Phenolic Content and Bioactivity as Geographical Classifiers of Propolis from Stingless Bees in Southeastern Mexico
Abstract
:1. Introduction
2. Materials and Methods
2.1. Reagents and Materials
2.2. Propolis
2.3. Propolis Extraction
2.4. Total Phenolic and Flavonoids Quantification
2.5. Antioxidant Assays
2.5.1. DPPH (2,2-Diphenyl-1-picrylhydrazyl) Free Radical Scavenging
2.5.2. ABTS (2,2-Azinobis-(3-ethylbenzothiazoline-6-sulfonate)) Free Radical (Hydrophilic) Scavenging
2.5.3. Metal Chelating Ability
2.5.4. Ferric Reducing Antioxidant Power
2.6. Anti-Inflammatory Assays
2.6.1. Inhibition of Protein Thermal Denaturation
2.6.2. Cell Membrane Stabilization
2.6.3. Hemolysis Assay
2.7. Antibacterial Assay
Evaluation of Minimum Inhibitory Concentrations (MIC)
2.8. Statistical Analysis
3. Results
3.1. Total Phenolic and Flavonoids Quantification
3.2. Antioxidant Assays
3.3. Anti-Inflammatory Assays
3.4. Antibacterial Assay
3.5. Chemometrical Analysis
3.5.1. Pearson Correlation
3.5.2. Hierarchical Cluster Analysis
3.5.3. Principal Component Analysis
4. Discussions
5. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
- Quezada-Euán, J.J.G.; May-Itzá, W.J.; González-Acereto, J.A. Meliponiculture in México: Problems and perspective for de-velopment. Bee World 2001, 82, 160–167. [Google Scholar] [CrossRef]
- Gonzalez, V.H.; Amith, J.D.; Stein, T.J. Nesting ecology and the cultural importance of stingless bees to speakers of Yoloxóchitl Mixtec, an endangered language in Guerrero, Mexico. Apidologie 2018, 49, 625–636. [Google Scholar] [CrossRef] [Green Version]
- Quezada-Euán, J.J.G.; Nates-Parra, G.; Maués, M.M. Imperatriz-Fonseca, V.L.; Roubik, D.W. The economic and cultural values of stingless bees (Hymenoptera: Meliponini) among ethnic groups of tropical America. Sociobiology 2018, 65, 534–557. [Google Scholar] [CrossRef]
- Pat-Fernández, L.A.; Anguebes-Franceschi, F.; Pat-Fernández, J.M.; Hernández-Bahena, P.; Ramos-Reyes, R. Condición y perspectivas de la meliponicultura en comunidades mayas de la reserva de la biósfera Los Petenes, Campeche, México. Estud. De Cult. Maya 2018, 52, 227–254. [Google Scholar] [CrossRef] [Green Version]
- Quezada-Euán, J.J.G. Stingless Bees of Mexico: The Biology, Management and Conservation of an Ancient Heritage; Springer: Berlin/Heidelberg, Germany, 2018. [Google Scholar]
- Wan Yusop, S.A.T.; Sukairi, A.H.; Wan Sabri, W.M.A.; Asaruddin, M.R. Antioxidant, antimicrobial and cytotoxicity activities of propolis from Beladin, Sarawak stingless bees Trigona itama extract. Mater. Today Proc. 2019, 19, 1752–1760. [Google Scholar] [CrossRef]
- Zulhendri, F.; Perera, C.O.; Tandean, S.; Abdulah, R.; Herman, H.; Christoper, A.; Chandrasekaran, K.; Putra, A.; Lesmana, R. The Potential use of propolis as a primary or an adjunctive therapy in respiratory tract-related diseases and disorders: A systematic scoping review. Biomed. Pharmacother. 2022, 146, 112595. [Google Scholar] [CrossRef]
- Zulhendri, F.; Perera, C.O.; Chandrasekaran, K.; Ghosh, A.; Tandean, S.; Abdulah, R.; Herman, H.; Lesmana, R. Propolis of stingless bees for the development of novel functional food and nutraceutical ingredients: A systematic scoping review of the experimental evidence. J. Funct. Foods 2022, 88, 104902. [Google Scholar] [CrossRef]
