Javascript must be enabled to continue!
Ecological effects of B. subtilis C3 in kiwifruit rhizosphere soil and its prevention and control against root rot disease
View through CrossRef
As the world’s largest producer of kiwifruit, China faces significant yield and quality losses due to the widespread occurrence of kiwifruit root rot. To explore alternative biological control strategies for kiwifruit root rot, this study isolated 11 fungal isolates from diseased kiwifruit roots and identified Fusarium solani as the primary pathogen. Additionally, a biocontrol strain, Bacillus subtilis C3, was isolated from the rhizosphere of healthy kiwifruit and shown to significantly inhibit pathogen growth. The B. subtilis C3 strain effectively controls root rot via multiple mechanisms, including direct antagonism, secretion of antimicrobial proteins, promotion of seedling growth, and induction of plant defense enzymes. In pot and field trials, C3 treatment increased root fresh weight by 84.1%, enhanced root SOD and APX activities by 45.7 and 38.2%, respectively, and reduced disease severity. Moreover, C3 improved rhizosphere soil microbial diversity of the Rhizosphere, with the Shannon index increasing from 3.0 to 3.4. Unlike previous studies focusing solely on pathogen suppression, this work highlights the dual role of B. subtilis C3 in controlling root rot and restoring rhizosphere ecological function, offering a green and sustainable biocontrol strategy for kiwifruit production.
Frontiers Media SA
Title: Ecological effects of B. subtilis C3 in kiwifruit rhizosphere soil and its prevention and control against root rot disease
Description:
As the world’s largest producer of kiwifruit, China faces significant yield and quality losses due to the widespread occurrence of kiwifruit root rot.
To explore alternative biological control strategies for kiwifruit root rot, this study isolated 11 fungal isolates from diseased kiwifruit roots and identified Fusarium solani as the primary pathogen.
Additionally, a biocontrol strain, Bacillus subtilis C3, was isolated from the rhizosphere of healthy kiwifruit and shown to significantly inhibit pathogen growth.
The B.
subtilis C3 strain effectively controls root rot via multiple mechanisms, including direct antagonism, secretion of antimicrobial proteins, promotion of seedling growth, and induction of plant defense enzymes.
In pot and field trials, C3 treatment increased root fresh weight by 84.
1%, enhanced root SOD and APX activities by 45.
7 and 38.
2%, respectively, and reduced disease severity.
Moreover, C3 improved rhizosphere soil microbial diversity of the Rhizosphere, with the Shannon index increasing from 3.
0 to 3.
4.
Unlike previous studies focusing solely on pathogen suppression, this work highlights the dual role of B.
subtilis C3 in controlling root rot and restoring rhizosphere ecological function, offering a green and sustainable biocontrol strategy for kiwifruit production.
Related Results
Genome-wide identification and characterization of the TIFY gene family in kiwifruit
Genome-wide identification and characterization of the TIFY gene family in kiwifruit
Abstract
Background
The TIFY gene family is a group of plant-specific transcription factors involved in regulation of plant growth and development a...
Loss of root-soil contact due to root and root hair shrinkage
Loss of root-soil contact due to root and root hair shrinkage
<p><span>Due to global warming, future agriculture will have to face increasing temperatures, more frequent and extreme drought events and consequently ...
Antioxidant, Antiglaucoma, Anticholinergic, and Antidiabetic Effects of Kiwifruit (Actinidia deliciosa) Oil: Metabolite Profile Analysis Using LC-HR/MS, GC/MS and GC-FID
Antioxidant, Antiglaucoma, Anticholinergic, and Antidiabetic Effects of Kiwifruit (Actinidia deliciosa) Oil: Metabolite Profile Analysis Using LC-HR/MS, GC/MS and GC-FID
Determining the antioxidant abilities and enzyme inhibition profiles of medicinally important plants and their oils is of great importance for a healthy life and the treatment of s...
Rhizosphere microbial ecological characteristics of strawberry root rot
Rhizosphere microbial ecological characteristics of strawberry root rot
IntroductionStrawberry (Fragaria × ananassa Duch.) holds a preeminent position among small fruits globally due to its delectable fruits and significant economic value. However, str...
Productivity of sugar beet seed plants depending on the quality of mother root crops
Productivity of sugar beet seed plants depending on the quality of mother root crops
In the intensive arable farming the productivity of sugar beets depends on many factors: soil-climatic conditions, introduction of highly productive hybrids, quality pre-sowing see...
Effects of grazing intensity on richness and composition of rhizosphere and non-rhizosphere microbial communities in a semiarid grassland
Effects of grazing intensity on richness and composition of rhizosphere and non-rhizosphere microbial communities in a semiarid grassland
1.Overgrazing-induced grassland degradation has become a severe
ecological problem worldwide. The diversity and composition of soil
microbial communities are responsive to grazing ...
Plant domestication shapes rhizosphere microbiome assembly and metabolic functions
Plant domestication shapes rhizosphere microbiome assembly and metabolic functions
Abstract
Background
The rhizosphere microbiome, which is shaped by host genotypes, root exudates, and plant domestication, is crucial for sustaining...
Analysis the Diversity of the rhizosphere microorganisms from Helichrysum arenarium(L.)Moench. and Screening of Growth-promoting Bacteria in Xinjiang, China
Analysis the Diversity of the rhizosphere microorganisms from Helichrysum arenarium(L.)Moench. and Screening of Growth-promoting Bacteria in Xinjiang, China
Rhizosphere microorganisms can utilize nutrient resources in the rhizosphere efficiently, while rhizosphere growth-promoting bacteria play a crucial role in regulating soil fertili...

