Literature DB >> 33638637

Function of the HYDROXYCINNAMOYL-CoA:SHIKIMATE HYDROXYCINNAMOYL TRANSFERASE is evolutionarily conserved in embryophytes.

Lucie Kriegshauser1, Samuel Knosp1, Etienne Grienenberger1, Kanade Tatsumi1, Desirée D Gütle2, Iben Sørensen3, Laurence Herrgott1, Julie Zumsteg1, Jocelyn K C Rose3, Ralf Reski2,4, Danièle Werck-Reichhart1, Hugues Renault1.   

Abstract

The plant phenylpropanoid pathway generates a major class of specialized metabolites and precursors of essential extracellular polymers that initially appeared upon plant terrestrialization. Despite its evolutionary significance, little is known about the complexity and function of this major metabolic pathway in extant bryophytes, which represent the non-vascular stage of embryophyte evolution. Here, we report that the HYDROXYCINNAMOYL-CoA:SHIKIMATE HYDROXYCINNAMOYL TRANSFERASE (HCT) gene, which plays a critical function in the phenylpropanoid pathway during seed plant development, is functionally conserved in Physcomitrium patens (Physcomitrella), in the moss lineage of bryophytes. Phylogenetic analysis indicates that bona fide HCT function emerged in the progenitor of embryophytes. In vitro enzyme assays, moss phenolic pathway reconstitution in yeast and in planta gene inactivation coupled to targeted metabolic profiling, collectively indicate that P. patens HCT (PpHCT), similar to tracheophyte HCT orthologs, uses shikimate as a native acyl acceptor to produce a p-coumaroyl-5-O-shikimate intermediate. Phenotypic and metabolic analyses of loss-of-function mutants show that PpHCT is necessary for the production of caffeate derivatives, including previously reported caffeoyl-threonate esters, and for the formation of an intact cuticle. Deep conservation of HCT function in embryophytes is further suggested by the ability of HCT genes from P. patens and the liverwort Marchantia polymorpha to complement an Arabidopsis thaliana CRISPR/Cas9 hct mutant, and by the presence of phenolic esters of shikimate in representative species of the three bryophyte lineages. © American Society of Plant Biologists 2021. All rights reserved. For permissions, please email: journals.permissions@oup.com.

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Year:  2021        PMID: 33638637      PMCID: PMC8254490          DOI: 10.1093/plcell/koab044

Source DB:  PubMed          Journal:  Plant Cell        ISSN: 1040-4651            Impact factor:   11.277


  84 in total

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Authors:  Z P Adams; J Ehlting; R Edwards
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5.  Identification of a novel delta 6-acyl-group desaturase by targeted gene disruption in Physcomitrella patens.

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7.  The Physcomitrella patens chromosome-scale assembly reveals moss genome structure and evolution.

Authors:  Daniel Lang; Kristian K Ullrich; Florent Murat; Jörg Fuchs; Jerry Jenkins; Fabian B Haas; Mathieu Piednoel; Heidrun Gundlach; Michiel Van Bel; Rabea Meyberg; Cristina Vives; Jordi Morata; Aikaterini Symeonidi; Manuel Hiss; Wellington Muchero; Yasuko Kamisugi; Omar Saleh; Guillaume Blanc; Eva L Decker; Nico van Gessel; Jane Grimwood; Richard D Hayes; Sean W Graham; Lee E Gunter; Stuart F McDaniel; Sebastian N W Hoernstein; Anders Larsson; Fay-Wei Li; Pierre-François Perroud; Jeremy Phillips; Priya Ranjan; Daniel S Rokshar; Carl J Rothfels; Lucas Schneider; Shengqiang Shu; Dennis W Stevenson; Fritz Thümmler; Michael Tillich; Juan C Villarreal Aguilar; Thomas Widiez; Gane Ka-Shu Wong; Ann Wymore; Yong Zhang; Andreas D Zimmer; Ralph S Quatrano; Klaus F X Mayer; David Goodstein; Josep M Casacuberta; Klaas Vandepoele; Ralf Reski; Andrew C Cuming; Gerald A Tuskan; Florian Maumus; Jérome Salse; Jeremy Schmutz; Stefan A Rensing
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10.  4-Coumarate 3-hydroxylase in the lignin biosynthesis pathway is a cytosolic ascorbate peroxidase.

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Journal:  Nat Commun       Date:  2019-04-30       Impact factor: 14.919

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5.  Defining key metabolic roles in osmotic adjustment and ROS homeostasis in the recretohalophyte Karelinia caspia under salt stress.

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6.  Expression of a Hydroxycinnamoyl-CoA Shikimate/Quinate Hydroxycinnamoyl Transferase 4 Gene from Zoysia japonica (ZjHCT4) Causes Excessive Elongation and Lignin Composition Changes in Agrostis stolonifera.

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