PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
February 11, 2026Scientific Reports1 citationsOpen Access

Microbial membrane transport genes in maize rhizosphere under fertilization – a preliminary study

View Full Paper
MEMatthew Chekwube EnebeOBOlubukola Oluranti Babalola

Key Points

  • To investigate how fertilization affects microbial membrane transport genes in maize rhizosphere soil.
  • Sequenced microbial DNA fragments from maize rhizosphere under different soil fertilization treatments.
  • Analyzed genes involved in nutrient uptake and export of molecules.
  • Identified gene families and operon groups present in soil microbes.
  • Identified transport genes for various nutrients, including amino acids and quorum sensing molecules.
  • Found increased relative abundance of transport genes due to compost manure fertilization.
  • Noted significant roles of specific genes in nutrient utilization and microbial metabolic activities.

Abstract

Microbial DNA fragments isolated from maize rhizosphere soil under different soil fertilization treatments were sequenced, and the analysed genes contained membrane transport genes for the uptake and utilization of various substrates, nutrients ranging from sugars, vitamins, amino acids, metals, non-metals (nitrogen, oxygen, phosphorus, selenium, sulphur etc.), peptides, and osmoprotectant to quorum sensing signalling molecules. Other genes identified were involved in the export of folded and unfolded proteins and lipopolysaccharide molecules. In total, 87 gene families belonging to 32 operon groups present in soil microbes were identified. The results show that soil fertilization with 8 t/ha compost manure increased the relative abundance of these identified genes, but the most abundant of all were transport genes involved in export of unfolded proteins from within the cytoplasm of the cell to its exterior ( secA ), transport of peptide molecules ( dppF ), uptake of hydrophobic amino acids ( livF , livG , livH , livK , livM ) and transport of sulphur containing compounds ( ssuA , ssuC , tauA , tauC ). The findings of this study show that the type of nutrient-bearing material applied to the soil and the nutrient composition of the fertilizer influence the activities of soil microbes (i.e. the expression of specific functional genes) and the distribution and abundance of transport-protein producing genes necessary for sustaining the metabolic and physiological activities of soil-borne microbes.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Enebe et al. (2026) studied this question.

synapsesocial.com/papers/698be001058ab1890a13ba06https://doi.org/10.1038/s41598-024-80606-9
Ask AI
Helpful
Bookmark
Share
View Full Paper

Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Maize functional requirements drive the selection of rhizobacteria under long‐term fertilization practices2024 · 15 citations
  2. 2Genomic prediction of phytase potential and stress tolerance in maize-associated plant growth-promoting rhizobacterium Enterobacter cloacae Mz492025 · 2 citations
  3. 3Exploring Multifunctional Microbial Genes From the Rhizosphere of <i>Allium ampeloprasum</i> Under Different Fertilization Systems2026 · 1 citations
  4. 4Interaction Mechanisms Among Soil Environmental Factors, Microbial Communities, and Nitrogen-Cycling Functional Genes in Cool-Climate Maize Fields2026
  5. 5Genome-wide transcriptome and gene family analysis reveal candidate genes associated with potassium uptake of maize colonized by arbuscular mycorrhizal fungi2024 · 1 citations