Area of research
Plant Science · Renewable Energy, Sustainability and the Environment
Research interest
Research focused on Auxin and Arabidopsis, with related work in Ammonium, Lateral root, Meristem. Notable publications include 'Volatile compounds from beneficial rhizobacteria Bacillus spp. promote periodic lateral root development in Arabidopsis', 'Efficient colonization and harpins mediated enhancement in growth and biocontrol of wilt disease in tomato by Bacillus subtilis', and 'A root cap-localized NAC transcription factor controls root halotropic response to salt stress in Arabidopsis'.
A Coupled GSH/GSNOR System Denitrosylates TRXh5 to Allow Activation of SA Signalling by Oxidative Stress
A rhizobacterium-secreted protein induces lateral root development through the IAA34-PUCHI pathway
Marker-assisted in vivo imaging reveals prepatterning events prior to lateral root organogenesis
A root cap-localized NAC transcription factor controls root halotropic response to salt stress in Arabidopsis
Uncovering the function of peptides: Bridging hormone signaling, microbial interactions, and root development in plants
Plastid-localized amino acid metabolism coordinates rice ammonium tolerance and nitrogen use efficiency
GH3‐mediated auxin inactivation attenuates multiple stages of lateral root development
Promotion of root development by slightly alkaline pH involves an auxin mediated adaption mechanism
Ammonium transporters cooperatively regulate rice crown root formation responding to ammonium nitrogen
Prohibitin 3 gives birth to a new lateral root primordium
Volatile compounds from beneficial rhizobacteria <i>Bacillus</i> spp. promote periodic lateral root development in <i>Arabidopsis</i>
Periodic root branching is influenced by light through an HY1-HY5-auxin pathway
Rice plants respond to ammonium stress by adopting a helical root growth pattern
Cadmium stress suppresses lateral root formation by interfering with the root clock
A comparison of lateral root patterning among dicot and monocot plants
Efficient colonization and harpins mediated enhancement in growth and biocontrol of wilt disease in tomato by <i>Bacillus subtilis</i>