This study created a detailed atlas of endogenous peptides across 13 maize tissues during various developmental phases, revealing a complex regulatory network where peptide abundance doesn't always align with their source proteins, signaling unique roles in maize development.
1 citations
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July 2024 in “New Phytologist” In this study, researchers identified that three homologous genes—ZmSPL10, ZmSPL14, and ZmSPL26—are crucial for the development of stigmatic papilla in maize, with triple knockout mutants lacking these genes showing almost no stigmatic papilla and significantly reduced kernel setting.
2 citations
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September 2025 in “BMC Genomics” This study found that maize root hairs respond differently to cold stress based on severity, with mild cold allowing limited growth through adaptive remodeling, while severe cold causes more pronounced inhibition and prioritizes stress defense, affecting transcriptome and morphology.
2 citations
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July 2023 in “Plant Disease” In this study, researchers examined 120 inbred maize lines infected with Fusarium graminearum, discovering that some demonstrated significant resistance to stalk rot, correlated with specific gene pathways. This highlights potential genes and pathways for enhancing disease resistance in maize.
5 citations
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April 2024 in “Molecular Biology Reports”