# Absolute quantification revealed that glutamate increased the abundance of the rhizosphere bacterial community in Camellia oil tree under drought stress

**Authors:** Kaizheng Lu, Junqin Zhou, Jun Yuan, Jiaqi Qiu, Xiaofeng Tan

PMC · DOI: 10.3389/fmicb.2025.1598000 · Frontiers in Microbiology · 2025-06-13

## TL;DR

Glutamate at 5 mmol/L significantly affects rhizosphere bacteria in Camellia oil trees under drought stress.

## Contribution

The study identifies a pivotal glutamate concentration influencing bacterial community dynamics under drought stress in Camellia oil trees.

## Key findings

- Available nitrogen forms increased with glutamate concentration, while soil pH and urease activity decreased.
- Bacterial community composition diverged significantly across glutamate treatments.
- Twenty-four bacterial phyla showed abundance patterns linked to nitrogen cycling genes, peaking at 5 mmol/L glutamate.

## Abstract

Seasonal drought associated with the subtropical monsoon climate significantly impairs the growth and development of Camellia oil tree seedlings. While previous studies have established that drought stress elevates glutamate content in the rhizosphere of Camellia oil tree, the mechanisms through which glutamate modulates rhizosphere microbial community assembly remain unresolved.

To investigate the effects of glutamate on the rhizosphere environment under drought stress, we conducted an experiment using three-year-old potted seedlings subjected to moderate drought. These seedlings were irrigated with 50 mL of glutamate solutions at varying concentrations (0, 1, 2, 5, and 10 mmol/L; labeled G0, G1, G2, G5, and G10, respectively). Through analysis of rhizosphere soil nutrients, enzyme activity, and bacterial community abundance (relative and absolute).

The study revealed the following: Concentrations of available nitrogen forms (DON, NH4+-N, NO3–-N) increased proportionally with glutamate concentration, whereas soil pH and urease activity exhibited inverse trends. Alpha and beta diversity analyses demonstrated significant divergence in bacterial community composition across treatments. Kruskal-Wallis, ANOVA, and LEfSe analyses identified 24 bacterial phyla significantly associated with treatment differences, with their abundance patterns corresponding to nitrogen cycling gene dynamics—generally peaking at G5 before declining.

These findings collectively suggest that 5 mmol/L Glu represents a pivotal concentration influencing rhizosphere bacterial community dynamics in Camellia oil tree under drought stress.

## Linked entities

- **Chemicals:** glutamate (PubChem CID 611)

## Full-text entities

- **Diseases:** drought (MESH:C536747)
- **Chemicals:** NH4 +-N (-), Glu (MESH:D018698), nitrogen (MESH:D009584), DON (MESH:C005914)

## Full text

_Full body text omitted from this summary view._ Fetch the complete paper as Markdown: https://tomesphere.com/paper/PMC12202610/full.md

## Figures

6 figures with captions in the complete paper: https://tomesphere.com/paper/PMC12202610/full.md

## References

57 references — full list in the complete paper: https://tomesphere.com/paper/PMC12202610/full.md

---
Source: https://tomesphere.com/paper/PMC12202610