Sequence of Chloroplast Degreening in Calamondin Fruit as Influenced by Ethylene and AgNO(3)
- PMID: 16661491
- PMCID: PMC440692
- DOI: 10.1104/pp.66.4.624
Sequence of Chloroplast Degreening in Calamondin Fruit as Influenced by Ethylene and AgNO(3)
Abstract
C(2)H(4) disrupts the internal membranes of the chloroplast and induces an increase in chlorophyllase activity in degreening calamondin [x Citrofortunella mitis (Blanco) Ingram and Moore] fruit. Whether the loss of chlorophyll in the peel is causally related to breakdown of the chloroplast and/or chlorophyllase activity is not readily apparent. Chlorophyllase levels were inversely related to chlorophyll content, but electron micrographs also showed that internal membranes of the chloroplasts were disrupted simultaneously with the decrease in chlorophyll content. Silver, a potent inhibitor of C(2)H(4)-mediated effects, retarded the loss of chlorophyll in calamondin rind, reduced the C(2)H(4)-induced increase in chlorophyllase level, and prevented the disruption of the chloroplast membranes. The results do not permit the proposal of a mechanism of C(2)H(4) metabolism in the degreening of calamondin fruit.
Similar articles
-
Involvement of ethylene in chlorophyll degradation in peel of citrus fruits.Plant Physiol. 1981 Oct;68(4):854-6. doi: 10.1104/pp.68.4.854. Plant Physiol. 1981. PMID: 16662012 Free PMC article.
-
Chlorophyll breakdown by chlorophyllase: isolation and functional expression of the Chlase1 gene from ethylene-treated Citrus fruit and its regulation during development.Plant J. 1999 Dec;20(6):653-61. doi: 10.1046/j.1365-313x.1999.00637.x. Plant J. 1999. PMID: 10652137
-
Examining the Role of Low Temperature in Satsuma Mandarin Fruit Peel Degreening via Comparative Physiological and Transcriptomic Analysis.Front Plant Sci. 2022 Jul 13;13:918226. doi: 10.3389/fpls.2022.918226. eCollection 2022. Front Plant Sci. 2022. PMID: 35909736 Free PMC article.
-
Citrus chlorophyllase dynamics at ethylene-induced fruit color-break: a study of chlorophyllase expression, posttranslational processing kinetics, and in situ intracellular localization.Plant Physiol. 2008 Sep;148(1):108-18. doi: 10.1104/pp.108.124933. Epub 2008 Jul 16. Plant Physiol. 2008. PMID: 18633118 Free PMC article.
-
Degradation pathway(s) of chlorophyll: what has gene cloning revealed?Trends Plant Sci. 2000 Oct;5(10):426-31. doi: 10.1016/s1360-1385(00)01735-0. Trends Plant Sci. 2000. PMID: 11044719 Review.
Cited by
-
The role of silver ions in the regulation of the senescence process in Triticum aestivum.Turk J Biol. 2018 Dec 10;42:517-526. doi: 10.3906/biy-1802-95. eCollection 2018. Turk J Biol. 2018. PMID: 30983866 Free PMC article.
-
Light Requirement for AgNO(3) Inhibition of Ethrel-Induced Leaf Abscission from Cuttings of Vigna radiata.Plant Physiol. 1981 Dec;68(6):1249-52. doi: 10.1104/pp.68.6.1249. Plant Physiol. 1981. PMID: 16662087 Free PMC article.
-
Air pollutants from hydrocarbons and derivatives in micropropagation laboratories: toxicity symptoms on tissue culture of the cherry rootstock Colt (Prunus avium x P. pseudocerasus).Plant Cell Rep. 1990 Nov;9(7):374-7. doi: 10.1007/BF00232402. Plant Cell Rep. 1990. PMID: 24227058
-
Effect of nano silver and silver nitrate on seed yield of (Ocimum basilicum L.).Org Med Chem Lett. 2014 Oct 2;4:11. doi: 10.1186/s13588-014-0011-0. eCollection 2014. Org Med Chem Lett. 2014. PMID: 25383311 Free PMC article.
-
Physio-biochemical and ultrastructural impact of (Fe3O4) nanoparticles on tobacco.BMC Plant Biol. 2019 Jun 13;19(1):253. doi: 10.1186/s12870-019-1864-1. BMC Plant Biol. 2019. PMID: 31196035 Free PMC article.
References
LinkOut - more resources
Full Text Sources