TY - JOUR
T1 - Gravity-regulated differential auxin transport from columella to lateral root cap cells
AU - Bhalerao, Rishikesh P.
AU - Sandberg, Göran
AU - Evans, M
AU - Ishikawa, H
AU - Ottenschlager, I
AU - Wollf, P
AU - Wolverton, C
AU - Palme, K
PY - 2003
Y1 - 2003
N2 - Gravity-induced root curvature has long been considered to be regulated by differential distribution of the plant hormone auxin. However, the cells establishing these gradients, and the transport mechanisms involved, remain to be identified. Here, we describe a GFP-based auxin biosensor to monitor auxin during Arabidopsis root gravitropism at cellular resolution. We identify elevated auxin levels at the root apex in columella cells, the site of gravity perception, and an asymmetric auxin flux from these cells to the lateral root cap (LRC) and toward the elongation zone after gravistimulation. We differentiate between an efflux-dependent lateral auxin transport from columella to LRC cells, and an efflux-and influx-dependent basipetal transport from the LRC to the elongation zone. We further demonstrate that endogenous gravitropic auxin gradients develop even in the presence of an exogenous source of auxin. Live-cell auxin imaging provides unprecedented insights into gravity-regulated auxin flux at cellular resolution, and strongly suggests that this flux is a prerequisite for root gravitropism.
AB - Gravity-induced root curvature has long been considered to be regulated by differential distribution of the plant hormone auxin. However, the cells establishing these gradients, and the transport mechanisms involved, remain to be identified. Here, we describe a GFP-based auxin biosensor to monitor auxin during Arabidopsis root gravitropism at cellular resolution. We identify elevated auxin levels at the root apex in columella cells, the site of gravity perception, and an asymmetric auxin flux from these cells to the lateral root cap (LRC) and toward the elongation zone after gravistimulation. We differentiate between an efflux-dependent lateral auxin transport from columella to LRC cells, and an efflux-and influx-dependent basipetal transport from the LRC to the elongation zone. We further demonstrate that endogenous gravitropic auxin gradients develop even in the presence of an exogenous source of auxin. Live-cell auxin imaging provides unprecedented insights into gravity-regulated auxin flux at cellular resolution, and strongly suggests that this flux is a prerequisite for root gravitropism.
KW - gravitropic root curvature
KW - polar auxin transport
KW - auxin carrier proteins
KW - gravitropic root curvature
KW - polar auxin transport
KW - auxin carrier proteins
UR - https://res.slu.se/id/publ/1622
U2 - 10.1073/pnas.0437936100
DO - 10.1073/pnas.0437936100
M3 - Journal article
C2 - 12594336
SN - 1091-6490
VL - 100
SP - 2987
EP - 2991
JO - Proceedings of the National Academy of Sciences
JF - Proceedings of the National Academy of Sciences
IS - 5
ER -