- Turco, J.F.; do Nascimento, C.L.; de Lima, V.A.; Torres, Y.R. Could antioxidant capacity and flavonoid content of ethanolic extracts of geopropolis from Brazilian native bees be estimated from digital photos and NIR Spectra? Microchem. J. 2020, 157, 105031. [Google Scholar] [CrossRef]
- Li, F.; Awale, S.; Tezuka, Y.; Kadota, S. Cytotoxicity of constituents from Mexican propolis against a panel of six different cancer cell lines. Nat. Prod. Commun. 2010, 5, 1601–1606. [Google Scholar] [CrossRef] [Green Version]
- Popova, M.; Trusheva, B.; Bankova, V. Propolis of stingless bees: A phytochemist’s guide through the jungle of tropical biodiversity. Phytomedicine 2021, 86, 153098. [Google Scholar] [CrossRef]
- Braakhuis, A. Evidence on the Health Benefits of Supplemental Propolis. Nutrients 2019, 8, 2705. [Google Scholar] [CrossRef] [Green Version]
- Lavinas, F.C.; Macedo, E.H.B.C.; Sá, G.B.L.; Amaral, A.C.F.; Silva, J.R.A.; Azevedo, M.M.B.; Vieira, B.A.; Domingos, T.F.S.; Vermelho, A.B.; Carneiro, C.S.; et al. Brazilian stingless bee propolis and geopropolis: Promising sources of bio-logically active compounds. Rev. Bras. De Farmacogn. 2019, 29, 389–399. [Google Scholar] [CrossRef]
- Hozzeina, W.N.; Badr, G.; Al Ghamdi, A.A.; Sayed, A.; Al-Wailif, N.S.; Garraud, O. topical application of propolis enhances cutaneous wound healing by promoting tgf-beta/smad-mediated collagen production in a Streptozotocin-induced type I diabetic mouse model. Cell Physiol. Biochem. 2015, 37, 940–954. [Google Scholar] [CrossRef]
- Paris, E.H.; Peraza-Lope, C.; Masson, M.A.; Delgado-Kú, P.C.; Escamilla-Ojeda, B.C. The organization of stingless beekeeping (Meliponiculture) at Mayapán, Yucatan, Mexico. J. Anthropol. Archaeol. 2018, 52, 1–22. [Google Scholar] [CrossRef]
- Huanbutta, K.; Sittikijyothin, W.; Sangnim, T. Development of topical natural based film forming system loaded propolis from stingless bees for wound healing application. J. Pharm. Investig. 2020, 50, 625–634. [Google Scholar] [CrossRef]
- Albores-Flores, V.; Saavedra-Camacho, E.; López-García, J.A.; Grajales-Conesa, J.; Córdova-Albores, L.C. Physicochemical characterization, antioxidant, and antifungal activity of three stingless bee pollen aggregate (Apidae: Meliponini) from So-conusco, Chiapas. Rev. Mex. De Fitopatol. 2021, 39, 41–60. [Google Scholar] [CrossRef]
- Dumitru, C.D.; Neacsu, I.A.; Grumezescu, A.M.; Andronescu, E. Bee-derived products: Chemical composition and applications in skin tissue engineering. Pharmaceutics 2022, 14, 750. [Google Scholar] [CrossRef]
- De Farias, J.H.; Reis, A.S.; Araújo, M.A.; Araújo, M.J.; Assunção, A.K.; De Farias, J.C.; Fialho, E.M.; Silva, L.A.; Costa, G.C.; Guerra, R.N.; et al. Effects of stingless bee propolis on experimental asthma. Evid.-Based Complement. Altern. Med. 2014, 2014, 951478. [Google Scholar] [CrossRef] [Green Version]
- Brodkiewicz, I.Y.; Reynoso, M.A.; Vera, N.R. In vivo evaluation of pharmacological properties of Argentine stingless bee geopropolis. Beni-Suef Univ. J. Basic Appl. Sci. 2020, 9, 32. [Google Scholar] [CrossRef]
