Can We Use Gene-Editing to Induce Apomixis in Sexual Plants?
Abstract
:1. Introduction
2. Precise Gene-Editing of Complex Traits
2.1. Modulating Gene Expression
2.2. Targeting Gene Sequence with Base Editing and Prime Editing
2.3. Trait Optimization with Allelic Series
3. The Molecular Basis of Apomixis: Three Models to Explain Empirical Data
3.1. Apomixis is a Consequence of Developmental Asynchronies
3.2. Apomixis is a Mutation-Based Phenomenon
3.3. Apomixis is an Ancient Switch, Polyphenic to Sex, and Epigentically Regulated
4. Can Apomixis Sensu Stricto be Induced Through Gene-Editing Approaches?
4.1. Apomixis Caused by Heterochronic Gene Expression
4.2. Apomixis Caused by a Few Genes
4.3. Apomixis Caused by Epigenetic Signals
5. Closing in on De Novo Apomixis: Making Rudimentary Changes in Reproductive Modules to Synthesize Clonal Seeds
5.1. Mimicking Sporophytic Apomixis
5.2. Mimicking Gametophytic Apomixis
5.3. Tuning Changes for Complete Penetrance, and High Expressivity and Fertility
6. The Remaining Challenge of Data Collection for Genomic Dissection of Apomixis Loci
Supplementary Materials
Author Contributions
Funding
Conflicts of Interest
References
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Gene | Function | Mutant Phenotype | Reproductive Module | Expressivity | Reference |
---|---|---|---|---|---|
SWI1/dyad | sister chromatid cohesion | Arrested meiosis | Meiosis | 0.99 1 | [106] |
OsPAIR | Homologous chromosome pairing | Arrested meiosis | Meiosis | 1.00 | [107] |
AtSPO11-1 | DSBs and initiation of homologous chromosome recombination | Lack recombination | Meiosis | 0.97 2 | [108] |
AtREC8 | sister chromatid cohesion | Univalents; aberrant chromosomal segregation | Meiosis | 1.00 3 | [109] |
AtOSD1 | Entry into MII | Lack meiosis II; dyad formation | Meiosis | 0.85 4 | [110,111] |
ZmMATL5 | Sperm-specific phospholipase | Haploid induction, haploid seeds | Fertilization | 0.07 6 | [112] |
AtCENH3 | Centromere-mediated genome elimination | Haploid seeds | Embryogenesis | 0.08 7 | [113] |
RKD | Transcription factor | Somatic embryogenesis | Embryogenesis | 1 8 | [114] |
BBM | Transcription factor; embryo development | Somatic embryogenesis | Embryogenesis | ! 9 | [91] |
Gene Combination | Reproductive Phenotype | Expressivity | Fertility 1 | Reference |
---|---|---|---|---|
AtSPO11-1 + AtREC8 + AtOSD1 | Unreduced nonrecombinant gametes | 1.00 | 0.66 2 | [110] |
OsPAIR1 + OsREC8 + OsOSD1 | Unreduced nonrecombinant gametes | 1.00 | 0.74 3 | [111] |
AtSPO11-1 + AtREC8 + AtOSD1 + GEM 4 | Clonal offspring (mixed) 5 | 0.33 | 0.3 6 | [140] |
dyad + GEM 4 | Clonal offspring (mixed) 5 | 0.13 | 0.0018 7 | [140] |
AtSPO11-1 + AtREC8 + AtOSD1 + BBM1 | Clonal offspring (mixed) 5 | 0.11–0.29 | ? 8 | [104] |
OsPAIR1 + OsREC8 + OsOSD1 + OsMATL | Clonal offspring (mixed) 5 | 0.02–0.04 | 0.045 | [105] |
OsSPO11-1 + OsREC8 + OsOSD1 + OsMATL | Clonal offspring | ? 9 | ? 9 | [139] |
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Scheben, A.; Hojsgaard, D. Can We Use Gene-Editing to Induce Apomixis in Sexual Plants? Genes 2020, 11, 781. https://doi.org/10.3390/genes11070781
Scheben A, Hojsgaard D. Can We Use Gene-Editing to Induce Apomixis in Sexual Plants? Genes. 2020; 11(7):781. https://doi.org/10.3390/genes11070781
Chicago/Turabian StyleScheben, Armin, and Diego Hojsgaard. 2020. "Can We Use Gene-Editing to Induce Apomixis in Sexual Plants?" Genes 11, no. 7: 781. https://doi.org/10.3390/genes11070781
APA StyleScheben, A., & Hojsgaard, D. (2020). Can We Use Gene-Editing to Induce Apomixis in Sexual Plants? Genes, 11(7), 781. https://doi.org/10.3390/genes11070781