Does decrease in ribulose-1,5-bisphosphate carboxylase by antisense RbcS lead to a higher N-use efficiency of photosynthesis under conditions of saturating CO2 and light in rice plants?

被引:142
作者
Makino, A
Shimada, T
Takumi, S
Kaneko, K
Matsuoka, M
Shimamoto, K
Nakano, H
MiyaoTokutomi, M
Mae, T
Yamamoto, N
机构
[1] ISHIKAWA AGR COLL,RES INST AGR RESOURCES,NONOMACHI,ISHIKAWA 921,JAPAN
[2] NAGOYA UNIV,BIOSCI CTR,CHIKUSA KU,NAGOYA,AICHI 46401,JAPAN
[3] NARA INST SCI & TECHNOL,GRAD SCH BIOL SCI,IKOMA 63001,JAPAN
[4] NATL INST AGROBIOL RESOURCES,TSUKUBA,IBARAKI 305,JAPAN
关键词
D O I
10.1104/pp.114.2.483
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Rice (Oryza sativa L.) plants with decreased ribulose-1,5-bisphosphate carboxylase (Rubisco) were obtained by transformation with the rice rbcS antisense gene under the control of the rice rbcS promoter. The primary transformants were screened for the Rubisco to leaf N ratio, and the transformant with 65% wild-type Rubisco was selected as a plant set with optimal Rubisco content at saturating. CO2 partial pressures for photosynthesis under conditions of high irradiance and 25 degrees C. This optimal Rubisco content was estimated from the amounts and kinetic constants of Rubisco and the gas-exchange data. The R-1 selfed progeny of the selected transformant were grown hydroponically with different N concentrations. Rubisco content in the R-1 population was distributed into two groups: 56 plants had about 65% wild-type Rubisco, whereas 23 plants were very similar to the wild type. Although the plants with decreased Rubisco showed 20% lower rates of light-saturated photosynthesis in normal air (36 Pa CO2), they had 5 to 15% higher rates of photosynthesis in elevated partial pressures of CO2 (100-115 Pa CO2) than the wild-type plants for a given leaf N content. We conclude that the rice plants with 65% wild-type Rubisco show a higher N-use efficiency of photosynthesis under conditions of saturating CO2 and high irradiance.
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页码:483 / 491
页数:9
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