02469naa a2200265 a 450000100080000000500110000800800410001902400520006010000200011224501150013226000090024752016800025665000140193665000100195065000110196065000130197170000210198470000190200570000220202470000210204670000190206770000190208670000160210577300820212121242172020-08-06 2020 bl uuuu u00u1 u #d7 ahttps://doi.org/10.1007/s40626-020-00175-w2DOI1 aSIQUEIRA, J. A. aMetabolic and physiological adjustments of maize leaves in response to aluminum stress.h[electronic resource] c2020 aAcidic soils with elevated aluminum (Al) saturations are worldwide distributed and harm the crop production in most of the tropical and subtropical regions. Under these conditions, root elongation may be impaired and thus disturbs water and nutrient uptake. Consequently, physiological responses of plants challenged with excess Al may resemble those of drought stresses. Here, we hypothesized that drought tolerant plants are also Al tolerant due to changes in growth, metabolic and physiological adjustments in leaves. Two maize genotypes, BRS1010 and BRS1055, sensitive and tolerant to drought, respectively, were hydroponically grown under controlled conditions and challenged with two Al concentrations (0 and 100 µM AlCl3) for 5 days. After treatment with Al, BRS1055 plants displayed increased leaf and stem elongation whereas the relative root growth rate remained unchanged. This was accompanied by unaltered root structure, photosynthetic efficiency and leaf primary metabolism. In sharp contrast, the BRS1010 plants were sensitive to Al, exhibiting a reduction in leaf and stem elongation and biomass accumulation in shoot and root, as well as greater structural damages in root tips. Additionally, in response to Al, lipid peroxidation increased in BRS1010 leaves in parallel to inhibition of photosynthetic performance and dark respiration. Moreover, compared to control treatment, the genotype BRS1010 displayed a large accumulation of sugars, amino acid, proteins and organic acids in leaves under Al stress. Therefore, the leaf physiology and metabolism are pivotal players in modulating Al tolerance in maize. © 2020, Brazilian Society of Plant Physiology. aAlumínio aMilho aStress aZea Mays1 aBARROS, J. A. S.1 aDAL-BIANCO, M.1 aMARTINS, S. C. V.1 aMAGALHAES, P. C.1 aDAMATTA, F. M.1 aARAÚJO, W. L.1 aRIBEIRO, C. tTheoretical and Experimental Plant Physiologygv. 32, n. 2, p. 133-145, 2020.