Polyphenol oxidase (PPO; also polyphenol oxidase i, chloroplastic), an enzyme involved in fruit browning, is a tetramer that contains four atoms of copper per molecule.[1]
The amino acidtyrosine contains a single phenolic ring that may be oxidised by the action of PPOs to form o-quinone. Hence, PPOs may also be referred to as tyrosinases.[5]
In plants, PPO is a plastidic enzyme with unclear synthesis and function. In functional chloroplasts, it may be involved in oxygen chemistry like mediation of pseudocyclic photophosphorylation.[15]
A mixture of monophenol oxidase and catechol oxidase enzymes is present in nearly all plant tissues, and can also be found in bacteria, animals, and fungi. In insects, cuticular polyphenol oxidases are present[17] and their products are responsible for desiccation tolerance.
Grape reaction product (2-S glutathionyl caftaric acid) is an oxidation compound produced by action of PPO on caftaric acid and found in wine. This compound production is responsible for the lower level of browning in certain white wines.[citation needed]
Plants make use of polyphenol oxidase as one in a suite of chemical defences against parasites.[18]
Inhibitors
There are two types of inhibitor of PPO, those competitive to oxygen in the copper site of the enzyme and those competitive to phenolics. Tentoxin has also been used in recent research to eliminate the PPO activity from seedlings of higher plants.[19]Tropolone is a grape polyphenol oxidase inhibitor.[20] Another inhibitor of this enzyme is potassium metabisulfite.[21] Banana root PPO activity is strongly inhibited by dithiothreitol and sodium metabisulfite,[22] as is banana fruit PPO by similar sulfur-containing compounds including sodium dithionite and cysteine, in addition to ascorbic acid (vitamin C).[23]
Assays
Several assays were developed to monitor the activity of polyphenol oxidases and to evaluate the inhibition potency of polyphenol oxidase inhibitors. In particular, ultraviolet/visible (UV/Vis) spectrophotometry-based assays are widely applied.[24] The most common UV/Vis spectrophotometry assay involves the monitoring of the formation of o-quinones, which are the products of polyphenol oxidase-catalysed reactions, or the consumption of the substrate.[25] Alternative spectrophotometric method that involves the coupling of o-quinones with nucleophilic reagents such as 3-methyl-2-benzothiazolinonehydrazone hydrochloride (MBTH) was also used.[26] Other techniques, such as activity staining assays with the use of polyacrylamide gel electrophoresis,[27]tritium-based radioactive assays,[28] oxygen consumption assay,[29] and nuclear magnetic resonance (NMR)-based assay were also reported and used.[30]
Enzymatic browning
Polyphenol oxidase is an enzyme found throughout the plant and animal kingdoms,[31] including most fruits and vegetables.[32] PPO has importance to the food industry because it catalyzes enzymatic browning when tissue is damaged from bruising, compression or indentations, making the produce less marketable and causing economic loss.[31][32][33] Enzymatic browning due to PPO can also lead to loss of nutritional content in fruits and vegetables, further lowering their value.[11][31][32]
Because the substrates of these PPO reactions are located in the vacuoles of plant cells damaged mainly by improper harvesting, PPO initiates the chain of browning reactions.[33][34] Exposure to oxygen when sliced or pureed also leads to enzymatic browning by PPO in fruits and vegetables.[32] Examples in which the browning reaction catalyzed by PPO may be desirable include avocados, prunes, sultana grapes, black tea, and green coffee beans.[11][32]
In mango
In mangoes, PPO catalyzed enzymatic browning is mainly caused by sap burn which leads to skin browning.[citation needed]Catechol oxidase-type PPO is located in the chloroplasts of mango skin cells and its phenolic substrates in the vacuoles. Sap burn is therefore the initiating event of PPO in mango skin, as it breaks down cell compartments.[34] PPO is located in mango skin, sap and pulp, with highest activity levels in skin.[32]
In avocado
PPO in avocados causes rapid browning upon exposure to oxygen,[11] a multistep process involving oxidation reactions of both monophenols and polyphenols, resulting in o-quinone products subsequently converted irreversibly into brown polymericpigments (melanins).[35]
In apple
