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- 8563186 classification A1.
- 8563186 date "2018".
- 8563186 language "eng".
- 8563186 type journalArticle.
- 8563186 hasPart 8563188.pdf.
- 8563186 subject "Biology and Life Sciences".
- 8563186 doi "10.1104/pp.17.01462".
- 8563186 issn "0032-0889".
- 8563186 issn "1532-2548".
- 8563186 issue "1".
- 8563186 volume "176".
- 8563186 abstract "Lignocellulosic biomass is recalcitrant toward deconstruction into simple sugars due to the presence of lignin. To render lignocellulosic biomass a suitable feedstock for the bio-based economy, plants can be engineered to have decreased amounts of lignin. However, engineered plants with the lowest amounts of lignin exhibit collapsed vessels and yield penalties. Previous efforts were not able to fully overcome this phenotype without settling in sugar yield upon saccharification. Here, we reintroduced CINNAMOYL-COENZYME A REDUCTASE1 (CCR1) expression specifically in the protoxylem and metaxylem vessel cells of Arabidopsis (Arabidopsis thaliana) ccr1 mutants. The resulting ccr1 ProSNBE: CCR1 lines had overcome the vascular collapse and had a total stem biomass yield that was increased up to 59% as compared with the wild type. Raman analysis showed that monolignols synthesized in the vessels also contribute to the lignification of neighboring xylary fibers. The cell wall composition and metabolome of ccr1 ProSNBE: CCR1 still exhibited many similarities to those of ccr1 mutants, regardless of their yield increase. In contrast to a recent report, the yield penalty of ccr1 mutants was not caused by ferulic acid accumulation but was (largely) the consequence of collapsed vessels. Finally, ccr1 ProSNBE: CCR1 plants had a 4-fold increase in total sugar yield when compared with wild-type plants.".
- 8563186 author 059C2CD4-596E-11E4-B891-98E1B4D1D7B1.
- 8563186 author 06F34404-F0EE-11E1-A9DE-61C894A0A6B4.
- 8563186 author 1267646E-F0EE-11E1-A9DE-61C894A0A6B4.
- 8563186 author 1D7542E0-F0EE-11E1-A9DE-61C894A0A6B4.
- 8563186 author 9D42F7B8-9FE1-11E7-B747-66BCAD28A064.
- 8563186 author F4385BEC-F0ED-11E1-A9DE-61C894A0A6B4.
- 8563186 author F4472B2C-F0ED-11E1-A9DE-61C894A0A6B4.
- 8563186 author F54F95F4-F0ED-11E1-A9DE-61C894A0A6B4.
- 8563186 author F5D343FE-F0ED-11E1-A9DE-61C894A0A6B4.
- 8563186 author F77A8DB6-F0ED-11E1-A9DE-61C894A0A6B4.
- 8563186 author urn:uuid:29e89458-aa9f-4a6c-913f-250708bae131.
- 8563186 author urn:uuid:cc3a3c8d-7e17-4f5e-aa4d-039fec5be1c8.
- 8563186 dateCreated "2018-05-28T12:49:09Z".
- 8563186 dateModified "2024-11-27T18:59:22Z".
- 8563186 name "Vessel-specific reintroduction of CINNAMOYL-COA REDUCTASE1 (CCR1) in dwarfed ccr1 mutants restores vessel and xylary fiber integrity and increases biomass".
- 8563186 pagination urn:uuid:f15b313f-d0d1-441a-9790-cdc4e35a19cc.
- 8563186 sameAs LU-8563186.
- 8563186 sourceOrganization urn:uuid:317e0d2d-8694-4dbe-80e0-34eeb1ff40d9.
- 8563186 sourceOrganization urn:uuid:531b2e7f-735e-4818-958f-914cfde3c774.
- 8563186 type A1.