
Verification of Glyphosate Resistance, Lepidopteran Resistance and Wide Compatibility of Male Sterile Line E1C4008S in Rice
Received date: 2019-03-01
Accepted date: 2019-06-03
Online published: 2020-01-17
Weeds and insect pests are two important biotic stresses resulting in yield loss in rice, and wide compatibility is the essential characteristic of breeding inter-subspecific hybrid rice. This study focused on glyphosate resistance, lepidopteran resistance and wide compatibility as well as identification of molecular and some agronomic characteristics of transgenic male sterile line E1C4008S. The results indicated that glyphosate resistance gene Epsps# and lepidopteran resistance gene Cry1ca# were transferred into japonica wide compatibility male sterile line 4008S by Agrobacterium-mediated method, and four independent transformation events named E1C4008S-1, E1C4008S-2, E1C4008S-3 and E1C4008S-4 were obtained, in which E1C4008S-3 and E1C4008S-4 were of single copy insertion. The EPSPS protein contents of E1C4008S-3 and E1C4008S-4 in different organs were significantly different both in descending order of leaf > stem > root, and ranged from 300.58 to 1410.69 μg/g at the tillering stage. The glyphosate tolerable concentration (dosage) of E1C4008S-3 and E1C4008S-4 reached at least 16 g/L (54.42 kg/hm2), and the seeds of E1C4008S-4 can germinate normally on the medium containing 1 g/L glyphosate. The CRY1C protein contents of E1C4008S-3 and E1C4008S-4 in different organs were significantly different both in descending order of leaf > stem > root, and ranged from 0.62 to 2.43 μg/g at the tillering stage. The larvae mortalities of rice leaf rollers fed on leaves of E1C4008S-3 and E1C4008S-4 for 5 d were 95.35% and 97.77%, respectively, while the average mortalities of silkworms fed with protein extracts from leaves of E1C4008S-3 and E1C4008S-4 reached 94.55% and 83.64%, respectively. The results suggested that wide compatibility and evaluated agronomic traits of E1C4008S-4 were not significantly changed by insertion of the exogenous genes. Overall, a novel male sterile germplasm with glyphosate resistance, lepidopteran resistance and wide compatibility was verified to be developed in rice.
Qiang Zeng, Lihua Deng, Wenbin Hu, Xingjian He, Qiucheng Meng, Jianghui Yu, Jinjiang Li, Lushui Weng, Guoying Xiao . Verification of Glyphosate Resistance, Lepidopteran Resistance and Wide Compatibility of Male Sterile Line E1C4008S in Rice[J]. Rice Science, 2020 , 27(3) : 215 -226 . DOI: 10.1016/j.rsci.2020.04.004
| [1] | Avisar D, Eilenberg H, Keller M, Reznik N, Segal M, Sneh B, Zilberstein A.2009. TheBacillus thuringiensis delta-endotoxin Cry1C as a potential bioinsecticide in plants. Plant Sci, 176(3): 315-324. |
| [2] | Bai Y S, Zhang P J.1996. Breeding ofjaponica wide compatibility photosensitive genic male sterile (PGMS) line 4008S and its characteristics. J Anhui Agric Sci, 24(4): 294-296. (in Chinese) |
| [3] | Chen H, Lin Y J, Zhang Q F.2009. Review and prospect of transgenic rice research.Sci Bull, 54(22): 4049-4068. |
| [4] | Chen S H, Zhai H Q.2000. Breeding strategies for superior high- yielding hybrid rice.Res Agric Modern, 21(3): 147-150. (in Chinese with English abstract) |
| [5] | Chhapekar S, Raghavendrarao S, Pavan G, Ramakrishna C, Singh V K, Phanindra M L V, Dhandapani G, Sreevathsa R, Kumar P A.2015. Transgenic rice expressing a codon-modified synthetic CP4-EPSPS, confers tolerance to broad-spectrum herbicide, glyphosate.Plant Cell Rep, 34(5): 721-731. |
| [6] | Datta K, Vasquez A, Tu J, Torrizo L, Alam M F, Oliva N, Abrigo E, Khush G S, Datta S K.1998. Constitutive and tissue-specific differential expression of thecry1A(b) gene in transgenic rice plants conferring resistance to rice insect pest. Theor Appl Genet, 97: 20-30. |
| [7] | Deng L H, Deng X X, Wei S J, Cao Z C, Tang L, Xiao G Y.2014a. Development and identification of herbicide and insect resistant transgenic plant B1C893 in rice.Hybrid Rice, 29(1): 66-67. (in Chinese with English abstract) |
| [8] | Deng L H, Weng L S, Xiao G Y.2014b. Optimization ofEpsps gene and development of double herbicide tolerant transgenic PGMS rice. J Agric Sci Technol, 16(1): 217-228. |
