Effect of benzothiadiazole treatment on improving the mitochondrial energy metabolism involved in induced resistance of apple fruit during postharvest storage.

[1]  Y. Bi,et al.  Sodium silicate prime defense responses in harvested muskmelon by regulating mitochondrial energy metabolism and reactive oxygen species production. , 2019, Food chemistry.

[2]  S. Cao,et al.  Effect of β-Aminobutyric Acid on Disease Resistance Against Rhizopus Rot in Harvested Peaches , 2018, Front. Microbiol..

[3]  John Shi,et al.  Phomopsis longanae Chi-Induced Disease Development and Pericarp Browning of Harvested Longan Fruit in Association With Energy Metabolism , 2018, Front. Microbiol..

[4]  Wenhui Wang,et al.  Reactive oxygen species metabolism and phenylpropanoid pathway involved in disease resistance against Penicillium expansum in apple fruit induced by ϵ-poly-l-lysine. , 2018, Journal of the science of food and agriculture.

[5]  Jianrong Li,et al.  Effect of acibenzolar-S-methyl on energy metabolism and blue mould of Nanguo pear fruit , 2017 .

[6]  Y. Hung,et al.  Energy status regulates disease development and respiratory metabolism of Lasiodiplodia theobromae (Pat.) Griff. & Maubl.-infected longan fruit. , 2017, Food chemistry.

[7]  Y. Hung,et al.  DNP and ATP induced alteration in disease development of Phomopsis longanae Chi-inoculated longan fruit by acting on energy status and reactive oxygen species production-scavenging system. , 2017, Food chemistry.

[8]  H. Ghazali,et al.  Biochemical and cell wall ultrastructural changes in crown tissue of banana (Musa AAA ‘Berangan’) fruit as mediated by UVC irradiation against crown rot fungal infection , 2017 .

[9]  Xiangbin Xu,et al.  1-methylcyclopropene (1-MCP) suppressed postharvest blue mold of apple fruit by inhibiting the growth of Penicillium expansum , 2017 .

[10]  Y. Bi,et al.  Induced resistance to control postharvest decay of fruit and vegetables , 2016 .

[11]  W. Cheon,et al.  Postharvest Disease Control of Colletotrichum gloeosporioides and Penicillium expansum on Stored Apples by Gamma Irradiation Combined with Fumigation , 2016, The plant pathology journal.

[12]  Xiaoqin Wu,et al.  Proteomic analysis of changes in mitochondrial protein expression during peach fruit ripening and senescence. , 2016, Journal of proteomics.

[13]  Peiyan Li,et al.  Alleviation of chilling injury in tomato fruit by exogenous application of oxalic acid. , 2016, Food chemistry.

[14]  J. Uthaibutra,et al.  Effects of chlorine dioxide on mitochondrial energy levels and redox status of ‘Daw’ longan pericarp during storage , 2016 .

[15]  M. Maraschin,et al.  Efficacy of salicylic acid to reduce Penicillium expansum inoculum and preserve apple fruits. , 2016, International journal of food microbiology.

[16]  Xueping Li,et al.  Benzothiadiazole-Mediated Induced Resistance to Colletotrichum musae and Delayed Ripening of Harvested Banana Fruit. , 2016, Journal of agricultural and food chemistry.

[17]  M. Maraschin,et al.  Antifungal activity of salicylic acid against Penicillium expansum and its possible mechanisms of action. , 2015, International journal of food microbiology.

[18]  Y. Bi,et al.  BTH treatment caused physiological, biochemical and proteomic changes of muskmelon (Cucumis melo L.) fruit during ripening. , 2015, Journal of proteomics.

[19]  Zhenfeng Yang,et al.  Respiratory activity and mitochondrial membrane associated with fruit senescence in postharvest peaches in response to UV-C treatment. , 2014, Food chemistry.

[20]  S. Zhang,et al.  Phomopsis longanae Chi-induced pericarp browning and disease development of harvested longan fruit in association with energy status , 2014 .

[21]  H. Braun,et al.  Respiratory electron transfer pathways in plant mitochondria , 2014, Front. Plant Sci..

[22]  D. Joyce,et al.  Effect of MeJA treatment on polyamine, energy status and anthracnose rot of loquat fruit. , 2014, Food chemistry.

[23]  Peiyan Li,et al.  Pre-storage application of oxalic acid alleviates chilling injury in mango fruit by modulating proline metabolism and energy status under chilling stress. , 2014, Food chemistry.

[24]  Bing Chen,et al.  6-Benzylaminopurine alleviates chilling injury of postharvest cucumber fruit through modulating antioxidant system and energy status. , 2013, Journal of the science of food and agriculture.

[25]  Y. Bi,et al.  Postharvest BTH treatment induced disease resistance and enhanced reactive oxygen species metabolism in muskmelon (Cucumis melo L.) fruit , 2012, European Food Research and Technology.

[26]  Xinhua Liu,et al.  Effect of benzo-thiadiazole-7-carbothioic acid S-methyl ester (BTH) treatment on the resistant substance in postharvest mango fruits of different varieties , 2011 .

[27]  S. Cao,et al.  The effects of the combination of Pichia membranefaciens and BTH on controlling of blue mould decay caused by Penicillium expansum in peach fruit , 2011 .

[28]  P. Galtier,et al.  Biosynthesis and Toxicological Effects of Patulin , 2010, Toxins.

[29]  Qing Wang,et al.  Proteomic analysis of changes in mitochondrial protein expression during fruit senescence , 2009, Proteomics.

[30]  C. Xiao,et al.  Preharvest Application of a Boscalid and Pyraclostrobin Mixture to Control Postharvest Gray Mold and Blue Mold in Apples. , 2009, Plant disease.

[31]  Y. B. Li,et al.  ATP-induced Changes in Energy Status and Membrane Integrity of Harvested Litchi Fruit and its Relation to Pathogen Resistance , 2008 .

[32]  K. Lindsey,et al.  Extracellular ATP Functions as an Endogenous External Metabolite Regulating Plant Cell Viability , 2005, The Plant Cell Online.

[33]  Yunbo Luo,et al.  Postharvest BTH treatment induces resistance of peach (Prunus persica L. cv. Jiubao) fruit to infection by Penicillium expansum and enhances activity of fruit defense mechanisms , 2005 .

[34]  Pavelic,et al.  Membrane lipid integrity relies on a threshold of ATP production rate in potato cell cultures submitted to anoxia , 1999, Plant physiology.

[35]  M. M. Bradford A rapid and sensitive method for the quantitation of microgram quantities of protein utilizing the principle of protein-dye binding. , 1976, Analytical biochemistry.