Decoding the metabolomic responses of Caragana tibetica to livestock grazing in fragile ecosystems

Front Plant Sci. 2024 Feb 26:15:1339424. doi: 10.3389/fpls.2024.1339424. eCollection 2024.

Abstract

The population of Caragana tibetica, situated on the edge of the typical grassland-to-desert transition in the Mu Us Sandy Land, plays a vital ecological role in maintaining stability within the regional fragile ecosystem. Despite the consistent growth of C. tibetica following animal grazing, the biological mechanisms underlying its compensatory growth in response to livestock consumption remain unclear. Analyzing 48 metabolomic profiles from C. tibetica, our study reveals that the grazing process induces significant changes in the metabolic pathways of C. tibetica branches. Differential metabolites show correlations with soluble protein content, catalase, peroxidase, superoxide dismutase, malondialdehyde, and proline levels. Moreover, machine learning models built on these differential metabolites accurately predict the intensity of C. tibetica grazing (with an accuracy of 83.3%). The content of various metabolites, indicative of plant stress responses, including Enterolactone, Narceine, and Folcepri, exhibits significant variations in response to varying grazing intensities (P<0.05). Our investigation reveals that elevated grazing intensity intensifies the stress response in C. tibetica, triggering heightened antioxidative defenses and stress-induced biochemical activities. Distinctive metabolites play a pivotal role in responding to stress, facilitating the plant's adaptation to environmental challenges and fostering regeneration.

Keywords: Caragana tibetica; grazing intensity; non-volatile metabolites; regeneration; stress response.

Grants and funding

The author(s) declare that financial support was received for the research, authorship, and/or publication of this article. National Natural Science Foundation: Mechanism of inducing compensatory growth of Caragana tibecia by herbivore foraging, Approval ID: 42267073.