Present in the chloroplasts and mitochondria of all parts of an apple,[32] PPO is the major enzyme responsible for enzymatic browning of apples.[36] Due to an increase in consumer demand for pre-prepared fruits and vegetables, a solution for enzymatic browning has been a targeted area of research and new product development.[37] As an example, pre-sliced apples are an appealing consumer product, but slicing apples induces PPO activity, leading to browning of the cut surfaces and lowering their esthetic quality.[37] Browning also occurs in apple juices and purees when poorly handled or processed.[38]
Apricot as a climacteric fruit undergoes fast post-harvest maturation. The latent PPO form can spontaneously activate during the first weeks of storage, generating the active enzyme with a molecular weight of 38 kDa.[40]Ascorbic acid/protease combinations constitute a promising practical anti-browning method as treated apricot purees preserved their color.[41]
In potato
Found in high concentrations in potato tuber peel and 1–2 mm of the outer cortex tissue, PPO is used in the potato as a defense against insect predation, leading to enzymatic browning from tissue damage.[citation needed] Damage in the skin tissue of potato tuber causes a disruption of cell compartmentation, resulting in browning. The brown or black pigments are produced from the reaction of PPO quinone products with amino acid groups in the tuber.[33] In potatoes, PPO genes are not only expressed in potato tubers, but also in leaves, petioles, flowers and roots.[33]
In walnut
In walnut (Juglans regia), two different genes (jr PPO1 and jr PPO2) encoding polyphenol oxidases have been identified. The two isoenzymes prefer different substrates, as jr PPO1 shows a higher activity towards monophenols, whereas jr PPO2 is more active towards diphenols.[42][43]
Hemocyanin is homologous to the phenol oxidases (e.g. tyrosinase) since both enzymes sharing type copper active site coordination. Hemocyanin also exhibits PPO activity, but with slowed kinetics from greater steric bulk at the active site. Partial denaturation actually improves hemocyanin's PPO activity by providing greater access to the active site.[47]
Laccase, a multi-copper oxidase, is often considered a subclass of polyphenol oxidase.[50] Laccase and polyphenol oxidase differ in the type of substrates that they catalyse. Catachol oxidase (a type of polyphenol oxidase) catalyses the oxidation of ortho-diphenols to ortho-quinones. Tyrosinase (another type of polyphenol oxidase), catalyses both the oxidation of monophenols to ortho-diphenols, and the subsequent oxidation of ortho-diphenols to ortho-quinones. Laccase, in contrast, catalyses the oxidation of para-diphenols to para-quinones.[51]
^A Sánchez-Ferrer; J N Rodríguez-López; F García-Cánovas; F García-Carmona (1995). "Tyrosinase: A Comprehensive Review of Its Mechanism". Biochimica et Biophysica Acta (BBA) - Protein Structure and Molecular Enzymology. 1247 (1): 1–11. doi:10.1016/0167-4838(94)00204-t. PMID7873577.
^ abOttaviani JI, Ensunsa JI, Kwik-Uribe C (2023). "Impact of polyphenol oxidase on the bioavailability of flavan-3-ols in fruit smoothies: a controlled, single blinded, cross-over study". Food & Function. 14 (18): 8217–8228. doi:10.1039/d3fo01599h. PMID37615673.
^ abcdToledo L, Aguirre C (December 2017). "Enzymatic browning in avocado (Persea americana) revisited: History, advances, and future perspectives". Critical Reviews in Food Science and Nutrition. 57 (18): 3860–3872. doi:10.1080/10408398.2016.1175416. PMID27172067. S2CID205692816.
^Mallette MF, Dawson CR (August 1949). "On the nature of highly purified mushroom tyrosinase preparations". Archives of Biochemistry. 23 (1): 29–44. PMID18135760.
^Vaughn KC, Duke SO (1984). "Function of polyphenol oxidase in higher plants". Physiologia Plantarum. 60 (1): 106–112. doi:10.1111/j.1399-3054.1984.tb04258.x.
^Duke SO, Vaughn KC (April 1982). "Lack of involvement of polyphenol oxidase in ortho-hydroxylation of phenolic compounds in mung bean seedlings". Physiologia Plantarum. 54 (4): 381–385. doi:10.1111/j.1399-3054.1982.tb00696.x.
^Valero E, Garcia-Moreno M, Varon R, Garcia-Carmona F (1991). "Time-dependent inhibition of grape polyphenol oxidase by tropolone". J. Agric. Food Chem. 39 (6): 1043–1046. doi:10.1021/jf00006a007.
^Del Signore A, Romeoa F, Giaccio M (May 1997). "Content of phenolic substances in basidiomycetes". Mycological Research. 101 (5): 552–556. doi:10.1017/S0953756296003206.