| [9] | Edwards J.2001. Weed control in roundup ReadyTM rice.Proc Cal Weed Sci, 2001: 133-135. |
| [10] | Fu Y P, Zhu Z G, Xiao H, Hu G C, Si H M, Yu Y H, Sun Z X.2001. Primary study on mechanization of seed production of hybrid rice by inducingBar gene to Pei’ai 64S. Chin J Rice Sci, 15(2): 97-100. (in Chinese with English abstract) |
| [11] | Fujimoto H, Itoh K, Yamamoto M, Kyozuka J, Shimamoto K.1994. Insect resistant rice generated by introduction of a modified δ-endotoxin gene ofBacillus thuringiensis. Biocontrol Sci Technol, 11(10): 1151-1155. |
| [12] | Gao Y L, Hu Y, Fu Q, Zhang J, Oppert B, Lai F X, Peng Y F, Zhang Z T.2010. Screen ofBacillus thuringiensis toxins for transgenic rice to control Sesamia inferens and Chilo suppressalis. J Invertebr Pathol, 105(1): 11-15. |
| [13] | Gu M H.1988. The inheritance of wide compatibility gene(s) and its utilization in rice breeding. J Jiangsu Agric Coll, 9(2): 19-26. (in Chinese) |
| [14] | Hu W B, Deng X Y, Deng X X, Deng L H, Xiao Y L, He X J, Fu X Q, Xiao G Y.2018. Characteristic analysis of tetra-resistant genetically modified rice.J Integr Agric, 17(3): 493-506. |
| [15] | Ikehashi H, Araki H.1984. Varietal screening of compatibility types revealed in F1 fertility of distant crosses in rice.Jpn J Breeding, 34(3): 304-313. |
| [16] | Lin Y J, Zhang Q F.2005. Optimizing the tissue culture conditions for high efficiency transformation ofindica rice. Plant Cell Rep, 23(8): 540-547. |
| [17] | Lu C G, Li X, Chen G X.2017. Photosynthetic characteristics and its physiological basis of super high-yielding hybrid rice Liangyoupeijiu.Sci Agric Sin, 50(21): 4055-4070. (in Chinese with English abstract) |
| [18] | Murray M G, Thompson W F.1980. Rapid isolation of high molecular weight plant DNA.Nucl Acids Res, 8(19): 4321-4325. |
| [19] | Muthayya S, Sugimoto J D, Montgomery S, Maberly G F.2014. An overview of global rice production, supply, trade, and consumption.Ann NY Acad Sci, 1324(1): 7-14. |
| [20] | Nayak P, Basu D, Das S, Basu A, Ghosh D, Ramakrishnan N A, Ghosh M, Sen S K.1997. Transgenic eliteindica rice plants expressing Cry1A(c) delta-endotoxin of Bacillus thuringiensis are resistance against yellow stem borer. Proc Natl Acad Sci USA, 94: 2111-2116. |
| [21] | Oerke E C.2006. Crop losses to pests.J Agric Sci Technol, 144(1): 31-43. |
| [22] | Padgette S R, Kolacz K H, Delannay X, Re D B, Lavallee B J, Tinius C N.1995. Development, identification, and characterization of a glyphosate-tolerant soybean line.Crop Sci, 35(5): 1451-1461. |
| [23] | Qing S, Song X L, Dai W M.2010. The opportunity and challenge faced by transgenic herbicide-resistant crops and their development strategy.J Agric Biotechnol, 18(1): 114-125. (in Chinese with English abstract) |
| [24] | Rawat P, Singh A K, Ray K, Chaudhary B, Kumar S, Gautam T, Kanoria S, Kaur G, Kumar P, Pental D, Burma P K.2011. Detrimental effect of expression ofBt endotoxin Cry1Ac on in vitro regeneration, in vivo growth and development of tobacco and cotton transgenics. J Biosci, 36(2): 363-376. |
| [25] | Ren X L, Hu H Y, Jiang W L, Ma X Y, Ma Y J, Li G Q, Ma Y.2017. Three GPI-anchored alkaline phosphatases are involved in the intoxication of Cry1Ca toxin toSpodoptera exigua larvae. J Invertebr Pathol, 151: 32-40. |
| [26] | Shu Q R, Ye G Y, Cui H R, Xiang Y B, Gao M W.1998. Development of transgenicBacillus thuringiensis rice resistant to rice stem borders and leaf folders. J Zhejiang Agric Univ, 24(6): 570-580. (in Chinese with English abstract) |
| [27] | Si S D.2007. Toxicity evaluation of twenty-five pesticides toBombyx mori and observation of toxic symptoms. Sci Sericult, 33: 422-426. (in Chinese with English abstract) |
| [28] | Song X W, Lin J R, Wu G M.2010. Genetic improvement and biological characteristic analysis of dwarf abortive typejaponica cytoplasmic male sterile line with wide compatibility. Chin J Rice Sci, 24: 595-600. (in Chinese with English abstract) |
| [29] | Su J, Chen J M, Tian D G.2008. A gene encodes 5-enol- pyruvylshikimate-3-phosphate mutagenized by error-prone PCR conferred rice with high glyphosate-tolerance.Mol Plant Breeding, 6(5): 830-836. (in Chinese with English abstract) |
