
Submergence-Tolerant Rice Cultivar FR13A Harbors Floating Genes SNORKELs but Lacks Floating Ability
Received date: 2024-07-19
Accepted date: 2024-12-25
Online published: 2025-04-14
Daisuke Sasayama, Natsuki Hayashi, Shunsuke Oe, Hiroshi Fukayama, Tomoko Hatanaka, Tetsushi Azuma . Submergence-Tolerant Rice Cultivar FR13A Harbors Floating Genes SNORKELs but Lacks Floating Ability[J]. Rice Science, 2025 , 32(2) : 152 -155 . DOI: 10.1016/j.rsci.2024.12.013
| [1] | Azuma T, Ueno S, Uchida N, et al. 1997. Gibberellin-induced elongation and osmoregulation in internodes of floating rice. Physiol Plant, 99(4): 517-522. |
| [2] | Bailey-Serres J, Fukao T, Ronald P, et al. 2010. Submergence tolerant rice: SUB1’s journey from Landrace to modern cultivar. Rice, 3: 138-147. |
| [3] | Fukao T, Xu K N, Ronald P C, et al. 2006. A variable cluster of ethylene response factor-like genes regulates metabolic and developmental acclimation responses to submergence in rice. Plant Cell, 18(8): 2021-2034. |
| [4] | Hattori Y, Nagai K, Furukawa S, et al. 2009. The ethylene response factors SNORKEL1 and SNORKEL2 allow rice to adapt to deep water. Nature, 460: 1026-1030. |
| [5] | Kende H, van der Knaap E, Cho H T. 1998. Deepwater rice: A model plant to study stem elongation. Plant Physiol, 118(4): 1105-1110. |
| [6] | Kuroha T, Nagai K, Gamuyao R, et al. 2018. Ethylene-gibberellin signaling underlies adaptation of rice to periodic flooding. Science, 361: 181-186. |
| [7] | Lin C C, Chao Y T, Chen W C, et al. 2019. Regulatory cascade involving transcriptional and N-end rule pathways in rice under submergence. Proc Natl Acad Sci USA, 116(8): 3300-3309. |
| [8] | Métraux J P, Kende H. 1983. The role of ethylene in the growth response of submerged deep water rice. Plant Physiol, 72(2): 441-446. |
| [9] | Nagai K, Mori Y, Ishikawa S, et al. 2020. Antagonistic regulation of the gibberellic acid response during stem growth in rice. Nature, 584: 109-114. |
| [10] | Oe S, Sasayama D, Luo Q S, et al. 2022. Growth responses of seedlings under complete submergence in rice cultivars carrying both the submergence-tolerance gene SUB1A-1 and the floating genes SNORKELs. Plant Prod Sci, 25(1): 70-77. |
| [11] | Okishio T, Sasayama D, Hirano T, et al. 2014. Growth promotion and inhibition of the Amazonian wild rice species Oryza grandiglumis to survive flooding. Planta, 240(3): 459-469. |
| [12] | Raskin I, Kende H. 1984a. Regulation of growth in stem sections of deep-water rice. Planta, 160(1): 66-72. |
| [13] | Raskin I, Kende H. 1984b. Role of gibberellin in the growth response of submerged deep water rice. Plant Physiol, 76(4): 947-950. |
| [14] | Samanta P, Chakrabarti A, Dey N. 2022. Study on physiological responses with allelic diversity of Sub1A and SK loci in rice seedlings under complete submergence. Plant Physiol Rep, 27(2): 275-281. |
| [15] | Sasayama D, Niikawa M, Hatanaka T, et al. 2022. Adaptive responses to flooding in wild rice species with various genomes other than AA. Plant Prod Sci, 25(3): 350-358. |
| [16] | Singh A, Septiningsih E M, Balyan H S, et al. 2017. Genetics, physiological mechanisms and breeding of flood-tolerant rice (Oryza sativa L.). Plant Cell Physiol, 58(2): 185-197. |
| [17] | Singh N, Dang T T M, Vergara G V, et al. 2010. Molecular marker survey and expression analyses of the rice submergence- tolerance gene SUB1A. Theor Appl Genet, 121(8): 1441-1453. |
| [18] | van der Knaap E, Kim J H, Kende H. 2000. A novel gibberellin- induced gene from rice and its potential regulatory role in stem growth. Plant Physiol, 122(3): 695-704. |
| [19] | Xu K N, Xu X, Fukao T, et al. 2006. Sub1A is an ethylene- response-factor-like gene that confers submergence tolerance to rice. Nature, 442: 705-708. |
/
| 〈 |
|
〉 |