Thousand‐grain weight (TGW) is a critical determinant of grain yield in foxtail millet. To elucidate the molecular regulatory network governing this trait, we systematically evaluated the main agronomic traits and genetic diversity of 40 core germplasm accessions, aiming to identify elite genetic resources. Subsequently, transcriptomic differential expression analysis, weighted gene co‐expression network analysis (WGCNA), pathway enrichment analysis, and inter‐pathway interaction network analysis were performed on materials with contrasting TGW (high vs. low), with the goal of pinpointing key candidate genes involved in TGW regulation. The phenotypic analysis results indicated that the Shannon‐Wiener diversity index (H′) of eight agronomic traits ranged from 1.82 to 2.04, and the coefficients of variation (CV) ranged from 21.83% to 68.14%. Genetic parameter analysis indicated that TGW exhibited the highest broad‐sense heritability (87.10%). The GE variance components were significant for all traits (
p
< 0.05). Meanwhile, for TGW, plant height (PH), and panicle length (PL), these components were significantly smaller than the genotypic variances, except for SW and PD. Cluster analysis classified the 40 germplasm accessions into four groups. Group III exhibited superior overall performance, particularly for TGW, highlighting its application potential in high‐yield breeding. Principal component analysis (PCA) extracted four principal components, explaining 84.97% of the total variation. Correlation analysis revealed a highly significant positive association between TGW and both GWMP and panicle weight per main stem (PWMS). Transcriptomic data revealed that pathways related to carbohydrate metabolism, sugar transport, starch biosynthesis, and cell wall formation were significantly enhanced in high‐TGW materials, collectively constituting the core regulatory network for TGW formation. Through integrative analysis of multiple datasets, the cell wall invertase gene
CIN1
was identified as a key candidate gene, whose expression level showed a significant positive correlation with TGW. Furthermore, the transcription factor
WRKY50
was predicted to regulate
CIN1
, potentially contributing to TGW determination in foxtail millet. These findings provide candidate genes and a theoretical basis for molecular breeding and the discovery of yield‐related genes in foxtail millet.
Wei Zhang, Chengyu Peng, Juan-Ling Wang et al.· Food and Energy Security· 0 citations
With the ubiquity of lithium‐ion batteries, lithium has emerged as a critical environmental contaminant, yet the mechanisms of its toxicity and tolerance in plants remain poorly understood. This study investigates the physiological and molecular responses of the C4 model crop foxtail millet (
Setaria italica
) to LiCl stress. Physiological analyses revealed a concentration‐dependent effect: while low Li
+
levels activated the antioxidant system, exposure to 50 mg/L LiCl triggered a severe oxidative burst, leading to the suppression of antioxidant enzyme activities (SOD, POD, CAT), lipid peroxidation, and significant growth inhibition. Transcriptomic profiling of the cultivar “Jingu 21” identified 1562 commonly regulated differentially expressed genes, indicating that Li
+
stress disrupts Na
+
/K
+
homeostasis and reprograms metabolic pathways, including the upregulation of branched‐chain amino acid degradation and plant‐pathogen interaction pathways. To validate these findings, we analyzed five additional cultivars exhibiting differential tolerance. Comparative analysis demonstrated that the robust tolerance observed in “Jigu 22” correlated with the strong induction of key genes‐specifically the transcription factor
SiBHLH148
, the vacuolar transporter
SiNHX1
, and the lipid transfer protein
SiDIR1
‐
suggesting
their pivotal roles in maintaining ROS homeostasis and ion compartmentalization. These results elucidate the molecular basis of LiCl adaptation in foxtail millet and provide crucial genetic targets for breeding crops resilient to lithium pollution.
Wei-Juan Zhou, Yitong Zhao, Jie Zheng et al.· Food and Energy Security· 0 citations
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