An albino lethal mutant, temporarily designated as albino lethal 4(abl4), was obtained from 60Co γray radiation mutant pool of japonica rice Zhonghua 11. The seedling of abl4 showed albino phenotype from germination to 3leafstage, then died. The chlorophyll and carotenoid contents in abl4 mutant were too low to be detected. Moreover, the electron transport rate and the effective quantum yield of photosystem Ⅱ in abl4 were about zero. On the other hand, the potential photochemical efficiency of PSⅡ in abl4 was also at an undetectably low level, indicating that the activity of photochemical reaction was lost in the leaves of abl4. The activities of antioxidant enzymes induding superoxide dismutase and peroxidase were significantly increased, while catalase was decreased significantly. As results, the content of malondialdehyde was also increased significantly in abl4 compared with the wild type, suggesting that abl4 was strongly subjected to high oxidant stress. Transmission electron microscopy examination showed that abl4 plastids contained some empty vesicles without thylakoids. It was revealed that the phenotype of abl4 was controlled by a single recessive nuclear gene. An F2 population generated by crossing the abl4 mutant with the indica rice cultivar Longtefu B was used for gene mapping,ABL4 was preliminarily located between RM3785 and RM303 on rice chromosome 4 and further mapped to a 201 kb region.
CHENG Shichao1,2, LIU Heqin2, ZHAI Guowei2, FENG Shizuo1,2, ZHAO Hui1,2, WANG Dekai2,*, TAO Yuezhi2
. Genetic Analysis and Gene Mapping of an albino lethal Mutant in Rice[J]. Chinese Journal OF Rice Science, 2013
, 27(3)
: 240
-246
.
DOI: 10.3969/j.issn.10017216.2013.03.003
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