PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
April 23, 2026Physiologia Plantarum1 citations

Halotolerant Bacterial Inoculation Mitigates Salinity‐Induced Morpho‐Physiological Stress in Rhodes Grass ( Chloris gayana K.)

View Full Paper
MYMaría Florencia Yañez YazlleARA. RibottaJCJuan José Cervetto

Key Points

  • The aim is to evaluate how halotolerant bacteria can enhance the growth of Rhodes grass under saline conditions.
  • Evaluated the effects of seven bacterial strains on germination and growth at different salinity levels
  • Conducted hydroponic experiments with effective strains at varying NaCl concentrations
  • Analyzed morphological, biochemical, ionic, and photosynthetic parameters of the plants.
  • Halomonas sp. 3R12 improved germination at all salinity levels
  • Inoculated plants showed increased height and root dry weight, and reduced leaf Na+ accumulation
  • Beneficial effects on photosynthesis and stress mitigation were noted in inoculated plants, unlike non-inoculated counterparts.

Abstract

Salinity is a major constraint to pasture establishment and productivity, particularly in marginal soils. This study evaluated the effect of halophilic and halotolerant plant growth-promoting bacteria (PGPB) on germination and early vegetative growth of Rhodes grass (Chloris gayana cv. Reclaimer) under saline stress. Seven bacterial strains, previously isolated from hypersaline environments, were tested during germination of caryopses and spikelets at 0, 100, and 300 mM NaCl. The three most effective strains (Halomonas sp. 3R12, Pseudomonas sp. AN23, and Pseudarthrobacter sp. ER25) were further evaluated in a hydroponic system at 0 and 300 mM NaCl for morphological, biochemical, ionic, and photosynthetic parameters. Halomonas sp. 3R12 enhanced germination across all salinity levels, while Pseudomonas sp. AN23 and Pseudarthrobacter sp. ER25 showed seed-type-dependent effects. Under salt stress, bacterial inoculation increased plant height and root dry weight, reduced leaf Na+ accumulation, and improved K+/Na+ and Ca2+/Na+ ratios, indicating restricted Na+ translocation. Halomonas sp. 3R12 also promoted higher antioxidant activity and proline content, while Pseudarthrobacter sp. ER25 and Pseudomonas sp. AN23 improved the photosynthetic performance. These bacteria maintained the photosynthetic efficiency (Fv/Fm, Phi2) in plants under stress, in contrast to non-inoculated plants, which showed activation of regulated energy dissipation mechanisms and reduced electron flow. Overall, Halomonas sp. 3R12 and Pseudarthrobacter sp. ER25 were the most effective strains supporting their potential as bioinoculants for improving forage grass performance in salt-affected soils.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Yazlle et al. (2026) studied this question.

synapsesocial.com/papers/69e9b80e85696592c86eb869https://doi.org/10.1111/ppl.70883
Ask AI
Helpful
Bookmark
Share
View Full Paper