Sort   by:  
 Page size 
Legumes interact with nodulating bacteria that convert atmospheric nitrogen into ammonia for plant use. This nitrogen fixation takes place within root nodules that form after infection of root hairs by compatible rhizobia. Using cDNA microarrays, we monitored gene expression in soybean (Glycine max)...
ORGANISM(S): Glycine max 
Phloem-Specific Translational Regulation of Soybean Nodulation
Soybean root hair transcriptional response to their inoculation by the symbiotic bacteria B. japonicum involved in soybean nodulation. We used the first generation of an Affymetrix microarray to quantify the abundance of the transcripts from soybean root hair cells inoculated and mock-inoculated by...
ORGANISM(S): Glycine max 
Soybean (Glycine max) root nodulation is a symbiotic process that requires complex molecular and cellular coordination. The phloem plays a crucial role not only in nutrient transport but also in long-distance signaling that regulates nodulation. However, the molecular mechanisms underlying phloem-sp...
ORGANISM(S): Glycine max 
2025-12-04 | GSE292049 | GEO
Nuclei were isolated from soybean root nodules and proteins were purified. Trypsin digests from two preparations were analyzed by LC-MS/MS. GmFWL3, a member of the soybean GmFWL/CNR family, was identified. It encodes a microdomain-associated protein localized in both the nuclear and plasma membra...
ORGANISM(S): Glycine Max (ncbitaxon:3847) 
Legume-rhizobial symbiosis, involving the intracellular accommodation of rhizobia within host cells for nitrogen fixation, represents a unique model among plant-microbe interactions. While this symbiosis requires sophisticated regulatory networks, direct host control over symbiont proteins remains l...
ORGANISM(S): Escherichia coli 
2026-04-10 | PXD076268 | Pride
Sort   by:  
 Page size