期刊文献+

Cucumber malate decarboxylase,CsNADP-ME2,functions in the balance of carbon and amino acid metabolism in fruit

下载PDF
导出
摘要 Central metabolism produces carbohydrates and amino acids that are tightly correlated to plant growth and thereby crop productivity.Malate is reported to link mitochondrial respiratory metabolism with cytosolic biosynthetic pathways.Although the function of malate metabolism-related enzymes in providing carbon has been characterized in some plants,evidence for this role in the fleshy fruit of cucumber is lacking.Here,radiolabeled bicarbonate fed into the xylem stream from the cucumber roots was incorporated into amino acids,soluble sugars,and organic acids in the exocarp and vasculature of fruits.The activities of decarboxylases,especially decarboxylation from NADP-dependent malic enzyme(NADP-ME),were higher in cucumber fruit than in the leaf lamina.Histochemical localization revealed that CsNADP-ME2 was mainly located in the exocarp and vascular bundle system of fruit.Radiotracer and gas-exchange analysis indicated that overexpression of CsNADP-ME2 could promote carbon flux into soluble sugars and starch in fruits.Further studies combined with metabolic profiling revealed that the downregulation of CsNADP-ME2 in RNA interference(RNAi)lines caused the accumulation of its substrate,malate,in the exocarp.In addition to inhibition of glycolysis-related gene expression and reduction of the activities of the corresponding enzymes,increased amino acid synthesis and decreased sugar abundance were also observed in these lines.The opposite effect was found in CsNADP-ME2-overexpressing lines,suggesting that there may be a continuous bottom-up feedback regulation of glycolysis in cucumber fruits.Overall,our studies indicate that CsNADP-ME2 may play potential roles in both central carbon reactions and amino acid metabolism in cucumber fruits.
出处 《Horticulture Research》 SCIE CSCD 2023年第12期70-83,共14页 园艺研究(英文)
基金 This work was supported by the National Natural Science Foundation of China(32272695 and 31972398 to X.S.) the National Key Research and Development Program of China(2019YFD1000300) the National Natural Science Foundation of China(31960591 to N.S.) the Max-Planck Society and European Union’s Horizon 2020 research and innovation programme,project PlantaSYST(SGA-CSA No.664621 and No.739582 under FPA No.664620) the China Agriculture Research System of MOF and MARA(CARS-23) the 111 Project of Ministry of Education of P.R.C.(B17043).
关键词 SUGAR CARBON thereby
  • 相关文献

参考文献4

二级参考文献244

  • 1Masclaux-Daubresse, C., DanieI-Vedele, F., Dechorgnat, J., Chardon, F., Gaufichon, L., and Suzuki, A, (2010). Nitrogen uptake, assimilation and remobilisation in plants: challenges for sustainable and productive agriculture. Ann. Bot. 105, 1141-1158.
  • 2Masumoto, C., Miyazawa, S.I., Ohkawa, H., Fukuda, T., Taniguchi, Y., Murayama, S., Kusano, M., Saito, K., Fukayama, H., and Miyao, M. (2010). Phosphoenolpyruvate carboxylase intrinsically located in the chloroplast of rice plays a crucial role in ammonium assimilation. Proc. Natl Acad. Sci. U S A. 107, 5226-5231.
  • 3Matt, R, Geiger, M., Walch-Liu, P., Engels, C., Krapp, A., and Stitt, M. (2001 a). Elevated carbon dioxide increases nitrate uptake and nitrate reductase activity when tobacco is growing on nitrate, but increases ammonium uptake and inhibits nitrate reductase activity when tobacco is growing on ammonium nitrate. Plant Cell Environ. 24, 1119-1137.
  • 4Matt, R, Geiger, M., Walch-Liu, R, Engels, C., Krapp, A., and Stitt, M. (2001b). The immediate cause of the diurnal changes of nitrogen metabolism in leaves of nitrate-replete tobacco: a majorimbalance between the rate of nitrate reduction and the rates of nitrate uptake and ammonium metabolism during the first part of the light period. Plant Cell Environ. 24, 177-190.
  • 5Matt, P., Krapp, A., Haake, V., Mock, H.R, and Stitt, M. (2002). Decreased Rubisco activity leads to dramatic changes of nitrate metabolism, amino acid metabolism and the levels of phenylpropanoids and nicotine in tobacco antisense RBCS transformants. Plant J. 30, 663-678.
  • 6Matt, P., Schurr, U., Krapp, A., and Stitt, M. (1998). Growth of tobacco in short day conditions leads to high starch, low sugars, altered diurnal changes of the nia transcript and low nitrate reductase activity, and an inhibition of amino acid synthesis. Planta. 207, 27-41.
  • 7Menand, B., Desnos, T., Nussaume, L., Berger, F., Bouchez, D., Meyer, C., and Robaglia, C. (2002). Expression and disruption of the Arabidopsis TOR (target of rapamycin) gene. Proc. Natl Acad, Sci. U S A. 99, 6422-6427.
  • 8Michalska, J., Zauber, H., Buchanan, B.B., Cejudo, F.J., and Geigenberger, R (2009). NTRC links built-in thioredoxin to light and sucrose in regulating starch synthesis in chloroplasts and amyloplasts. Proc. Natl Acad. Sci. U S A. 106, 9908-991.
  • 9Miller, A.J., Fan, X., Shen, Q., and Smith, S,J. (2008). Amino acids and nitrate as signals for the regulation of nitrogen acquisition. J. Exp. Bot. 59, 111-119,.
  • 10Moorhead, G., et al. (1999). Phosphorylation dependent interactions between enzymes of plant metabolism and 14-3-3 proteins. Plant J. 18, 1-12.

共引文献51

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部