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OsNAC022 Controls Tiller Number Through Mediating CCA1 Expression in Rice

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  • 1Institute of Crop and Nuclear Technology Utilization, Zhejiang Academy of Agricultural Sciences, Hangzhou 310021, China
    2State Key Laboratory of Rice Biology and Breeding, China National Rice Research Institute, Hangzhou 310006, China
    3National Nanfan Research Institute (Sanya), Chinese Academy of Agricultural Sciences, Sanya 572024, China
    4College of Agronomy, Shenyang Agricultural University, Shenyang 110866, China
First author contact:

#These authors contributed equally to this work

Feng Yue (fy_555500@163.com);
Ye Shenghai (shenghaiye@163.com);
Wang Shu (swang123@syau.edu.cn)

Received date: 2024-11-27

  Accepted date: 2025-02-11

  Online published: 2025-08-06

Cite this article

Zhai Rongrong, Li Zhen, Xiang Yuanyuan, Xu Qun, Zhang Mengchen, Yang Yaolong, Wei Xinghua, Wang Shu, Ye Shenghai, Feng Yue . OsNAC022 Controls Tiller Number Through Mediating CCA1 Expression in Rice[J]. Rice Science, 2025 , 32(4) : 445 -448 . DOI: 10.1016/j.rsci.2025.04.005

References

[1] Fan Y Y, Chen H M, Wang B F, et al. 2024. Dwarf and less tillers on chromosome 3 promotes tillering in rice by sustaining floral organ number 1 expression. Plant Physiol, 196(2): 1064-1079.
[2] Fang Z M, Ji Y Y, Hu J, et al. 2020. Strigolactones and brassinosteroids antagonistically regulate the stability of the D53-OsBZR1 complex to determine FC1 expression in rice tillering. Mol Plant, 13(4): 586-597.
[3] Hong Y B, Zhang H J, Huang L, et al. 2016. Overexpression of a stress-responsive NAC transcription factor gene ONAC022 improves drought and salt tolerance in rice. Front Plant Sci, 7: 4.
[4] Jeong J S, Kim Y S, Baek K H, et al. 2010. Root-specific expression of OsNAC10 improves drought tolerance and grain yield in rice under field drought conditions. Plant Physiol, 153(1): 185-197.
[5] Li K N, Zhang S N, Tang S, et al. 2022. The rice transcription factor Nhd1 regulates root growth and nitrogen uptake by activating nitrogen transporters. Plant Physiol, 189(3): 1608-1624.
[6] Li X Y, Qian Q, Fu Z M, et al. 2003. Control of tillering in rice. Nature, 422: 618-621.
[7] Li Z Y, Wei X J, Tong X H, et al. 2022. The OsNAC23-Tre6P-SnRK1a feed-forward loop regulates sugar homeostasis and grain yield in rice. Mol Plant, 15(4): 706-722.
[8] Liao Z G, Yu H, Duan J B, et al. 2019. SLR1 inhibits MOC1 degradation to coordinate tiller number and plant height in rice. Nat Commun, 10(1): 2738.
[9] Liu W, Kohlen W, Lillo A, et al. 2011. Strigolactone biosynthesis in Medicago truncatula and rice requires the symbiotic GRAS-type transcription factors NSP1 and NSP2. Plant Cell, 23(10): 3853-3865.
[10] Liu Y F, Wu Q, Qin Z L, et al. 2022. Transcription factor OsNAC055 regulates GA-mediated lignin biosynthesis in rice straw. Plant Sci, 325: 111455.
[11] Liu Y Q, Wang H R, Jiang Z M, et al. 2021. Genomic basis of geographical adaptation to soil nitrogen in rice. Nature, 590: 600-605.
[12] Mao C J, He J M, Liu L N, et al. 2020. OsNAC2 integrates auxin and cytokinin pathways to modulate rice root development. Plant Biotechnol J, 18(2): 429-442.
[13] Minakuchi K, Kameoka H, Yasuno N, et al. 2010. FINE CULM1 (FC1) works downstream of strigolactones to inhibit the outgrowth of axillary buds in rice. Plant Cell Physiol, 51(7): 1127-1135.
[14] Takai T. 2024. Potential of rice tillering for sustainable food production. J Exp Bot, 75(3): 708-720.
[15] Takeda T, Suwa Y, Suzuki M, et al. 2003. The OsTB1 gene negatively regulates lateral branching in rice. Plant J, 33(3): 513-520.
[16] Tang W J, Ye J, Yao X M, et al. 2019. Genome-wide associated study identifies NAC42-activated nitrate transporter conferring high nitrogen use efficiency in rice. Nat Commun, 10(1): 5279.
[17] Wang F, Han T W, Song Q X, et al. 2020. The rice circadian clock regulates tiller growth and panicle development through strigolactone signaling and sugar sensing. Plant Cell, 32(10): 3124-3138.
[18] Wu W, Dong X O, Chen G M, et al. 2024. The elite haplotype OsGATA8-H coordinates nitrogen uptake and productive tiller formation in rice. Nat Genet, 56(7): 1516-1526.
[19] Xing Y Z, Zhang Q F. 2010. Genetic and molecular bases of rice yield. Annu Rev Plant Biol, 61: 421-442.
[20] Zhang S N, Zhang Y Y, Li K N, et al. 2021. Nitrogen mediates flowering time and nitrogen use efficiency via floral regulators in rice. Curr Biol, 31(4): 671-683.e5.
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