作物学报 ›› 2011, Vol. 37 ›› Issue (01): 119-126.doi: 10.3724/SP.J.1006.2011.00119
赵洪兵,郭会君,赵林姝,古佳玉,赵世荣,李军辉,刘录祥*
ZHAO Hong-Bing,GUO Hui-Jun,ZHAO Lin-Shu,GU Jia-Yu,ZHAO Shi-Rong,LI Jun-Hui,LIU Lu-Xiang*
摘要: 叶绿素缺失突变体对于研究植物光合作用机制, 揭示叶绿素生物合成与降解途径, 发掘鉴定光合作用相关新基因以及了解基因间的相互作用有重要意义。空间诱变创制的小麦叶绿素缺失突变体Mt135的叶色表现为完全白化、条纹和绿3种类型, 其中完全白化株叶片完全白化, 于苗期死亡; 条纹株叶片为绿白相间的条纹, 能够正常成穗结实, 但其株高、穗长、株粒数、株粒重、千粒重都显著低于原始亲本, 生育期比原始亲本延长5~7 d; 绿株与原始亲本没有显著差异。初步遗传分析表明, Mt135是一个由核质基因共同作用的突变材料。对突变体及其原始亲本叶绿素荧光动力学参数分析表明, 当光照强度为110 μmol m-2 s-1时, 条纹株绿色组织光系统II的最大量子产量与原始亲本无显著差异, 光系统II的潜在活性显著低于原始亲本, 而光化学猝灭系数、非光化学猝灭系数、实际量子产量、调节性能量耗散的量子产量、非调节性能量耗散的量子产量在不同的生育期间变化不同。另外, 不同的光照强度下, 条纹株绿色组织的电子传递速率、光化学猝灭系数、实际量子产量的变化也不相同。条纹株白色组织和完全白化株则完全失去光合能力。上述结果证实, 小麦叶绿素缺失突变体Mt135的光合作用受到很大的影响, 光合特性发生了改变, 较高的光照强度在拔节期对突变体影响较大, 抽穗期影响相对较小。条纹株光合特性的改变与其株高、穗长和产量相关性状显著降低的结果相互印证。
[1]Yu B, Benning C. Anionic lipids are required for chloroplast structure and function in Arabidopsis. Plant J, 2003, 36: 762–770 [2]Olga S, Alexey A, Natalia R. An Arabidopsis mutant that is resistant to the protoporphyrinogen oxidase inhibitor acifluorfen shows regulatory changes in tetrapyrrole biosynthesis. Mol Gen Genomics, 2005, 273: 311–318 [3]Jung K H, Hur J, Ryu C H. Characterization of a rice chlorophyll-deficient mutant using the T-DNA gene-trap system. Plant Cell Physiol, 2003, 44: 463–472 [4]Wu Z M, Zhang X, Wan J M. A chlorophyll-deficient rice mutant with impaired chlorophyllide esterification in chlorophyll biosynthesis. Plant Physiol, 2007, 145: 29–40 [5]Lee S, Jung K H, An G. Isolation and characterization of a rice cysteine protease gene, OsCP1, using T-DNA gene-trap system. Plant Mol Biol, 2004, 54: 755–765 [6]Abe T, Matsuyama T, Sekido S, Yamaguchi I, Yoshida S, Kameya T. Chlorophyll-deficient mutants of rice demonstrated the deletion of a DNA fragment by heavy-ion irradiation. J Radiat Res, 2002, 43: 157–161 [7]Konishi T. An incomplete dominant chlorophyll mutation on chromosome 1. Barley Genet Newsl, 1972, 2: 43–45 [8]Cang J(苍晶), Yu L-F(于龙凤), Wang Y-Y(王豫颖), Zhang D(张达), Hao Z-B(郝再斌), Hu B-Z(胡宝忠). Agronomic and biochemical characters of chlorophyll deficient mutant HS 821 of soybean. J Nucl Agric Sci (核农学报), 2007, 21(1): 9–12 (in Chinese with English abstract) [9]Asakure Y, Hirohashi T, Kikuchi S. Maize mutant lacking chloroplast FtsY exhibit pleiotropic defects in the biogenesis of thylakoid membranes. Plant Cell, 2004, 16: 201–214 [10]Awan M A, Konzak C F, Rutger J N, Nilan R A. Mutagenic deflects of sodium azide in rice. Crop Sci, 1980, 20: 663–668 [11]Genty B, Briantais J M, Baker N R. The relationship between the quantum yield of photosynthetic electron transport and quenching of chlorophyll fluorescence. Biochim Biophys Acta, 1989, 990: 87–92 [12]Fambrini M, Castagna A, Vecchia F D. Characterization of a pigment-deficient mutant of sunflower (Helianthus annuus L.) with abnormal chloroplast biogenesis, reduced PSII activity and low endogenous level of abscisic acid. Plant Sci, 2004, 167: 79–89 [13]Gong H-B(龚红兵), Chen L-M(陈亮明), Diao L-P(刁立平), Sheng S-L(盛生兰), Lin T-Z(林添资), Yang T-N(杨图南), Zhang R-X(张荣铣), Cao S-Q(曹树青), Zhai H-Q(翟虎渠), Dai X-B(戴新宾), Lu W(陆巍), Xu X-M(许晓明). Genetic analysis of chlorophyll-b less mutant in rice and its related characteristics. Sci Agric Sin (中国农业科学), 