Crop yield depends on biomass,which is primarily associated with photosynthesis.We previously demonstrated that two photorespiratory bypasses,i.e.,GOC(glycolate oxidase+oxalate oxidase+catalase)and GCGT(glycolate oxid...Crop yield depends on biomass,which is primarily associated with photosynthesis.We previously demonstrated that two photorespiratory bypasses,i.e.,GOC(glycolate oxidase+oxalate oxidase+catalase)and GCGT(glycolate oxidase+catalase+glyoxylate carboligase+tartronic semialdehyde reductase),significantly increased photosynthesis,biomass,and grain yield,but decreased seed-setting rates in rice.This study explored the underlying mechanism of how elevated photosynthetic efficiency impacted the seed-setting.First,pollen germination assessed in vivo and in vitro,revealed a reduced germination rate in GCGT rice.Subsequent analysis found that photosynthates highly accumulated in the leaves and stems;sucrose and soluble sugar levels were increased but the starch level was reduced in the anthers.Uridine diphosphate glucose(UDP-Glc)was increased but uridine diphosphate galactose(UDP-Gal)was unaltered,thus causing an imbalance in the UDP-Glc/UDP-Gal ratio in GCGT anthers.Most anthers in GCGT plants had two locules in contrast to four in the wild-type(WT).Pollen tapetum was developmentally abnormal,and genes related to sucrose synthesis,transport,and tapetal programmed cell death(PCD)were upregulated,whereas those involved in starch synthesis and conversion were downregulated in GCGT anthers.Taken together,our results demonstrated that an increase in sugar content was the primary factor causing reduced seed-setting rates in high photosynthetic efficiency rice,during which metabolic disorder of sugars and UDP sugar imbalance in anthers lead to impaired pollen fertility.展开更多
The seed-setting rate of hybrid rice is general-ly lower than that of conventional varieties.One of the factors explained this phenomenonis the proline concentration in anthers.Fiveconcentrations(30,50,80,120,and240 m...The seed-setting rate of hybrid rice is general-ly lower than that of conventional varieties.One of the factors explained this phenomenonis the proline concentration in anthers.Fiveconcentrations(30,50,80,120,and240 mg/kg)of exogenous proline were sprayedat meiosis stage of the early hybrid rice combi-nation Shanyou R3-2.Anthers were collected展开更多
Rice (Oryza sativa L.) is an important crop providing staple food for more than half the world's population and also considered as a model plant for molecular biological study of the cereals. In 1998, the large-sca...Rice (Oryza sativa L.) is an important crop providing staple food for more than half the world's population and also considered as a model plant for molecular biological study of the cereals. In 1998, the large-scale sequencing of japonica rice cultivar Nipponbare (bred at Aichi Agricultural Center in Japan and released in 1963) was initiated by International Rice Genome Sequencing Project (IRGSP) and the high-quality draft of genome was announced in 2002 (Goff et al,, 2002). Owing to its easy genetic transformation and released whole genome sequencing data, Nipponbare is widely used in functional genomic research (Piffanelli et al., 2007; Luan et al., 2008; Hu et al., 2010; Thang et al., 2010; Tabuchi et al., 2011; Zhang et al., 2011; Jiang et al., 2012; Lu et al.. 2013).展开更多
基金supported by the National Key Research and Development Program of China (2020YFA0907600)the Major Program of Guangdong Basic and Applied Research (2019B030302006)+1 种基金the National Natural Science Foundation of China (32101647)the Double First-Class Discipline Promotion Project (2023B10564004).
文摘Crop yield depends on biomass,which is primarily associated with photosynthesis.We previously demonstrated that two photorespiratory bypasses,i.e.,GOC(glycolate oxidase+oxalate oxidase+catalase)and GCGT(glycolate oxidase+catalase+glyoxylate carboligase+tartronic semialdehyde reductase),significantly increased photosynthesis,biomass,and grain yield,but decreased seed-setting rates in rice.This study explored the underlying mechanism of how elevated photosynthetic efficiency impacted the seed-setting.First,pollen germination assessed in vivo and in vitro,revealed a reduced germination rate in GCGT rice.Subsequent analysis found that photosynthates highly accumulated in the leaves and stems;sucrose and soluble sugar levels were increased but the starch level was reduced in the anthers.Uridine diphosphate glucose(UDP-Glc)was increased but uridine diphosphate galactose(UDP-Gal)was unaltered,thus causing an imbalance in the UDP-Glc/UDP-Gal ratio in GCGT anthers.Most anthers in GCGT plants had two locules in contrast to four in the wild-type(WT).Pollen tapetum was developmentally abnormal,and genes related to sucrose synthesis,transport,and tapetal programmed cell death(PCD)were upregulated,whereas those involved in starch synthesis and conversion were downregulated in GCGT anthers.Taken together,our results demonstrated that an increase in sugar content was the primary factor causing reduced seed-setting rates in high photosynthetic efficiency rice,during which metabolic disorder of sugars and UDP sugar imbalance in anthers lead to impaired pollen fertility.
文摘The seed-setting rate of hybrid rice is general-ly lower than that of conventional varieties.One of the factors explained this phenomenonis the proline concentration in anthers.Fiveconcentrations(30,50,80,120,and240 mg/kg)of exogenous proline were sprayedat meiosis stage of the early hybrid rice combi-nation Shanyou R3-2.Anthers were collected
基金supported by grants from the National Natural Science Foundation of China (Nos.31201194 and 31221004)
文摘Rice (Oryza sativa L.) is an important crop providing staple food for more than half the world's population and also considered as a model plant for molecular biological study of the cereals. In 1998, the large-scale sequencing of japonica rice cultivar Nipponbare (bred at Aichi Agricultural Center in Japan and released in 1963) was initiated by International Rice Genome Sequencing Project (IRGSP) and the high-quality draft of genome was announced in 2002 (Goff et al,, 2002). Owing to its easy genetic transformation and released whole genome sequencing data, Nipponbare is widely used in functional genomic research (Piffanelli et al., 2007; Luan et al., 2008; Hu et al., 2010; Thang et al., 2010; Tabuchi et al., 2011; Zhang et al., 2011; Jiang et al., 2012; Lu et al.. 2013).