Root System Architecture from Coupling Cell Shape to Auxin Transport
نویسندگان
چکیده
Lateral organ position along roots and shoots largely determines plant architecture, and depends on auxin distribution patterns. Determination of the underlying patterning mechanisms has hitherto been complicated because they operate during growth and division. Here, we show by experiments and computational modeling that curvature of the Arabidopsis root influences cell sizes, which, together with tissue properties that determine auxin transport, induces higher auxin levels in the pericycle cells on the outside of the curve. The abundance and position of the auxin transporters restricts this response to the zone competent for lateral root formation. The auxin import facilitator, AUX1, is up-regulated by auxin, resulting in additional local auxin import, thus creating a new auxin maximum that triggers organ formation. Longitudinal spacing of lateral roots is modulated by PIN proteins that promote auxin efflux, and pin2,3,7 triple mutants show impaired lateral inhibition. Thus, lateral root patterning combines a trigger, such as cell size difference due to bending, with a self-organizing system that mediates alterations in auxin transport.
منابع مشابه
Correction: Root System Architecture from Coupling Cell Shape to Auxin Transport
Since publication of this paper, the authors became aware of details in the preparation of a composite figure that required correction. In the previous version of Figure 2, a segment within a cortical cell close to the shootward end of panel 2D1 was processed to match between overlapping images, which does not fully comply with image processing standards. We have reconstructed all composite pan...
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ورودعنوان ژورنال:
- PLoS Biology
دوره 6 شماره
صفحات -
تاریخ انتشار 2008