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Overexpression of a serine hydroxymethyltransferase increases biomass production and reduces recalcitrance in the bioenergy crop Populus

Authors :
Chang Geun Yoo
William H. Rottmann
Nancy L. Engle
Mi Li
Sara S. Jawdy
Gerald A. Tuskan
Cassandra Collins
Jeremy Schmutz
Wellington Muchero
Xiaohan Yang
Vasanth R. Singan
Yunqiao Pu
Kimberly A. Winkeler
Lee E. Gunter
Anthony C. Bryan
Erika Lindquist
Jin Zhang
Kerrie Barry
Timothy J. Tschaplinski
Jin-Gui Chen
Arthur J. Ragauskas
Source :
Sustainable Energy & Fuels. 3:195-207
Publication Year :
2019
Publisher :
Royal Society of Chemistry (RSC), 2019.

Abstract

Cell wall recalcitrance is the major obstacle for plant biomass conversion to biofuels. In this study, we functionally characterized a serine hydroxymethyltransferase (SHMT) from Populus and evaluated its potential for developing lignocellulosic feedstocks. SHMT is an enzyme that plays an important role in cellular one-carbon pathways. However, little is known about its function in plant cell wall-related processes. Among nine SHMT genes in the Populus genome, PtSHMT2 was highly expressed in the developing xylem and was co-expressed with secondary cell wall biosynthetic genes. In Populus transgenic plants overexpressing PdSHMT2, the biomass yield and sugar (glucose and xylose) release were increased whereas the lignin content was decreased. Transcriptomics and metabolomics analyses revealed that genes and metabolites related to secondary cell wall biosynthesis were affected by PdSHMT2 overexpression. Based on the transcription factor binding sites of differentially expressed genes in PdSHMT2 overexpression lines, a total of 27 hub transcription factors were identified. We proposed a regulatory model of action of PdSHMT2 with transcriptional master switches of secondary cell wall biosynthesis. Collectively, these results suggest that PdSHMT2 is a promising candidate for genetic engineering to improve feedstock characteristics to enhance biofuel conversion and reduce the cost of lignocellulosic biofuel production.

Details

ISSN :
23984902
Volume :
3
Database :
OpenAIRE
Journal :
Sustainable Energy & Fuels
Accession number :
edsair.doi...........8dd7a504d8d3f720a12a87ed2ca461ff
Full Text :
https://doi.org/10.1039/c8se00471d