Repository logo
Log In(current)
  1. Home
  2. Colleges & Schools
  3. College of Arts and Sciences
  4. Biochemistry & Cellular and Molecular Biology
  5. Biochemistry, Cellular and Molecular Biology Publications and Other Works
  6. Down-regulation of the caffeic acid O-methyltransferase gene in switchgrass reveals a novel monolignol analog
Details

Down-regulation of the caffeic acid O-methyltransferase gene in switchgrass reveals a novel monolignol analog

Date Issued
September 21, 2012
Author(s)
Tschaplinski, Timothy J.
Standaert, Robert F.  
Engle, Nancy L.
Martin, Madhavi Z.
Sangha, Amandeep K.  
Parks, Jerry M.
Smith, Jeremy C.  
Samuel, Reichel
Jiang, Nan
Pu, Yunqiao
Ragauskas, Arthur J.
Hamilton, Choo Y.  
Fu, Chunxiang
Wang, Zeng-Yu
Davidson, Brian H.
Dixon, Richard A.
Mielenz, Jonathan R.
Permanent URI
https://trace.tennessee.edu/handle/20.500.14382/15603
Abstract

Background


Down-regulation of the caffeic acid 3-O-methyltransferase EC 2.1.1.68 (COMT) gene in the lignin biosynthetic pathway of switchgrass (Panicum virgatum) resulted in cell walls of transgenic plants releasing more constituent sugars after pretreatment by dilute acid and treatment with glycosyl hydrolases from an added enzyme preparation and from Clostridium thermocellum. Fermentation of both wild-type and transgenic switchgrass after milder hot water pretreatment with no water washing showed that only the transgenic switchgrass inhibited C. thermocellum. Gas chromatography–mass spectrometry (GCMS)-based metabolomics were undertaken on cell wall aqueous extracts to determine the nature of the microbial inhibitors.

Results

GCMS confirmed the increased concentration of a number of phenolic acids and aldehydes that are known inhibitors of microbial fermentation. Metabolomic analyses of the transgenic biomass additionally revealed the presence of a novel monolignol-like metabolite, identified as trans-3, 4-dimethoxy-5-hydroxycinnamyl alcohol (iso-sinapyl alcohol) in both non-pretreated, as well as hot water pretreated samples. iso-Sinapyl alcohol and its glucoside were subsequently generated by organic synthesis and the identity of natural and synthetic materials were confirmed by mass spectrometric and NMR analyses. The additional novel presence of iso-sinapic acid, iso-sinapyl aldehyde, and iso-syringin suggest the increased activity of a para-methyltransferase, concomitant with the reduced COMT activity, a strict meta-methyltransferase. Quantum chemical calculations were used to predict the most likely homodimeric lignans generated from dehydration reactions, but these products were not evident in plant samples.

Conclusions

Down-regulation of COMT activity in switchgrass resulted in the accumulation of previously undetected metabolites resembling sinapyl alcohol and its related metabolites, but that are derived from para-methylation of 5-hydroxyconiferyl alcohol, and related precursors and products; the accumulation of which suggests altered metabolism of 5-hydroxyconiferyl alcohol in switchgrass. Given that there was no indication that iso-sinapyl alcohol was integrated in cell walls, it is considered a monolignol analog. Diversion of substrates from sinapyl alcohol to free iso-sinapyl alcohol, its glucoside, and associated upstream lignin pathway changes, including increased phenolic aldehydes and acids, are together associated with more facile cell wall deconstruction, and to the observed inhibitory effect on microbial growth. However, iso-sinapyl alcohol and iso-sinapic acid, added separately to media, were not inhibitory to C. thermocellum cultures.

Subjects

trans-3

4-Dimethoxy-5-hydroxy...

iso-Sinapyl alcohol

Monolignol

Switchgrass

Bioenergy

Recalcitrance

Caffeic acid O-methyl...

Transgenic

Disciplines
Biochemistry, Biophysics, and Structural Biology
Recommended Citation
Biotechnology for Biofuels 2012, 5:71 doi:10.1186/1754-6834-5-71
Embargo Date
July 12, 2013
File(s)
Thumbnail Image
Name

1754_6834_5_71.pdf

Size

1.03 MB

Format

Adobe PDF

Checksum (MD5)

eb80474190833d00857d826eaf136892


University Libraries

1015 Volunteer Boulevard
Knoxville, TN 37996
865-974-4351

Map & Directions
Donate to the Libraries
  • About
  • John C. Hodges Society
  • Speaking Volumes magazine
  • Outreach
  • Directory
  • Employment
  • Policies
  • Library Intranet
University of Tennessee power T logo

The University of Tennessee, Knoxville
Knoxville, Tennessee 37996
865-974-1000

Events
A-Z
Apply
Privacy
Map
Directory
Give to UT
Accessibility

Built with DSpace-CRIS software - Extension maintained and optimized by 4Science