- Bonamigo, T.; Campos, J.F.; Alfredo, T.M.; Balestieri, J.B.; Cardoso, C.A.; Paredes-Gamero, E.J.; de Picoli Souza, K.; Dos Santos, E.L. Antioxidant, cytotoxic, and toxic activities of propolis from two native bees in Brazil: Scaptotrigona depilis and Melipona quadrifasciata anthidioides. Oxidative Med. Cell. Longev. 2017, 2017, 1038153. [Google Scholar] [CrossRef] [Green Version]
- Curti, V.; Zaccaria, V.; Tsetegho Sokeng, A.J.; Dacrema, M.; Masiello, I.; Mascaro, A.; D’Antona, G.; Daglia, M. Bioavailability and in vivo antioxidant activity of a standardized polyphenol mixture extracted from brown propolis. Int. J. Mol. Sci. 2019, 20, 1250. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Rojczyk, E.; Klama-Baryła, A.; Łabuś, W.; Wilemska-Kucharzewska, K.; Kucharzewski, M. Historical and modern research on propolis and its application in wound healing and other fields of medicine and contributions by Polish studies. J. Ethnopharmacol. 2020, 262, 113159. [Google Scholar] [CrossRef]
- Da Silva Barboza, A.; Aitken-Saavedra, J.P.; Ferreira, M.L.; Fábio Aranha, A.M.; Lund, R.G. Are propolis extracts potential pharmacological agents in human oral health? A scoping review and technology prospecting. J. Ethnopharmacol. 2021, 271, 113846. [Google Scholar] [CrossRef]
- Razali, M.T.A.; Zainal, Z.A.; Maulidiani, M.; Shaari, K.; Zamri, Z.; Idrus, M.Z.M.; Khatib, A.; Abas, F.; Ling, Y.S.; Rui, L.L.; et al. Classification of raw stingless bee honeys by bee species origins using the NMR- and LC-MS-based metabolomics ap-proach. Molecules 2018, 23, 2160. [Google Scholar] [CrossRef] [Green Version]
- Ismail, N.F.; Omar, S.M.; Zulkifli, M.F.; Radzi, M.N.F.; Ismail, N.; Jusoh, A.Z.; Roowi, S.; Yew, W.M.; Rudiyanto, R.; Ismail, W.I. Classification of stingless bee honey based on species, dehumidification process and geographical origins using physico-chemical and ATR-FTIR chemometric approach. J. Food Compos. Anal. 2021, 104, 104126. [Google Scholar] [CrossRef]
- Biluca, F.C.; da Silva, B.; Caon, T.; Bramorski-Mohr, E.T.; Vieira, G.N.; Gonzaga, L.V.; Vitali, L.; Micke, G.; Fett, R.; Monguilhott Dalmarco, E.; et al. Investigation of phenolic compounds, antioxidant, and anti-inflammatory activities in stingless bee honey (Meliponinae). Food Res. Int. 2020, 129, 108756. [Google Scholar] [CrossRef] [PubMed]
- Maulidiani, M.; Mediani, A.; Abas, F.; Park, Y.S.; Park, Y.-K.; Kim, Y.M.; Gorinstein, S. 1H NMR and antioxidant profiles of polar and non-polar extracts of persimmon (Diospyros kaki L.)—Metabolomics study based on cultivars and origins. Talanta 2018, 184, 277–286. [Google Scholar] [CrossRef] [PubMed]
- Gulcin, İ.; Alwasel, S.H. Metal ions, metal chelators and metal chelating assay as antioxidant method. Processes 2022, 10, 132. [Google Scholar] [CrossRef]
- NORMA Oficial Mexicana NOM-253-SSA1-2012, Para la Disposición de Sangre Humana y Sus Componentes Con Fines Terapéu-Ticos. Available online: https://www.gob.mx/cnts/documentos/norma-oficial-mexicana-nom-253-ssa1-2012-para-la-disposicion-de-sangre-humana-y-sus-componentes-con-fines-terapeuticos (accessed on 20 March 2023).
