Javascript must be enabled to continue!
Cutin and Suberin Polyesters
View through CrossRef
Abstract
Cutin and suberin are cell wall‐associated glycerolipid polymers that are specific to plants. Cutin forms the framework of the cuticle sealing the aerial epidermis, while suberin is present in the periderm of barks and underground organs. Suberised walls are also found in the root endodermis. Barriers based on cutin and suberin restrict the transport of water and solutes across cell walls and limit pathogen invasions. Chemical analysis shows that both polymers are polyesters composed mostly of fatty hydroxyacids, diacids and epoxyacids esterified to each other and to glycerol. Suberin, whose best‐known form is cork, usually differs from cutin (which has C16 and C18 fatty acids) by a higher content of C20–C24 aliphatics and aromatics. In the last 10 years, the identification of mutants of Arabidopsis or other model plants affected in cutin and/or suberin content has allowed the construction of a more complete picture of the polyester biosynthesis pathways, which currently include acyltransferases with unique specificities, fatty acid hydroxylases, acyl‐CoA synthetases, fatty acid elongases, fatty acyl‐CoA reductases, feruloyl transferases, ABC transporters and extracellular transacylases.
Key Concepts
The epidermal cells of plant aerial organs and periderm/endoderm cells synthesise the protective cell wall lipid polymers cutin and suberin respectively.
Cutin and suberin are both polyesters containing glycerol and oxygenated fatty acids.
Cutin structure is not completely understood and suberin structure remains controversial.
Oxygenated fatty acid monomers are produced by fatty acid oxidases of the cytochrome P450 superfamily.
Acylation of oxygenated fatty acids to glycerol is catalysed by special glycerol‐3‐phosphate acyltransferases.
Cutin acylglycerol building blocks are exported to the cell wall and polymerised by extracellular transacylases.
How suberin precursors are assembled is still unknown.
Title: Cutin and Suberin Polyesters
Description:
Abstract
Cutin and suberin are cell wall‐associated glycerolipid polymers that are specific to plants.
Cutin forms the framework of the cuticle sealing the aerial epidermis, while suberin is present in the periderm of barks and underground organs.
Suberised walls are also found in the root endodermis.
Barriers based on cutin and suberin restrict the transport of water and solutes across cell walls and limit pathogen invasions.
Chemical analysis shows that both polymers are polyesters composed mostly of fatty hydroxyacids, diacids and epoxyacids esterified to each other and to glycerol.
Suberin, whose best‐known form is cork, usually differs from cutin (which has C16 and C18 fatty acids) by a higher content of C20–C24 aliphatics and aromatics.
In the last 10 years, the identification of mutants of Arabidopsis or other model plants affected in cutin and/or suberin content has allowed the construction of a more complete picture of the polyester biosynthesis pathways, which currently include acyltransferases with unique specificities, fatty acid hydroxylases, acyl‐CoA synthetases, fatty acid elongases, fatty acyl‐CoA reductases, feruloyl transferases, ABC transporters and extracellular transacylases.
Key Concepts
The epidermal cells of plant aerial organs and periderm/endoderm cells synthesise the protective cell wall lipid polymers cutin and suberin respectively.
Cutin and suberin are both polyesters containing glycerol and oxygenated fatty acids.
Cutin structure is not completely understood and suberin structure remains controversial.
Oxygenated fatty acid monomers are produced by fatty acid oxidases of the cytochrome P450 superfamily.
Acylation of oxygenated fatty acids to glycerol is catalysed by special glycerol‐3‐phosphate acyltransferases.
Cutin acylglycerol building blocks are exported to the cell wall and polymerised by extracellular transacylases.
How suberin precursors are assembled is still unknown.
Related Results
Cutin-Derived Oligomers Act as Damage-Associated Molecular Patterns in
Arabidopsis thaliana
Cutin-Derived Oligomers Act as Damage-Associated Molecular Patterns in
Arabidopsis thaliana
Abstract
The cuticle constitutes the outermost defensive barrier of most land plants. It comprises a polymeric matrix – cutin, surrounded by solu...
Extracellular membrane tubules involved in suberin deposition in plant cell walls
Extracellular membrane tubules involved in suberin deposition in plant cell walls
Abstract
Suberin is a fundamental plant biopolymer, found in protective tissues, such as seed coats, exodermis and endodermis of roots, the outer layers of stems an...
Identification of an Arabidopsis Feruloyl-Coenzyme A Transferase Required for Suberin Synthesis
Identification of an Arabidopsis Feruloyl-Coenzyme A Transferase Required for Suberin Synthesis
AbstractAll plants produce suberin, a lipophilic barrier of the cell wall that controls water and solute fluxes and restricts pathogen infection. It is often described as a heterop...
A Land-Plant-Specific Glycerol-3-Phosphate Acyltransferase Family in Arabidopsis: Substrate Specificity, sn-2 Preference, and Evolution
A Land-Plant-Specific Glycerol-3-Phosphate Acyltransferase Family in Arabidopsis: Substrate Specificity, sn-2 Preference, and Evolution
Abstract
Arabidopsis (Arabidopsis thaliana) has eight glycerol-3-phosphate acyltransferase (GPAT) genes that are members of a plant-specific family with three distin...
Detection of potential suberinase-encoding genes in Streptomyces scabiei strains and other actinobacteria
Detection of potential suberinase-encoding genes in Streptomyces scabiei strains and other actinobacteria
Streptomyces scabiei causes common scab, an economically important disease of potato tubers. Some authors have previously suggested that S. scabiei penetration into host plant tiss...
Suberin Biosynthesis, Assembly, and Regulation
Suberin Biosynthesis, Assembly, and Regulation
Suberin is a specialized cell wall modifying polymer comprising both phenolic-derived and fatty acid-derived monomers, which is deposited in below-ground dermal tissues (epidermis,...
A Functional Exodermal Suberin is Key for Plant Nutrition and Growth in Potato
A Functional Exodermal Suberin is Key for Plant Nutrition and Growth in Potato
ABSTRACT
Angiosperm roots, except in Arabidopsis, have both endodermis and exodermis, which regulate radial water and solute movement through lig...
Cuticular transpiration is not affected by enhanced wax and cutin amounts in response to osmotic stress in barley
Cuticular transpiration is not affected by enhanced wax and cutin amounts in response to osmotic stress in barley
AbstractThe plant cuticle, which covers all aerial parts of plants in their primary developmental stage, is the major barrier against water loss from leaves. Accumulation of cutin ...

