Biosynthesis of plant pigments: anthocyanins, betalains and carotenoids
Top Cited Papers
Open Access
- 9 May 2008
- journal article
- Published by Wiley in The Plant Journal
- Vol. 54 (4), 733-749
- https://doi.org/10.1111/j.1365-313x.2008.03447.x
Abstract
Summary: Plant compounds that are perceived by humans to have color are generally referred to as ‘pigments’. Their varied structures and colors have long fascinated chemists and biologists, who have examined their chemical and physical properties, their mode of synthesis, and their physiological and ecological roles. Plant pigments also have a long history of use by humans. The major classes of plant pigments, with the exception of the chlorophylls, are reviewed here. Anthocyanins, a class of flavonoids derived ultimately from phenylalanine, are water‐soluble, synthesized in the cytosol, and localized in vacuoles. They provide a wide range of colors ranging from orange/red to violet/blue. In addition to various modifications to their structures, their specific color also depends on co‐pigments, metal ions and pH. They are widely distributed in the plant kingdom. The lipid‐soluble, yellow‐to‐red carotenoids, a subclass of terpenoids, are also distributed ubiquitously in plants. They are synthesized in chloroplasts and are essential to the integrity of the photosynthetic apparatus. Betalains, also conferring yellow‐to‐red colors, are nitrogen‐containing water‐soluble compounds derived from tyrosine that are found only in a limited number of plant lineages. In contrast to anthocyanins and carotenoids, the biosynthetic pathway of betalains is only partially understood. All three classes of pigments act as visible signals to attract insects, birds and animals for pollination and seed dispersal. They also protect plants from damage caused by UV and visible light.Keywords
This publication has 122 references indexed in Scilit:
- The basic helix–loop–helix domain of maize R links transcriptional regulation and histone modifications by recruitment of an EMSY-related factorProceedings of the National Academy of Sciences, 2007
- A Trafficking Pathway for Anthocyanins Overlaps with the Endoplasmic Reticulum-to-Vacuole Protein-Sorting Route in Arabidopsis and Contributes to the Formation of Vacuolar InclusionsPlant Physiology, 2007
- TheArabidopsisMATE Transporter TT12 Acts as a Vacuolar Flavonoid/H+-Antiporter Active in Proanthocyanidin-Accumulating Cells of the Seed CoatPlant Cell, 2007
- Maize Y9 Encodes a Product Essential for 15-cis-ζ-Carotene IsomerizationPlant Physiology, 2007
- Flavonoid Biosynthesis in Barley Primary Leaves Requires the Presence of the Vacuole and Controls the Activity of Vacuolar Flavonoid TransportPlant Physiology, 2007
- The CauliflowerOrGene Encodes a DnaJ Cysteine-Rich Domain-Containing Protein That Mediates High Levels of β-Carotene AccumulationPlant Cell, 2006
- Carotenoid Cleavage Dioxygenase (CmCCD4a) Contributes to White Color Formation in Chrysanthemum PetalsPlant Physiology, 2006
- Yellow flowers generated by expression of the aurone biosynthetic pathwayProceedings of the National Academy of Sciences, 2006
- A Chromoplast-Specific Carotenoid Biosynthesis Pathway Is Revealed by Cloning of the Tomato white-flower LocusPlant Cell, 2006
- PH4 of Petunia Is an R2R3 MYB Protein That Activates Vacuolar Acidification through Interactions with Basic-Helix-Loop-Helix Transcription Factors of the Anthocyanin PathwayPlant Cell, 2006