MfbZIP10 transcripts in a transient assay, as determined by RLM-RACE analysis. Physiological analyses and gene expression profiling of transgenic lines further demonstrated that the miR408-5p-MfbZIP10 module plays a vital role in low-temperature stress responses, with MfbZIP10 functioning as a key regulator by modulating physiological traits and the expression of genes in multiple signaling pathways.
Conclusions
Our results identified candidate cold-responsive miRNAs in M. falcata and predicted their target genes involved in diverse biological processes. miR408-5p was found to target MfbZIP transcription factors in response to cold stress. Physiological characterization and quantitative expression analyses of MfbZIP10 transgenic lines showed that the miR408-5p-MfbZIP10 module plays a crucial regulatory role in low-temperature adaptation. miRNA sequencing and target gene identification provide new insights into miRNA-mediated regulatory mechanisms in M. falcata. These findings may facilitate the development of cold-tolerant forage legume crops through genetic improvement.
The jujube tree fruit remains a primary fruit in northern China, yet its geographical distribution and yield are significantly constrained by freezing stress during winter. Numerous studies have highlighted the pivotal regulatory function of microRNAs (miRNAs) in plant responses to low-temperature stress. Nevertheless, the specific miRNAs involved in the response to low temperatures and their associated gene networks in Ziziphus jujuba Mill are not well understood. In this investigation, we utilized high-throughput sequencing to analyze small RNA libraries from branches subjected to temperatures of 4 °C and −30 °C. Our analysis identified a total of 342 miRNAs, comprising 123 known miRNAs and 219 novel miRNAs. The differential expression analysis revealed that under low-temperature conditions, 177 miRNAs underwent significant changes. Among them, specific upregulation of miR319 in the less cold-resistant variety and miR6483 in sensitive variety was observed. By employing degradome sequencing, we identified a total of 1551 target genes corresponding to 3059 unique miRNA target interaction pairs involving 299 miRNAs. Functional analysis using Gene Ontology (GO) and Kyoto Encyclopedia of Genes and Genomes (KEGG) pathways indicated that these target genes are primarily associated with transcriptional regulation, metabolic pathways, and genetic information processing. Through a comprehensive analysis, we pinpointed 11 genes corresponding to 9 miRNAs that are implicated in jujube tree cold stress, and 7 target genes of 7 miRNAs were confirmed by 5′-RACE analysis. These miRNAs are likely to exert crucial regulatory functions in the context of jujube tree cold stress. This study is the first to systematically identify miRNAs and their target genes in the response of Ziziphus jujuba Mill to low-temperature stress, which provides important resources for in-depth analysis of the molecular mechanism of jujube tree cold resistance and for cold-resistant breeding.
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