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4. Duplicate and Conquer: Multiple Homologs of PHOSPHORUS-STARVATION TOLERANCE1 Enhance Phosphorus Acquisition and Sorghum Performance on Low-Phosphorus Soils

14. Identification and characterization of Aluminum tolerance loci in Arabidopsis (Landsberg erecta x Columbia) by quantitative trait locus mapping. A physiologically simple but genetically complex trait (1)

19. Adaption of Roots to Nitrogen Deficiency Revealed by 3D Quantification and Proteomic Analysis1[OPEN]

20. Adaption of Roots to Nitrogen Deficiency Revealed by 3D Quantification and Proteomic Analysis

21. Exploiting sorghum genetic diversity for enhanced aluminum tolerance: Allele mining based on the AltSB locus

23. Evolving technologies for growing, imaging and analyzing 3D root system architecture of crop plants

24. Evolving technologies for growing, imaging and analyzing 3D root system architecture of crop plants: Digital phenotyping of root system architecture

26. Molecular and Physiological Analysis of Al3+ and H+ Rhizotoxicities at Moderately Acidic Conditions1[W][OPEN]

27. Aluminum Resistance in Maize Cannot Be Solely Explained by Root Organic Acid Exudation. A Comparative Physiological Study1[w]

28. Duplicate and conquer: Multiple homologs of PHOSPHORUS-STARVATION TOLERANCE1 enhance phosphorus acquisition and sorghum performance on low-phosphorus soils

29. Duplicate and Conquer: Multiple Homologs ofPHOSPHORUS-STARVATION TOLERANCE1Enhance Phosphorus Acquisition and Sorghum Performance on Low-Phosphorus Soils

30. Identification and Characterization of Aluminum Tolerance Loci in Arabidopsis (Landsberg erecta × Columbia) by Quantitative Trait Locus Mapping. A Physiologically Simple But Genetically Complex Trait1

34. Aluminum Effects on Calcium Fluxes at the Root Apex of Aluminum-Tolerant and Aluminum-Sensitive Wheat Cultivars 1

35. A gene in the multidrug and toxic compound extrusion (MATE) family confers aluminum tolerance in sorghum

40. Molecular and Physiological Analysis of Al3+ and H+ Rhizotoxicities at Moderately Acidic Conditions.

41. High-throughput two-dimensional root system phenotyping platform facilitates genetic analysis of root growth and development.

47. Selectivity of Liquid Membrane Cadmium Microelectrodes Based on the Ionophore N,N,N′,N′‐Tetrabutyl‐3,6‐dioxaoctanedithioamide

48. Use of an extracellular, ion-selective, vibrating microelectrode system for the quantification of K+, H+, and Ca2+ fluxes in maize roots and maize suspension cells

49. Evolving technologies for growing, imaging and analyzing 3D root system architecture of crop plants

50. Evolving technologies for growing, imaging and analyzing 3D root system architecture of crop plants

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