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      TALEN‐mediated targeted mutagenesis of more than 100 COMT copies/alleles in highly polyploid sugarcane improves saccharification efficiency without compromising biomass yield

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          Summary

          Sugarcane is the world's most efficient feedstock for commercial production of bioethanol due to its superior biomass production and accumulation of sucrose in stems. Integrating first‐ and second‐generation ethanol conversion processes will enhance the biofuel yield per unit area by utilizing both sucrose and cell wall‐bound sugars for fermentation. RNAi suppression of the lignin biosynthetic gene caffeic acid O‐methyltransferase ( COMT ) has been demonstrated to improve bioethanol production from lignocellulosic biomass. Genome editing has been used in a number of crops for creation of loss of function phenotypes but is very challenging in sugarcane due to its highly polyploid genome. In this study, a conserved region of COMT was targeted with a single‐transcription activator‐like effector nuclease ( TALEN) pair for multi‐allelic mutagenesis to modify lignin biosynthesis in sugarcane. Field‐grown TALEN‐mediated COMT mutants showed up to 19.7% lignin reduction and significantly decreased syringyl to guaiacyl (S/G) ratio resulting in an up to 43.8% improved saccharification efficiency. Biomass production of COMT mutant lines with superior saccharification efficiency did not differ significantly from the original cultivar under replicated field conditions. Sanger sequencing of cloned COMT amplicons (1351–1657 bp) revealed co‐editing of 107 of the 109 unique COMT copies/alleles in vegetative progeny of line CB6 using a single TALEN pair. Line CB6 combined altered cell wall composition and drastically improved saccharification efficiency with good agronomic performance. These findings confirm the feasibility of co‐mutagenesis of a very large number of target alleles/copies for improvement in crops with complex genomes.

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          Most cited references63

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          Rapid isolation of high molecular weight plant DNA.

          A method is presented for the rapid isolation of high molecular weight plant DNA (50,000 base pairs or more in length) which is free of contaminants which interfere with complete digestion by restriction endonucleases. The procedure yields total cellular DNA (i.e. nuclear, chloroplast, and mitochondrial DNA). The technique is ideal for the rapid isolation of small amounts of DNA from many different species and is also useful for large scale isolations.
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            A TALE nuclease architecture for efficient genome editing.

            Nucleases that cleave unique genomic sequences in living cells can be used for targeted gene editing and mutagenesis. Here we develop a strategy for generating such reagents based on transcription activator-like effector (TALE) proteins from Xanthomonas. We identify TALE truncation variants that efficiently cleave DNA when linked to the catalytic domain of FokI and use these nucleases to generate discrete edits or small deletions within endogenous human NTF3 and CCR5 genes at efficiencies of up to 25%. We further show that designed TALEs can regulate endogenous mammalian genes. These studies demonstrate the effective application of designed TALE transcription factors and nucleases for the targeted regulation and modification of endogenous genes.
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              High-efficiency TALEN-based gene editing produces disease-resistant rice.

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                Author and article information

                Contributors
                altpeter@ufl.edu
                Journal
                Plant Biotechnol J
                Plant Biotechnol. J
                10.1111/(ISSN)1467-7652
                PBI
                Plant Biotechnology Journal
                John Wiley and Sons Inc. (Hoboken )
                1467-7644
                1467-7652
                18 November 2017
                April 2018
                : 16
                : 4 ( doiID: 10.1111/pbi.2018.16.issue-4 )
                : 856-866
                Affiliations
                [ 1 ] Agronomy Department IFAS, University of Florida Gainesville FL USA
                [ 2 ] Novozymes North America Inc Franklinton NC USA
                [ 3 ] Clean Energy Research Center Korea Institute of Science and Technology (KIST) Seoul South Korea
                [ 4 ] Plant Molecular and Cellular Biology Program IFAS, University of Florida Gainesville FL USA
                [ 5 ] Genetics Institute University of Florida Gainesville FL USA
                [ 6 ]Present address: Center for Natural Products Convergence Research Korea Institute of Science and Technology (KIST) Gangneung Gangwon‐do South Korea
                Author notes
                [*] [* ] Correspondence (Tel +1 352‐273‐3418; fax +1 352‐392‐1840; email altpeter@ 123456ufl.edu )
                Article
                PBI12833
                10.1111/pbi.12833
                5866949
                28905511
                2d6d2ab7-b177-457c-9318-7f45b46a4897
                © 2017 The Authors. Plant Biotechnology Journal published by Society for Experimental Biology and The Association of Applied Biologists and John Wiley & Sons Ltd.

                This is an open access article under the terms of the Creative Commons Attribution License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.

                History
                : 03 July 2017
                : 23 August 2017
                : 01 September 2017
                Page count
                Figures: 3, Tables: 4, Pages: 11, Words: 10015
                Funding
                Funded by: Syngenta
                Funded by: National Research Foundation of Korea (NRF) Funded by the Ministry of Education
                Award ID: 2015R1D1A1A01061365
                Categories
                Research Article
                Research Articles
                Custom metadata
                2.0
                pbi12833
                April 2018
                Converter:WILEY_ML3GV2_TO_NLMPMC version:version=5.3.3 mode:remove_FC converted:25.03.2018

                Biotechnology
                talen,field performance,genome editing,sugarcane,comt,lignin,biofuel
                Biotechnology
                talen, field performance, genome editing, sugarcane, comt, lignin, biofuel

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