
Increasing Fatty Acids in Rice Root Improves Silence of Rice Seedling to Salt Stress
These authors contributed equally to this work
Received date: 2018-08-22
Accepted date: 2019-01-10
Online published: 2019-08-19
Ling Liu, Jin Chen, Yanning Tan, Tianshun Zhou, Ning Ouyang, Jia Zeng, Dingyang Yuan, Meijuan Duan . Increasing Fatty Acids in Rice Root Improves Silence of Rice Seedling to Salt Stress[J]. Rice Science, 2019 , 26(6) : 339 -342 . DOI: 10.1016/j.rsci.2019.01.005
| [1] | Chen X L, Zhang L J, Miao X M, Hu X W, Nan S Z, Wang J, Fu H.2018. Effect of salt stress on fatty acid and α-tocopherol metabolism in two desert shrub species.Planta, 247(2): 499-511. |
| [2] | Dar A A, Choudhury A R, Kancharla P K, Arumugam N.2017. The FAD2 gene in plants: Occurrence, regulation, and role. Front Plant Sci, 8: 1789. |
| [3] | Fageria N K, Stone L F, Santos A B D.2012. Breeding for salinity tolerance. In: Fritsche-Neto R, Borém A. Plant Breeding for Abiotic Stress Tolerance. Berlin: Springer-Verlag: 103-122. |
| [4] | Hasanuzzaman M, Fujita M, Islam M N, Ahamed K U, Nahar K.2009. Performance of four irrigated rice varieties under different levels of salinity stress.Int J Integr Biol, 6(2): 85-90. |
| [5] | Jiang S Y, Bhalla R, Ramamoorthy R, Luan H F, Venkatesh P N, Cai M, Ramachandran S.2012. Over-expression of OSRIP18 increases drought and salt tolerance in transgenic rice plants. Transg Res, 21(4): 785-795. |
| [6] | Jing W, Zhang W H.2017. Research progress on gene mapping and cloning for salt tolerance and variety improvement for salt tolerance by molecular marker-assisted selection in rice.Chin J Rice Sci, 31(2): 111-123. (in Chinese with English abstract) |
| [7] | Li-Beisson Y, Shorrosh B, Beisson F, Andersson M X, Arondel V, Bates P D, Baud S, Bird D, DeBono A, Durrett T P, Franke R B, Graham I A, Katayama K, Kelly A A, Larson T, Markham J E, Miquel M, Molina I, Nishida I, Rowland O, Samuels L, Schmid K M, Wada H, Welti R, Xu C C, Zallot R, Ohlrogge J.2013. Acyl-lipid metabolism.Arabidopsis Book, 11: e0161. |
| [8] | Liu K S.2011. Comparison of lipid content and fatty acid composition and their distribution within seeds of 5 small grain species.J Food Sci, 76(2): 334-342. |
| [9] | López-Pérez L, Martínez-Ballesta M C, Maurel C, Carvajal M.2009. Changes in plasma membrane lipids, aquaporins and proton pump of broccoli roots, as an adaptation mechanism to salinity.Phytochemistry, 70(4): 492-500. |
| [10] | Reddy I N B L, Kim B K, Yoon I S, Kim K H, Kwon T R.2017. Salt tolerance in rice: Focus on mechanisms and approaches.Rice Sci, 24(3): 123-144. |
| [11] | Tu Y, Jiang A M, Gan L, Hossain M, Zhang J M, Peng B, Xiong Y G, Song Z J, Cai D T, Xu W F, Zhang J H, He Y C.2014. Genome duplication improves rice root resistance to salt stress.Rice, 7(1): 15. |
| [12] | Zhang J T, Liu H, Sun J, Li B, Zhu Q, Chen S L, Zhang H X.2012. Arabidopsis fatty acid desaturase FAD2 is required for salt tolerance during seed germination and early seedling growth. PLoS One, 7(7): e30355. |
| [13] | Zhang L, Tian L H, Zhao J F, Song Y, Zhang C J, Guo Y.2009. Identification of an apoplastic protein involved in the initial phase of salt stress response in rice root by two-dimensional electrophoresis.Plant Physiol, 149(2): 916-928. |
| [14] | Zhang M, Fan J L, Taylor D C, Ohlrogge J B.2009. DGAT1 and PDAT1 acyltransferases have overlapping functions in Arabidopsis triacylglycerol biosynthesis and are essential for normal pollen and seed development. Plant Cell, 21(12): 3885-3901. |
| [15] | Zhou G Y, Zhai C J, Deng X L, Zhang J, Zhang Z L, Dai Q G, Cui S Y.2018. Performance of yield, photosynthesis and grain quality of japonica rice cultivars under salinity stress in micro-plots. Chin J Rice Sci, 32(2): 146-154. (in Chinese with English abstract). |
/
| 〈 |
|
〉 |