^Wuyts N, De Waele D, Swennen R (2006). "Extraction and partial characterization of polyphenol oxidase from banana (Musa acuminata Grande naine) roots". Plant Physiology and Biochemistry. 44 (5–6): 308–14. doi:10.1016/j.plaphy.2006.06.005. PMID16814556.
^García-Molina F, Muñoz JL, Varón R, Rodríguez-López JN, García-Cánovas F, Tudela J (November 2007). "A review on spectrophotometric methods for measuring the monophenolase and diphenolase activities of tyrosinase". Journal of Agricultural and Food Chemistry. 55 (24): 9739–49. doi:10.1021/jf0712301. PMID17958393.
^Haghbeen K, Wue Tan E (January 2003). "Direct spectrophotometric assay of monooxygenase and oxidase activities of mushroom tyrosinase in the presence of synthetic and natural substrates". Analytical Biochemistry. 312 (1): 23–32. doi:10.1016/S0003-2697(02)00408-6. PMID12479831.
^Espín JC, Morales M, Varón R, Tudela J, García-Cánovas F (October 1995). "A continuous spectrophotometric method for determining the monophenolase and diphenolase activities of apple polyphenol oxidase". Analytical Biochemistry. 231 (1): 237–46. doi:10.1006/abio.1995.1526. PMID8678307.
^Rescigno A, Sollai F, Rinaldi AC, Soddu G, Sanjust E (March 1997). "Polyphenol oxidase activity staining in polyacrylamide electrophoresis gels". Journal of Biochemical and Biophysical Methods. 34 (2): 155–9. doi:10.1016/S0165-022X(96)01201-8. PMID9178091.
^Pomerantz SH (June 1964). "Tyrosine hydroxylation catalyzed by mammalian tyrosinase: an improved method of assay". Biochemical and Biophysical Research Communications. 16 (2): 188–94. doi:10.1016/0006-291X(64)90359-6. PMID5871805.
^Li Y, Zafar A, Kilmartin PA, Reynisson J, Leung IK (November 2017). "Development and Application of an NMR-Based Assay for Polyphenol Oxidases". ChemistrySelect. 2 (32): 10435–41. doi:10.1002/slct.201702144.
^ abcÜnal MÜ (2007). "Properties of polyphenol oxidase from Anamur banana (Musa cavendishii)". Food Chemistry. 100 (3): 909–913. doi:10.1016/j.foodchem.2005.10.048.
^ abcdefgVámos-Vigyázó L (1981). "Polyphenol oxidase and peroxidase in fruits and vegetables". Critical Reviews in Food Science and Nutrition. 15 (1): 49–127. doi:10.1080/10408398109527312. PMID6794984.
^ abRobinson SP, Loveys BR, Chacko EK (1993). "Polyphenol Oxidase Enzymes in the Sap and Skin of Mango Fruit". Functional Plant Biology. 20 (1): 99–107. doi:10.1071/pp9930099. ISSN1445-4416.
^ abSon SM, Moon KD, Lee CY (April 2001). "Inhibitory effects of various antibrowning agents on apple slices". Food Chemistry. 73 (1): 23–30. doi:10.1016/s0308-8146(00)00274-0.
^Nicolas JJ, Richard-Forget FC, Goupy PM, Amiot MJ, Aubert SY (1994). "Enzymatic browning reactions in apple and apple products". Critical Reviews in Food Science and Nutrition. 34 (2): 109–57. doi:10.1080/10408399409527653. PMID8011143.
^Rompel, Annette; Fischer, Helmut; Meiwes, Dirk; Büldt-Karentzopoulos, K.; Dillinger, Renée; Tuczek, Felix; Witzel, Herbert; Krebs, B. (1999). "Purification and spectroscopic studies on catechol oxidases from Lycopus europaeus and Populus nigra: Evidence for a dinuclear copper center of type 3 and spectroscopic similarities to tyrosinase and hemocyanin". Journal of Biological Inorganic Chemistry. 4 (1): 56–63. doi:10.1007/s007750050289. ISSN1432-1327. PMID10499103. S2CID29871864.
^Su J, Fu J, Wang Q, Silva C, Cavaco-Paulo A (July 2017). "Laccase: a green catalyst for the biosynthesis of poly-phenols". Critical Reviews in Biotechnology. 38 (2): 294–307. doi:10.1080/07388551.2017.1354353. hdl:1822/51157.