2001, 34(6): 686–689 (in Chinese with English abstract) [14]Tan X-X(谭新星), Xu D-Q(许大全), Tang Z-S(汤泽生). Leaf photosynthesis and chlorophyll fluorescence in a chlorophyll-deficient mutant of barley. Acta Phytophysiol Sin (植物生理学报), 1996, 22(1): 51–57 (in Chinese with English abstract) [15]Liu L-X(刘录祥), Guo H-J(郭会君), Zhao L-S(赵林姝), Li J-H(李军辉), Gu J-Y(古佳玉), Zhao S-R(赵世荣), Wang J(王晶). Current status and outlook perspectives of induced mutations for plant improvement. J Nucl Agric Sci (核农学报), 2009, 23(6): 1001–1007 (in Chinese with English abstract) [16]Guo H-J(郭会君), Jin W-K(靳文奎), Zhao L-S(赵林姝), Zhao S-R(赵世荣), Zhao H-B(赵洪兵), Liu L-X(刘录祥). Mutagenic effects of different factors in spaceflight environment of Shijian-8 satellite in wheat. Acta Agron Sin (作物学报), 2010, 36(5): 764–770 (in Chinese with English abstract) [17]Cao L(曹莉), Wang H(王辉), Sun D-J(孙道杰), Feng Y(冯毅), Li X-J(李学军), Min D-H(闵东红). Characteristics of agronomic traits and cytogenetic of a spontaneous aurea mutation from wheat variety Xinong 1718. J Triticeae Crops (麦类作物学报), 2009, 29(5): 777–781 (in Chinese with English abstract) [18]Yu Q-B(余庆波), Jiang H(江华), Mi H-L(米华玲), Zhou G-Y(周根余), Yang Z-N(杨仲南). The physiological character and molecular mapping in rice albio21 mutant. J Shanghai Norm Univ (Nat Sci) (上海师范大学学报?自然科学版), 2005, 34(1): 70–75 (in Chinese with English abstract) [19]Zhang L-K(张力科), Li Z-B(李志彬), Liu H-Y(刘海燕), Li R-H(李如海), Chen M-Y(陈满元), Chen A-G(陈爱国), Qian Y-L(钱益亮), Hua Z-T(华泽田), Gao Y-M(高用明), Zhu L-H(朱苓华), Li Z-K(黎志康). Study on morphological structure and genetic mapping of two novel leaf color mutants in rice. Sci Agric Sin (中国农业科学), 2010, 43(2): 223–229 (in Chinese with English abstract) [20]Li N(李娜), Chu H-W(储黄伟), Wen T-Q(文铁桥), Zhang D-B(张大兵). Genetic analysis and mapping of the rice white midrib mutant Oswm. Acta Agric Shanghai (上海农业学报), 2007, 23(1): 1–4 (in Chinese with English abstract) [21]Cao L(曹莉), Wang H(王辉), Sun D-J(孙道杰), Feng Y(冯毅), Li X-J(李学军), Min D-H(闵东红). Genetic analysis of a novel aurea mutant in wheat. Hereditas (遗传), 2008, 30(12): 1603–1607 (in Chinese with English abstract) [22]Ma G-R(马国荣), Liu Y-B(刘佑斌), Gai J-Y(盖钧镒). Discovery of a cytoplasmically inherited virescent mutant of soybean. Acta Agron Sin (作物学报), 1994, 20(3): 334–338 (in Chinese with English abstract) [23]Cao L(曹莉), Wang H(王辉), Sun D-J(孙道杰), Feng Y(冯毅). Photosynthesis and chlorophyll fluorescence characters of Xantha wheat mutants. Acta Bot Boreal-Occident Sin (西北植物学报), 2006, 26(10): 2083–2087 (in Chinese with English abstract) [24]Huang X-Q(黄晓群), Wang P-R(王平荣), Zhao X-H(赵海新), Deng X-J(邓晓建). Genetic analysis and molecular mapping of a novel chlorophyll-deficit mutant gene in rice. Chin Rice Sci (中国水稻科学), 2007, 21(4): 355–359 (in Chinese with English abstract) [25]Lü D-H(吕典华), Zong X-F(宗学凤), Wang S-G(王三根), Ling Y-H(凌英华), Sang X-C(桑贤春), He G-H(何光华). Characteristics of photosynthesis in two leaf color mutants of rice. Acta Agron Sin (作物学报), 2009, 35(12): 2304–2308 (in Chinese with English abstract) [26]Zhao Q(赵琦), Tang Q-Q(唐崇钦), Kuang T-Y(匡廷云). Photosynthetic characteristics of an albino mutant (zb/zb) in maize. Acta Bot Sin (植物学报), 1997, 39(11): 1082–1084 (in Chinese with English abstract) |
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