CRISPR/Cas9 editing of p-COUMAROYL-CoA:MONOLIGNOL TRANSFERASE 1 in maize alters phenolic metabolism, lignin structure, and lignin-first biomass processing.

 0 Người đánh giá. Xếp hạng trung bình 0

Tác giả: Wout Boerjan, Alexandra A Chanoca, Iris Cornet, Griet Coussens, Jordi Geerts, Geert Goeminne, Marcelo de F Lima, Kris Morreel, Thatiane R Mota, Dyoni M Oliveira, Laurens Pauwels, John Ralph, Marina de L S Saleme, Bert F Sels, Rebecca A Smith, Korneel Van Aelst, Klaas Vandepoele, Dries Vaneechoutte, Thijs Vangeel, Yasmine Vanhevel, Ruben Vanholme

Ngôn ngữ: eng

Ký hiệu phân loại: 920.71 Men

Thông tin xuất bản: England : Trends in biotechnology , 2025

Mô tả vật lý:

Bộ sưu tập: NCBI

ID: 148183

Valorization of lignocellulosic biomass for sustainable production of high-value chemicals is challenged by the complexity of lignin, a phenolic biopolymer. Beyond the classical lignin monomers derived from p-coumaryl, coniferyl, and sinapyl alcohol, grass lignins incorporate substantial amounts of monolignol p-coumarates that are produced by p-COUMAROYL-CoA:MONOLIGNOL TRANSFERASE (PMT). Here, the CRISPR/Cas9-mediated mutation of ZmPMT1 in maize enabled the design of biomass depleted in p-coumaroylated lignin and enriched in guaiacyl lignin. Lignin-first biorefining of stem biomass from zmpmt1 mutants by reductive catalytic fractionation (RCF) generated a lignin oil depleted in carboxylates and enriched in guaiacyl-derived alcohols, which are desirable substrates for bio-based polyurethane synthesis. The reported lignin engineering in maize is a promising strategy for designing a dual-purpose crop, providing both food and feed, along with a renewable feedstock for the production of plant-based chemicals.
Tạo bộ sưu tập với mã QR

THƯ VIỆN - TRƯỜNG ĐẠI HỌC CÔNG NGHỆ TP.HCM

ĐT: (028) 36225755 | Email: tt.thuvien@hutech.edu.vn

Copyright @2024 THƯ VIỆN HUTECH