Making headway toward enduring changes: perspectives on breeding tree crops through genome editing

被引:0
作者
Renan Terassi Pinto
Chanaka Roshan Abeyratne
Luciano Vilela Paiva
Vagner Augusto Benedito
机构
[1] Universidade Federal de Lavras,Laboratório Central de Biologia Molecular
[2] Universidade de São Paulo,Faculdade de Filosofia Ciências e Letras de Ribeirão Preto
[3] West Virginia University,Department of Biology
[4] West Virginia University,Division of Plant & Soil Sciences
来源
Tree Genetics & Genomes | 2023年 / 19卷
关键词
Breeding; CRISPR-Cas9; Genome; Gene editing; Molecular design;
D O I
暂无
中图分类号
学科分类号
摘要
Tree crops are explored for food sources and raw materials for industrial sectors. However, breeding tree species to meet current economic demands amid forecasts of agricultural resource scarcity and climate instability is a challenging task. This is especially true due to their long juvenile phase, often difficulties related to reproductive biology, and scarcity of genetic resources, which largely delays phenotyping and selection of segregating populations. On the other hand, genome sequence and transcriptomic data are becoming increasingly available for perennial crops, along with optimized protocols for genetic transformation and in vitro regeneration. Due to the development of these fields altogether and the advances in gene editing technologies, it is now possible to glimpse the design of tree crops with optimized traits for cultivation. We review the status of genome projects and the application of CRISPR-Cas-based systems in tree crops, alongside an exploration of gene editing technologies to develop perennial crop ideotypes. Herein, we seek to raise attention to the capabilities and potential of crop designing applied to tree species and to the opportunity that we have, as a society, to create stepwise strategies to tailor the breeding of perennial crops in the context of the current environmental challenges and increasing population demands.
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  • [1] Alonge M(2020)Major impacts of widespread structural variation on gene expression and crop improvement in tomato Cell 182 145-161
  • [2] Wang X(2020)Genome editing with CRISPR–Cas nucleases, base editors, transposases and prime editors Nat Biotechnol 38 824-844
  • [3] Benoit M(2019)Search-and-replace genome editing without double-strand breaks or donor DNA Nature 576 49-157
  • [4] Soyk S(2020)Streamlined protocol for wheat ( Front Plant Sci 11 769-394
  • [5] Pereira L(2018)) protoplast isolation and transformation with CRISPR-Cas ribonucleoprotein complexes Plant Cell Tissue Organ Cult 134 383-554
  • [6] Zhang L(2020)CRISPR/Cas9-mediated efficient targeted mutagenesis has the potential to accelerate the domestication of New Phytol 226 541-1217
  • [7] Suresh H(2017)Mutant analysis in the nonlegume Plant Cell 29 1196-7
  • [8] Ramakrishnan S(2021) identifies NIN and NF-YA1 transcription factors as a core genetic network in nitrogen-fixing nodule symbioses Nat Commun 12 1-15
  • [9] Maumus F(2021)A multipurpose toolkit to enable advanced genome engineering in plants Nat Commun 12 1-309
  • [10] Ciren D(2019)Programmable C: G to G: C genome editing with CRISPR-Cas9-directed base excision repair proteins New Phytol 223 293-1756