The phenylpropanoid pathway converts the aromatic amino acid phenylalanine into a wide range of secondary metabolites. Most of the carbon entering the pathway incorporates into the building blocks of lignin, an aromatic polymer providing mechanical strength to plants. Several intermediates in the phenylpropanoid pathway serve as precursors for distinct classes of metabolites that branch out from the core pathway. Untangling this metabolic network in Arabidopsis was largely done using phenylpropanoid pathway mutants, all with different degrees of lignin depletion and associated growth defects. The phenotypic defects of some phenylpropanoid pathway mutants have been attributed to differentially accumulating phenylpropanoids or phenylpropanoid...
The first enzyme of the phenylpropanoid pathway, Phe ammonia-lyase (PAL), is encoded by four genes i...
Lignin engineering is an attractive strategy to improve lignocellulosic biomass quality for processi...
Throughout time, plants have evolved the capacity to biosynthesize an array of secondary metabolite...
The phenylpropanoid pathway converts the aromatic amino acid phenylalanine into a wide range of seco...
The phenylpropanoid pathway gives rise to a wide variety of specialized metabolites, but the majorit...
The phenylpropanoid pathway gives rise to a wide variety of specialized metabolites, but the majorit...
The phenylpropanoid pathway, which is conserved throughout land plants, is responsible for the biosy...
Phenylpropanoid biosynthesis has been studied for decades in many different plant species. In the la...
Lignin engineering is an attractive strategy to improve lignocellulosic biomass quality for processi...
Lignin engineering is an attractive strategy to improve lignocellulosic biomass quality for processi...
Lignin engineering is an attractive strategy to improve lignocellulosic biomass quality for processi...
The plant phenylpropanoid pathway is initiated from deamination of phenylalanine to form cinnamic ac...
The first enzyme of the phenylpropanoid pathway, Phe ammonia-lyase (PAL), is encoded by four genes i...
The first enzyme of the phenylpropanoid pathway, Phe ammonia-lyase (PAL), is encoded by four genes i...
L-phenylalanine (Phe) is an important amino acid which is the precursor of various plant secondary m...
The first enzyme of the phenylpropanoid pathway, Phe ammonia-lyase (PAL), is encoded by four genes i...
Lignin engineering is an attractive strategy to improve lignocellulosic biomass quality for processi...
Throughout time, plants have evolved the capacity to biosynthesize an array of secondary metabolite...
The phenylpropanoid pathway converts the aromatic amino acid phenylalanine into a wide range of seco...
The phenylpropanoid pathway gives rise to a wide variety of specialized metabolites, but the majorit...
The phenylpropanoid pathway gives rise to a wide variety of specialized metabolites, but the majorit...
The phenylpropanoid pathway, which is conserved throughout land plants, is responsible for the biosy...
Phenylpropanoid biosynthesis has been studied for decades in many different plant species. In the la...
Lignin engineering is an attractive strategy to improve lignocellulosic biomass quality for processi...
Lignin engineering is an attractive strategy to improve lignocellulosic biomass quality for processi...
Lignin engineering is an attractive strategy to improve lignocellulosic biomass quality for processi...
The plant phenylpropanoid pathway is initiated from deamination of phenylalanine to form cinnamic ac...
The first enzyme of the phenylpropanoid pathway, Phe ammonia-lyase (PAL), is encoded by four genes i...
The first enzyme of the phenylpropanoid pathway, Phe ammonia-lyase (PAL), is encoded by four genes i...
L-phenylalanine (Phe) is an important amino acid which is the precursor of various plant secondary m...
The first enzyme of the phenylpropanoid pathway, Phe ammonia-lyase (PAL), is encoded by four genes i...
Lignin engineering is an attractive strategy to improve lignocellulosic biomass quality for processi...
Throughout time, plants have evolved the capacity to biosynthesize an array of secondary metabolite...