Cross-species functional diversity within the PIN auxin efflux protein family.
basic_science · Level V
Where this comes from
- Record sourced from PubMed, PMID 29064367.
- Also identified by DOI 10.7554/eLife.31804 and PMC identifier 5655145.
- Licence recorded as CC0.
- The licence permits redistribution, so the abstract is shown in full and the full text is available from the publisher.
Abstract
In Arabidopsis, development during flowering is coordinated by transport of the hormone auxin mediated by polar-localized PIN-FORMED1 (AtPIN1). However Arabidopsis has lost a PIN clade sister to AtPIN1, Sister-of-PIN1 (SoPIN1), which is conserved in flowering plants. We previously proposed that the AtPIN1 organ initiation and vein patterning functions are split between the SoPIN1 and PIN1 clades in grasses. Here we show that in the grass Brachypodium <i>sopin1</i> mutants have organ initiation defects similar to Arabidopsis <i>atpin1</i>, while loss of <i>PIN1</i> function in Brachypodium has little effect on organ initiation but alters stem growth. Heterologous expression of Brachypodium SoPIN1 and PIN1b in Arabidopsis provides further evidence of functional specificity. SoPIN1 but not PIN1b can mediate flower formation in null <i>atpin1</i> mutants, although both can complement a missense allele. The behavior of SoPIN1 and PIN1b in Arabidopsis illustrates how membrane and tissue-level accumulation, transport activity, and interaction contribute to PIN functional specificity.
Medical subject headings
- Arabidopsis
- Brachypodium
- Indoleacetic Acids
- Membrane Transport Proteins
- Plant Growth Regulators
- Plant Proteins