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Variability of leaf photosynthetic characteristics in rice and its relationship with resistance to water stress under different nitrogen nutrition regimes.
Xiaochuang, Cao; Chu, Zhong; Chunquan, Zhu; Junhua, Zhang; Lianfeng, Zhu; Lianghuan, Wu; Qianyu, Jin.
Affiliation
  • Xiaochuang C; State Key Laboratory of Rice Biology, China National Rice Research Institute, Hangzhou, 310006, China.
  • Chu Z; State Key Laboratory of Rice Biology, China National Rice Research Institute, Hangzhou, 310006, China.
  • Chunquan Z; State Key Laboratory of Rice Biology, China National Rice Research Institute, Hangzhou, 310006, China.
  • Junhua Z; State Key Laboratory of Rice Biology, China National Rice Research Institute, Hangzhou, 310006, China.
  • Lianfeng Z; State Key Laboratory of Rice Biology, China National Rice Research Institute, Hangzhou, 310006, China.
  • Lianghuan W; Ministry of Education Key Laboratory of Environmental Remediation and Ecosystem Health, College of Environmental and Resource Sciences, Zhejiang University, Hangzhou, 310058, China.
  • Qianyu J; State Key Laboratory of Rice Biology, China National Rice Research Institute, Hangzhou, 310006, China.
Physiol Plant ; 167(4): 613-627, 2019 Dec.
Article in En | MEDLINE | ID: mdl-30561023
ABSTRACT
The negative effects of water stress on rice can be alleviated by NH4 + nutrition. However, the effects of mixed nitrogen (N) nutrition (NO3 - + NH4 + ) on resistance to water stress are still not well known. To investigate the response of rice growth to water stress and its relationship with photosynthetic characteristics, a hydroponic experiment supplying different N forms was conducted. Compared with NO3 - nutrition, mixed-N and NH4 + nutrition greatly alleviated the reduction of leaf area, chlorophyll content, and photosynthesis under water stress, whilst subsequently maintaining higher biomass. In contrast, water stress inhibited the root-shoot ratios in NH4 + - and mixed-N-supplied plants, indicating reduced root growth and higher photosynthate availability to shoots. The following key observations were made (1) a similar stomatal limitation and low proportion of activated Rubisco were observed among the three different N nutrition regimes; (2) increased mesophyll conductance in NH4 + - and mixed-N-supplied plants simultaneously stimulated leaf photosynthesis and improved the water use efficiency and (3), the maximum carboxylation rate and actual photochemical efficiency of photosystem II in NH4 + - and mixed-N-supplied plants were significantly higher than that in NO3 - -supplied plants, thus resulting in higher photochemical efficiency under water stress. In conclusion, mixed-N and NH4 + nutrition may be used to develop strategies for improved water stress resistance and stimulated biomass production under conditions of osmotic stress and possibly drought.
Subject(s)

Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Photosynthesis / Oryza / Dehydration / Nitrogen Limits: Humans Language: En Journal: Physiol Plant Year: 2019 Type: Article Affiliation country: China

Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Photosynthesis / Oryza / Dehydration / Nitrogen Limits: Humans Language: En Journal: Physiol Plant Year: 2019 Type: Article Affiliation country: China