- Yesmin, S.; Paul, A.; Naz, T.; Rahman, A.B.M.A.; Akhter, S.F.; Wahed, M.I.I.; Siddiqui, S.A. Membrane stabilization as a mechanism of the anti-inflammatory activity of ethanolic root extract of Choi (Piper chaba). Clin. Phytoscience 2020, 6, 1–10. [Google Scholar] [CrossRef]
- Shahinozzaman, M.; Taira, N.; Ishii, T.; Halim, M.A.; Hossain, M.A.; Tawata, S. Anti-Inflammatory, anti-diabetic, and an-ti-alzheimer’s effects of prenylated flavonoids from Okinawa propolis: An investigation by experimental and computational studies. Molecules 2018, 27, 2479. [Google Scholar] [CrossRef] [Green Version]
- Singh, M.; Patra, S.; Singh, R.K. Common techniques and methods for screening of natural products for developing of anti-cancer drugs. In Evolutionary Diversity as a Source for Anticancer Molecule; Srivastava, A.K., Kannaujiya, V.K., Singh, R.K., Singh, D., Eds.; Academic Press: Cambridge, MA, USA, 2021; pp. 323–353. [Google Scholar]
- Vargas Sánchez, R.D.; Martínez Benavidez, E.; Hernández, J.; Torrescano Urrutia, G.R.; Sánchez Escalante, A. Effect of physico-chemical properties and phenolic compounds of bifloral propolis on antioxidant and antimicrobial capacity. Nova Sci. 2020, 12, 1–22. [Google Scholar]
- Srinivas, S.; Gujjari, A.K.; Kenganora, M.; Rudraswamy, S.; Ravi, M.B.; Manjula, S. Analysis of antimicrobial activity of Karnataka propolis against oral pathogens—An in vitro study. J. Oral Maxillofac. Pathol. 2021, 25, 449–456. [Google Scholar] [PubMed]
- Nishio, E.; Ribeiro, J.; Oliveira, A. Antibacterial synergic effect of honey from two stingless bees: Scaptotrigona bipunctata Lepeletier, 1836, and S. postica Latreille, 1807. Sci. Rep. 2016, 6, 21641. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Dos Santos, L.; Hochheim, S.; Boeder, A.M.; Kroger, A.; Tomazzoli, M.-M.; Dal Pai Neto, R.; Maraschin, M.; Guedes, A.; De Cordova, C.M.M. Chemical characterization, antioxidant, cytotoxic and antibacterial activity of propolis extracts and isolated compounds from the Brazilian stingless bees Melipona quadrifasciata and Tetragonisca angustula. J. Apic. Res. 2017, 56, 543–558. [Google Scholar] [CrossRef]
- Torres, A.R.; Sandjo, L.P.; Friedemann, M.T.; Tomazzoli, M.M.; Maraschin, M.; Mello, C.F.; Santos, A. Chemical characteriza-tion, antioxidant, and antimicrobial activity of propolis obtained from Melipona quadrifasciata and Tetragonisca angustula stingless bees. Braz. J. Med. Biol. Res. 2018, 51, e7118. [Google Scholar] [CrossRef] [PubMed]
- Kek, S.P.; Chin, N.L.; Yusof, Y.A.; Tan, S.W.; Chua, L.S. Classification of entomological origin of honey based on its physi-cochemical and antioxidant properties. Int. J. Food Prop. 2017, 20, S2723–S2738. [Google Scholar] [CrossRef]
- Pérez-Sarabia, J.E.; Duno de Stefano, R.; Carnevali Fernández-Concha, G.; Ramírez Morillo, I.; Méndez-Jiménez, N.; Zamo-ra-Crecencio, P. El conocimiento florístico de la Península de Yucatán, México. Polibotánica 2017, 44, 39–49. [Google Scholar]
