ROOT PENETRATION INDEX 3, a major quantitative trait locus associated with root system penetrability in Arabidopsis

Author:

Bello Bello Elohim1ORCID,Rico Cambron Thelma Y1ORCID,Ortiz Ramírez Lesly Abril1,Rellán Álvarez Rubén2ORCID,Herrera-Estrella Luis13

Affiliation:

1. Unidad de Genómica Avanzada/LANGEBIO, Centro de Investigación y de Estudios Avanzados , Irapuato , México

2. Department of Molecular and Structural Biochemistry, North Carolina State University , Raleigh, NC , USA

3. Institute of Genomics for Crop Abiotic Stress Tolerance, Department of Plant and Soil Science, Texas Tech University , Lubbock, TX 79409 , USA

Abstract

Abstract Soil mechanical impedance precludes root penetration, confining root system development to shallow soil horizons where mobile nutrients are scarce. Using a two-phase-agar system, we characterized Arabidopsis responses to low and high mechanical impedance at three root penetration stages. We found that seedlings whose roots fail to penetrate agar barriers show a significant reduction in leaf area, root length, and elongation zone and an increment in root diameter, while those capable of penetrating show only minor morphological effects. Analyses using different auxin-responsive reporter lines, exogenous auxins, and inhibitor treatments suggest that auxin responsiveness and PIN-mediated auxin distribution play an important role in regulating root responses to mechanical impedance. The assessment of 21 Arabidopsis accessions revealed that primary root penetrability varies widely among accessions. To search for quantitative trait loci (QTLs) associated to root system penetrability, we evaluated a recombinant inbred population derived from Landsberg erecta (Ler-0, with a high primary root penetrability) and Shahdara (Sha, with a low primary root penetrability) accessions. QTL analysis revealed a major-effect QTL localized in chromosome 3, ROOT PENETRATION INDEX 3 (q-RPI3), which accounted for 29.98% (logarithm of odds=8.82) of the total phenotypic variation. Employing an introgression line (IL-321) with a homozygous q-RPI3 region from Sha in the Ler-0 genetic background, we demonstrated that q-RPI3 plays a crucial role in root penetrability. This multiscale study reveals new insights into root plasticity during the penetration process in hard agar layers, natural variation, and genetic architecture behind primary root penetrability in Arabidopsis.

Funder

Consejo Nacional de Ciencia y Tecnología

Howard Hughes Medical Institute

Publisher

Oxford University Press (OUP)

Subject

Plant Science,Physiology

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1. How do plant roots overcome physical barriers?;Journal of Experimental Botany;2022-08-11

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