Cytological and transcriptional insights of late-acting self-incompatibility in tea plants (<i>Camellia sinensis</i>)
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Reference52 articles.
1. Fujii S, Kubo K, Takayama S. 2016. Non-self- and self-recognition models in plant self-incompatibility. Nature Plants 2(9):16130
Fujii S, Kubo K, Takayama S. 2016. Non-self- and self-recognition models in plant self-incompatibility. Nature Plants 2(9):16130
2. Liang M, Cao Z, Zhu A, Liu Y, Tao M, et al. 2020. Evolution of self-compatibility by a mutant S(m)-RNase in citrus. Nature Plants 6(2):131−42
Liang M, Cao Z, Zhu A, Liu Y, Tao M, et al. 2020. Evolution of self-compatibility by a mutant S(m)-RNase in citrus. Nature Plants 6(2):131−42
3. Li S, Yan H, Mei WM, Tse YC, Wang H. 2020. Boosting autophagy in sexual reproduction: a plant perspective. New Phytologist 226(3):679−89
Li S, Yan H, Mei WM, Tse YC, Wang H. 2020. Boosting autophagy in sexual reproduction: a plant perspective. New Phytologist 226(3):679−89
4. Ye M, Peng Z, Tang D, Yang Z, Li D, et al. 2018. Generation of self-compatible diploid potato by knockout of S-RNase. Nature Plants 4(9):651−54
Ye M, Peng Z, Tang D, Yang Z, Li D, et al. 2018. Generation of self-compatible diploid potato by knockout of S-RNase. Nature Plants 4(9):651−54
5. Eaves DJ, Flores-Ortiz C, Haque T, Lin Z, Teng N, et al. 2014. Self-incompatibility in Papaver: advances in integrating the signalling network. Biochemical Society Transactions 42(2):370−76
Eaves DJ, Flores-Ortiz C, Haque T, Lin Z, Teng N, et al. 2014. Self-incompatibility in Papaver: advances in integrating the signalling network. Biochemical Society Transactions 42(2):370−76
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1. Molecular responses reveal that two glutathione S-transferase CsGSTU8s contribute to detoxification of glyphosate in tea plants (Camellia sinensis);International Journal of Biological Macromolecules;2024-10
2. The MADS-box transcription factor CsAGL9 plays essential roles in seed setting in Camellia sinensis;Plant Physiology and Biochemistry;2024-02
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