期刊文献+

Illuminating the cells:transient transformation of citrus to study gene functions and organelle activities related to fruit quality 被引量:2

下载PDF
导出
摘要 Although multiple microscopic techniques have been applied to horticultural research,few studies of individual organelles in living fruit cells have been reported to date.In this paper,we established an efficient system for the transient transformation of citrus fruits using an Agrobacterium-mediated method.Kumquat(Fortunella crassifolia Swingle)was used;it exhibits higher transformation efficiency than all citrus fruits that have been tested and a prolonged-expression window.Fruits were transformed with fluorescent reporters,and confocal microscopy and live-cell imaging were used to study their localization and dynamics.Moreover,various pH sensors targeting different subcellular compartments were expressed,and the local pH environments in cells from different plant tissues were compared.The results indicated that vacuoles are most likely the main organelles that contribute to the low pH of citrus fruits.In summary,our method is effective for studying various membrane trafficking events,protein localization,and cell physiology in fruit and can provide new insight into fruit biology research.
出处 《Horticulture Research》 SCIE 2021年第1期2495-2503,共9页 园艺研究(英文)
基金 This work was supported by the National Key Research and Development Program(2019YFD1000103) NSFC grants(no.31772281,91854102)to P.W.
  • 相关文献

参考文献3

二级参考文献81

  • 1Alberts, B., Johnson, A., Lewis, J., Raff, M., Roberts, K., and Walter, p. (2002). Molecular Biology of the Cell. 4th edn (New York: Garland Science).
  • 2Sagar, T., Altenbach, K., Read, N.D., and Bencina, M. (2009). Livecell imaging and measurement of intracellular pH in filamentous fungi using a genetically encoded ratiometric probe. Eukaryot. Cell. 8, 703-712.
  • 3Cai, Y., Zhuang, X.H., Wang, J.O., Wang, H., Lam, S.K., Gao, C.J., Wang, X.F., and Jiang, L.W. (2012). Vacuolar degradation of two integral plasma membrane proteins, AtLRR84A and OsSCAMP1, is cargo ubiquitination-independent and prevacuolar compartment-mediated in plant cells. Traffic. 13, 1023-1040.
  • 4Cao, X., Rogers, S.W., Butler, J., Beevers, L., and Rogers, J.C. (2000). Structural requirements for ligand binding by a probable plant vacuolar sorting receptor. Plant Cell. 12, 493-506.
  • 5Carter, C., Pan, S.O., Jan, Z.H., Avila, E.L., Girke, T., and Raikhel, N.V. (2004). The vegetative vacuole proteorne of Arabidopsis thaliana reveals predicted and unexpected proteins. Plant Cell. 16, 3285-3303.
  • 6Casey, J.R., Grinstein, S., and Orlowski, J. (2010). Sensors and regulators of intracellular pH. Nat. Rev. Mol. Cell Biol. 11, 50-61.
  • 7Dansen, T.B., Wirtz, K.W.A., Wanders, R.J.A., and Pap, E.H.W. (2000). Peroxisomes in human fibroblasts have a basic pH. Nat. Cell Biol. 2, 51-53.
  • 8daSilva, L.L.P., Foresti, O., and Denecke, J. (2006). Targeting of the plant vacuolar sorting receptor BP80 is dependent on multiple sorting signals in the cytosolic tail. Plant Cell. 18, 1477-1497.
  • 9daSilva, L.L.P., Taylor, J.P', Hadlington, J.L., Hanton, S.L., Snowden, C.J., Fox, S.J., Foresti, O., Brandizzi, F., and Denecke, J. (2005). Receptor salvage from the prevacuolar compartment is essential for efficient vacuolar protein targeting. Plant Cell. 17, 132-148.
  • 10Davis, S.J., and Vierstra, R.D. (1998). Soluble, highly fluorescent variants of green fluorescent protein (GFP) for use in higher plants. Plant Mol. Biol. 36, 521-528.

共引文献41

同被引文献15

引证文献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