| [30] | Surzycki S.2000. DNA transfer and hybridization. In: Basic Techniques in Molecular Biology. Berlin Heidelberg: Springer: 233-262. |
| [31] | Tang W, Chen H, Xu C G, Li X H, Lin Y J, Zhang Q F.2006. Development of insect-resistant transgenic indica rice with a syntheticcry1C* gene. Mol Breeding, 18(1): 1-10. |
| [32] | Toki S, Hara N, Ono K, Onodera H, Tagiri A, Oka S, Tanaka H.2006. Early infection of scutellum tissue withAgrobacterium allows high-speed transformation of rice. Plant J, 47(6): 969-976. |
| [33] | Tu J, Zhang G, Datta K, Xu C, He Y, Zhang Q F, Khush G S, Datta K S.2000. Field performance of transgenic elite commercial hybrid rice expressingBacillus thuringiensis delta-endotoxin. Nat Biotechnol, 18(10): 1101-1104. |
| [34] | Visalakshmi V, Satyanarayna N H, Jyothula D P B, Raju M R B, Murthy K V R.2014. Screening of rice germplasm for resistance to yellow stem borerScirpophaga incertulas walker. Int J Plant Anim Environ Sci, 4(1): 130-133. |
| [35] | Wang J J, Xu Y B, Shen Z T.1991. Exploring major restraince to utilization ofindica-japonica hybrid rice. Sci Agric Sin, 24(1): 27-33. (in Chinese with English abstract) |
| [36] | Wu C, Fan Y, Zhang C, Oliva N, Datta S K.1997. Transgenic fertilejaponica rice plants expressing a modified Cry1Ab gene resistant to yellow stem borer. Plant Cell Rep, 17(2): 129-132. |
| [37] | Wu H M.2005. Study on cultivation and application of herbicide resistant rice. [PhD Thesis] Wuhan, Hubei: Huazhong Agricultural University. (in Chinese with English abstract) |
| [38] | Xiao G Y.1997. The view of crop herbicide resistance for heterosis utilization.Hybrid Rice, 12(5): 1-3. (in Chinese with English abstract) |
| [39] | Xiao G Y.2009. Recent advances in development of herbicide resistant transgenic hybrid rice in China.Rice Sci, 16(3): 235-239. |
| [40] | Xiao G Y, Chen F, Meng Q C, Zhou H, Li J J, Yu J H, Deng L H, Weng L S.2015. Ecological risk and management of herbicide- resistant transgenic rice (Oryza sativa) in China. J Agric Biotechnol, 23(1): 1-11. (in Chinese with English abstract) |
| [41] | Xiao G Y, Xiao Y L, Li J J, Deng L H, Weng L S, Meng Q C, Yu J H.2019. High efficiency is a dominant target for current rice breeding.Chin J Rice Sci, 33(4): 287-292. (in Chinese with English abstract) |
| [42] | Yan Y C.1996. A preliminary report on the breeding of wide compatibility PTGMSR line y867S. Hybrid Rice, 13(2): 37. (in Chinese) |
| [43] | Yang Y, Liu Y, Cao F Q, Chen X P, Cheng L S, Romeis J, Li Y H, Peng Y F.2014. Consumption ofBt rice pollen containing Cry1C or Cry2A protein poses a low to negligible risk to the silkworm Bombyx mori(Lepidoptera: Bombyxidae). PLoS One, 9(7): e102302. |
| [44] | Yang Z, Chen H, Tang W, Hua H X, Lin Y J.2011. Development and characterization of transgenic rice expressing twoBacillus thuringiensis genes. Pest Manag Sci, 67(4): 414-422. |
| [45] | Ye R J, Huang H Q, Yang Z, Chen T Y, Liu L, Li X H, Chen H, Lin Y J.2009. Development of insect-resistant transgenic rice with Cry1C*-free endosperm.Pest Manag Sci, 65(9): 1015-1020. |
| [46] | Yuan L P.1987. Strategic conception of hybrid rice breeding.Hybrid Rice, (1): 1-3. (in Chinese) |
| [47] | Zaidi M A, Ye G Y, Yao H W, You T H, Loit E, Dean D H, Riazuddin S, Altosaar I.2009. Transgenic rice plants expressing a modifiedcry1Ca1 gene are resistant to Spodoptera litura and Chilosuppressalis. Mol Biotechnol, 43(3): 232-242. |
| [48] | Zhang Q F.2007. Strategies for developing green super rice.Proc Natl Acad Sci USA, 104: 16402-16409. |
| [49] | Zhang P J, Sun M, Bai Y S.2001. Breeding and application of the two-line japonica hybrid rice combination―40 You 04. J Anhui Agric,29(2): 177, 186. (in Chinese with English abstract) |
| [50] | Zhao T, Lin C Y, Shen Z C.2011. Development of transgenic glyphosate-resistant rice withG6 gene encoding 5-enolpyruvyl- shikimate-3-phosphate synthase. Agric Sci China, 10(9): 1307-1312. |
| [51] | Zhu D F, Cheng S H, Zhang Y P, Lin X Q, Chen H Z.2010. Analysis of status and constraints of rice production in the world.Sci Agric Sin, 43(3): 474-479. (in Chinese with English abstract) |
/
| 〈 |
|
〉 |