Area of research
Plant Science · Renewable Energy, Sustainability and the Environment
Research interest
Research interests include Algal biology and biofuel production, Plant-Microbe Interactions and Immunity, Legume Nitrogen Fixing Symbiosis, and Aquatic Ecosystems and Phytoplankton Dynamics.
High‐Efficiency CRISPR‐Cas9 Genome Editing Unveils Biofilm Insights and Enhances Antimicrobial Activity in <i>Bacillus velezensis</i> FZB42
Enhancing yields: The role of fish tank illumination and coupling/decoupling in biofloc aquaponics performance
Deciphering <i>D</i>-2,3-Butanediol Metabolic Pathways in a Newly Isolated <i>Bacillus velezensis</i> and Rationally Engineering <i>Bacillus subtilis</i> for Efficient Production of Optically Pure <i>D</i>-2,3-Butanediol
Enhancing Yields: The Role of Fish Tank Illumination and Coupling/Decoupling in Biofloc Aquaponics Performance
Polyhydroxybutyrates Production by Azospirillum brasilense as a Microalgal Growth Promotion Trait During CO2 Fixation from Biogas
Interaction of Azospirillum with Microalgae
Beyond Agriculture: Use of Azospirillum for Environmental Purposes
Recommendations for plant growth-promoting bacteria inoculation studies
Metabolic and physiological adaptations of microalgal growth-promoting bacterium Azospirillum brasilense growing under biogas atmosphere: a microarray-based transcriptome analysis
Microalga Growth-Promoting Bacteria as Strategy to Improve CO2 Removal from Biogas
Enhancing the survival rate and effectiveness of plant growth-promoting bacteria through bioencapsulation techniques
Editorial: Highlights from the 12th plant growth-promoting rhizobacteria workshop
Methodological and interpretational problems in plant growth-promoting bacteria inoculation studies
The Potential of Microalgae–Bacteria Consortia to Restore Degraded Soils
The Potential of Microalgae-Bacteria Consortia to Restore Degraded Soils.
Microencapsulation of Bacillus Strains for Improving Wheat (Triticum turgidum Subsp. durum) Growth and Development
Active indole-3-acetic acid biosynthesis by the bacterium Azospirillum brasilense cultured under a biogas atmosphere enables its beneficial association with microalgae
Microencapsulation of <i>Bacillus</i> Strains for Improving Wheat (<i>Triticum turgidum Subsp. durum</i>) Growth and Development.
Polycationic Surfaces Promote Whole-Cell Immobilization and Induce Microgranulation of <i>Clostridium saccharoperbutylacetonicum</i> N1-4 for Enhanced Biobutanol Production
Soil Type Influences Novel “Milpa” Isolates of Trichoderma virens and Aspergillus tubingensis That Promote Solubilization, Mineralization, and Phytoabsorption of Phosphorus in Capsicum annuum L.
Microbiome: A Tool for Plant Stress Management in Future Production Systems
Microbiome: A Tool for Plant Stress Management in Future Production Systems
Soil Type Influences Novel "Milpa" Isolates of <i>Trichoderma</i> virens and <i>Aspergillus tubingensis</i> That Promote Solubilization, Mineralization, and Phytoabsorption of Phosphorus in <i>Capsicum annuum</i> L.
Toward the Enhancement of Microalgal Metabolite Production through Microalgae–Bacteria Consortia
The <scp> <i>Azospirillum brasilense</i> </scp> type <scp>VI</scp> secretion system promotes cell aggregation, biocontrol protection against phytopathogens and attachment to the microalgae <scp> <i>Chlorella sorokiniana</i> </scp>
Azospirillum brasilense reduces oxidative stress in the green microalgae Chlorella sorokiniana under different stressors
The Azospirillum brasilense type VI secretion system promotes cell aggregation, biocontrol protection against phytopathogens and attachment to the microalgae Chlorella sorokiniana.
The immediate effect of riboflavin and lumichrome on the mitigation of saline stress in the microalga Chlorella sorokiniana by the plant-growth-promoting bacterium Azospirillum brasilense
Identification and Investigation of Autolysin Genes in Clostridium saccharoperbutylacetonicum Strain N1-4 for Enhanced Biobutanol Production