期刊文献+

Investigation of the transcriptomic and metabolic changes associated with superficial scald physiology impaired by lovastatin and 1-methylcyclopropene in pear fruit(cv.“Blanquilla”)

下载PDF
导出
摘要 To elucidate the physiology underlying the development of superficial scald in pears,susceptible“Blanquilla”fruit was treated with different compounds that either promoted(ethylene)or repressed(1-methylcyclopropene and lovastatin)the incidence of this disorder after 4 months of cold storage.Our data show that scald was negligible for the fruit treated with 1-methylcyclopropene or lovastatin,but highly manifested in untreated(78%incidence)or ethylenetreated fruit(97%incidence).The comparison between the fruit metabolomic profile and transcriptome evidenced a distinct reprogramming associated with each treatment.In all treated samples,cold storage led to an activation of a cold-acclimation-resistance mechanism,including the biosynthesis of very-long-chain fatty acids,which was especially evident in 1-methylcyclopropane-treated fruit.Among the treatments applied,only 1-methylcyclopropene inhibited ethylene production,hence supporting the involvement of this hormone in the development of scald.However,a common repression effect on the PPO gene combined with higher sorbitol content was found for both lovastatin and 1-methylcyclopropene-treated samples,suggesting also a non-ethylene-mediated process preventing the development of this disorder.The results presented in this work represent a step forward to better understand the physiological mechanisms governing the etiology of superficial scald in pears.
出处 《Horticulture Research》 SCIE 2020年第1期2229-2245,共17页 园艺研究(英文)
基金 supported by the CERCA program from the Generalitat de Catalunya and by the Ministerio de Economía y Competitividad(MINECO grant AGL2017-87923-R).J.G.B.was the recipient of a JoséCastillejo Mobility Fellowship(CAS18/00186).
  • 相关文献

参考文献2

二级参考文献11

  • 1Barry, C.S. (2009). The stay-green revolution: recent progress in deciphering the mechanisms of chlorophyll degradation in higher plants. Plant Sci. 176, 325-333.
  • 2Gregersen, RL., Culetic, A., Boschian, L., and Krupinska, K. (2013). Plant senescence and crop productivity. Plant Moi. Biol. 82, 603-622.
  • 3Hortensteiner, S., and Krautler, B. (2011). Chlorophyll breakdown in higher plants. Biochim. Biophys. Acta. 1807, 977-988.
  • 4Lim, RO., Kim, H.J., and Nam, H.G. (2007). Leaf senescence. Annu. Rev. Plant Biol. 58, 115-136.
  • 5Park, S.Y., et al. (2007). The senescence-induced staygreen protein regulates chlorophyll degradation. Plant Cell. 19, 1649-1664.
  • 6Ren, G., An, K., Liao, Y., Zhou, X., Cao, Y., Zhao, H., Ge, X., and Kuai, B. (2007). Identification of a novel chloroplast protein AtNYE1 regulating chlorophyll degradation during leaf senes- cence in Arabidopsis. Plant Physiol. 144, 1429-1441.
  • 7Rong, H., Tang, Y., Zhang, H., Wu, P., Chen, Y., Li0 M., Wu, G., and Jiang, H. (2013). The Stay-Green Rice like (SGRL) gene regulates chlorophyll degradation in rice. J. Plant Physiol. 170, 1367-1373.
  • 8Sakuraba, Y., Park, S.Y., Kim, Y.S., Wang, S.H., Yoo, S.C., Hortensteiner, S., and Paek N.C. (2014). Arabidopsis STAY- GREEN2 is a negative regulator of chlorophyll degradation dur- ing leaf senescence. Mol. Plant. Apt 9. Sakuraba, Y., Schelbert, S., Park, S.Y., Han, S.H., Lee, B.D., Andrbs, C.B., Kessler, F., Hortensteiner, S., and Paek, N.C. (2012). STAY- GREEN and chlorophyll catabolic enzymes interact at light- harvesting complex Ⅱ for chlorophyll detoxification during leaf senescence in Arabidopsis. Plant Cell. 24, 507-518.
  • 9Sato, Y., Morita, R., Nishimura, M., Yamaguchi, H., and Kusaba, M. (2007). Mendel's green cotyledon gene encodes a positive regu- lator of the chlorophyll-degrading pathway. Proc. Natl Acad. Sci. USA. 104, 14169-14174.
  • 10Thomas, H., and Howarth, C.J. (2000). Five ways to stay green. J. Exp. Bot. 51,329-337.

共引文献2

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