The aluminium activated malate transporter (ALMT) gene family is named after the first member of the family identified in wheat (Triticum aestivum L.). The product of this gene controls resistance to aluminium (Al) toxicity. ALMT genes encode transmembrane proteins that function as anion channels and perform multiple functions involving the transport of organic anions (e.g., carboxylates) and inorganic anions in cells. They share a PF11744 domain and are classified in the Fusaric acid resistance protein-like superfamily, CL0307. The proteins typically have five to seven transmembrane regions in the N-terminal half and a long hydrophillic C-terminal tail but predictions of secondary structure vary. Although widely spread in plants, relativel...
IntroductionAluminum (Al)-activated malate transporters (ALMTs) play an important role in the respon...
IntroductionAluminum (Al)-activated malate transporters (ALMTs) play an important role in the respon...
Not AvailableAcid soils limit plant production worldwide because their high concentrations of solubl...
The aluminium activated malate transporter (ALMT) gene family is named after the first member of the...
The aluminium activated malate transporter (ALMT) gene family is named after the first member of the...
The ALMT (aluminium-activated malate transporter) family comprises a functionally diverse but struct...
Acid soils restrict plant production around the world. One of the major limitations to plant growth ...
AbstractSoluble aluminium (Al3+) is the major constraint to plant growth on acid soils. Plants have ...
Members of the aluminium (Al)-activated malate transporter (ALMT) gene family encode transmembrane p...
Members of the ALMT gene family contribute to the Al(3+) resistance of several plant species by faci...
Background: Aluminium (Al) toxicity is a major agricultural constraint for crop cultivation on acid ...
IntroductionAluminum (Al)-activated malate transporters (ALMTs) play an important role in the respon...
IntroductionAluminum (Al)-activated malate transporters (ALMTs) play an important role in the respon...
IntroductionAluminum (Al)-activated malate transporters (ALMTs) play an important role in the respon...
The phytotoxic effects of aluminum (Al) on root systems of crop plants constitute a major agricultur...
IntroductionAluminum (Al)-activated malate transporters (ALMTs) play an important role in the respon...
IntroductionAluminum (Al)-activated malate transporters (ALMTs) play an important role in the respon...
Not AvailableAcid soils limit plant production worldwide because their high concentrations of solubl...
The aluminium activated malate transporter (ALMT) gene family is named after the first member of the...
The aluminium activated malate transporter (ALMT) gene family is named after the first member of the...
The ALMT (aluminium-activated malate transporter) family comprises a functionally diverse but struct...
Acid soils restrict plant production around the world. One of the major limitations to plant growth ...
AbstractSoluble aluminium (Al3+) is the major constraint to plant growth on acid soils. Plants have ...
Members of the aluminium (Al)-activated malate transporter (ALMT) gene family encode transmembrane p...
Members of the ALMT gene family contribute to the Al(3+) resistance of several plant species by faci...
Background: Aluminium (Al) toxicity is a major agricultural constraint for crop cultivation on acid ...
IntroductionAluminum (Al)-activated malate transporters (ALMTs) play an important role in the respon...
IntroductionAluminum (Al)-activated malate transporters (ALMTs) play an important role in the respon...
IntroductionAluminum (Al)-activated malate transporters (ALMTs) play an important role in the respon...
The phytotoxic effects of aluminum (Al) on root systems of crop plants constitute a major agricultur...
IntroductionAluminum (Al)-activated malate transporters (ALMTs) play an important role in the respon...
IntroductionAluminum (Al)-activated malate transporters (ALMTs) play an important role in the respon...
Not AvailableAcid soils limit plant production worldwide because their high concentrations of solubl...