The HD-ZIP IV transcription factor GLABRA2 acts as an activator for proanthocyanidin biosynthesis in Medicago truncatula seed coat
- PMID: 38990552
- DOI: 10.1111/tpj.16918
The HD-ZIP IV transcription factor GLABRA2 acts as an activator for proanthocyanidin biosynthesis in Medicago truncatula seed coat
Abstract
Proanthocyanidins (PAs), a group of flavonoids, are found in leaves, flowers, fruits, and seed coats of many plant species. PAs are primarily composed of epicatechin units in the seed coats of the model legume species, Medicago truncatula. It can be synthesized from two separate pathways, the leucoanthocyanidin reductase (MtLAR) pathway and the anthocyanidin synthase (MtANS) pathway, which produce epicatechin through anthocyanidin reductase (MtANR). These pathways are mainly controlled by the MYB-bHLH-WD40 (MBW) ternary complex. Here, we characterize a class IV homeodomain-leucine zipper (HD-ZIP IV) transcription factor, GLABRA2 (MtGL2), which contributes to PA biosynthesis in the seed coat of M. truncatula. Null mutation of MtGL2 results in dark brown seed coat, which is accompanied by reduced PAs accumulation and increased anthocyanins content. The MtGL2 gene is predominantly expressed in the seed coat during the early stages of seed development. Genetic and molecular analyses indicate that MtGL2 positively regulates PA biosynthesis by directly activating the expression of MtANR. Additionally, our results show that MtGL2 is strongly induced by the MBW activator complexes that are involved in PA biosynthesis. Taken together, our results suggest that MtGL2 acts as a novel positive regulator in PA biosynthesis, expanding the regulatory network and providing insights for genetic engineering of PA production.
Keywords: Medicago truncatula; GLABRA2; HD‐ZIP IV transcription factor; anthocyanidin reductase; proanthocyanidin; seed coat.
© 2024 Society for Experimental Biology and John Wiley & Sons Ltd.
References
REFERENCES
-
- Abrahams, S., Tanner, G.J., Larkin, P.J. & Ashton, A.R. (2002) Identification and biochemical characterization of mutants in the proanthocyanidin pathway in Arabidopsis. Plant Physiology, 130, 561–576.
-
- Albert, S., Delseny, M. & Devic, M. (1997) BANYULS, a novel negative regulator of flavonoid biosynthesis in the Arabidopsis seed coat. The Plant Journal, 11, 289–299.
-
- Amil‐Ruiz, F., Blanco‐Portales, R., Muñoz‐Blanco, J. & Caballero, J.L. (2011) The strawberry plant defense mechanism: a molecular review. Plant and Cell Physiology, 52, 1873–1903.
-
- Appelhagen, I., Thiedig, K., Nordholt, N., Schmidt, N., Huep, G., Sagasser, M. et al. (2014) Update on transparent testa mutants from Arabidopsis thaliana: characterisation of new alleles from an isogenic collection. Planta, 240, 955–970.
-
- Bruex, A., Kainkaryam, R.M., Wieckowski, Y., Kang, Y.H., Bernhardt, C., Xia, Y. et al. (2012) A gene regulatory network for root epidermis cell differentiation in Arabidopsis. PLoS Genetics, 8, e1002446.
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