- Georgieva, K.; Popova, M.; Dimitrova, L.; Trusheva, B.; Thanh, L.N.; Phuong, D.T.L. Phytochemical analysis of Vietnamese propolis produced by the stingless bee Lisotrigona cacciae. PLoS ONE 2019, 14, e0216074. [Google Scholar] [CrossRef] [Green Version]
- Abdullah, N.A.; Zullkiflee, N.; Zaini, S.N.Z.; Taha, H.; Hashim, F.; Usman, A. Phytochemicals, mineral contents, antioxidants, and antimicrobial activities of propolis produced by Brunei stingless bees Geniotrigona thoracica, Heterotrigona itama, and Tetrigona binghami. Saudi J. Biol. Sci. 2020, 27, 2902–2911. [Google Scholar] [CrossRef]
- Surek, M.; Cobre, A.F.; Millan-Fachi, M.; Santos, T.G.; Pontarolo, R.; Rabello-Crisma, A.; Bettega-Felipe, K.; Maurício de Souza, W. Propolis authentication of stingless bees by mid-infrared spectroscopy and chemometric analysis. LWT 2022, 161, 113370. [Google Scholar] [CrossRef]
- Syed Salleh, S.N.A.; Mohd Hanapiah, N.A.; Ahmad, H.; Wan Johari, W.L.; Osman, N.H.; Mamat, M.R. Determination of total phenolics, flavonoids, and antioxidant activity and GC-MS analysis of Malaysian stingless bee propolis water extracts. Scientifica 2021, 2021, 3789351. [Google Scholar] [CrossRef] [PubMed]
- Özkök, A.; Keskin, M.; Tanuğur Samancı, A.E.; Önder, E.Y.; Takma, C. Determination of antioxidant activity and phenolic compounds for basic standardization of Turkish propolis. Appl. Biol. Chem. 2021, 64, 37. [Google Scholar] [CrossRef]
- Hochheim, S.; Guedes, A.; Faccin-Galhardi, L.; Rechenchoski, D.Z.; Nozawa, C.; Linhares, R.L.; Da Silva Filho, H.H.; Rau, M.; Siebert, D.A.; Micke, G.; et al. Determination of phenolic profile by HPLC–ESI-MS/MS, antioxidant ac-tivity, in vitro cytotoxicity, and anti-herpetic activity of propolis from the Brazilian native bee Melipona quadrifasciata. Rev. Bras. De Farmacogn. 2019, 29, 339–350. [Google Scholar] [CrossRef]
- Cardona, Y.; Torres, A.; Hoffmann, W. Colombian stingless bee honeys characterized by multivariate analysis of physico-chemical properties. Apidologie 2019, 50, 881–889. [Google Scholar] [CrossRef]
- Osés, S.M.; Marcos, P.; Azofra, P.; de Pablo, A.; Fernández-Muíño, M.A.; Sancho, M.T. Phenolic profile, antioxidant capacities and enzymatic inhibitory activities of propolis from different geographical areas needs for analytical harmonization. Antioxidants 2020, 9, 75. [Google Scholar] [CrossRef] [Green Version]
- Kurek-Górecka, A.; Keskin, Ş.; Bobis, O.; Felitti, R.; Górecki, M.; Otręba, M.; Stojko, J.; Olczyk, P.; Kolayli, S.; Rzepecka-Stojko, A. Comparison of the antioxidant activity of propolis samples from different geographical regions. Plants 2022, 29, 1203. [Google Scholar] [CrossRef]
- Pahlavani, N.; Malekahmadi, M.; Firouzi, S. Molecular and cellular mechanisms of the effects of Propolis in inflammation, oxidative stress, and glycemic control in chronic diseases. Nutr. Metab. 2020, 17, 65. [Google Scholar] [CrossRef]
- Arung, E.T.; Wijaya Kusuma, S.I.; Paramita, S.; Amen, Y.; Kim, Y.-U.; Naibaho, N.M.; Ramadhan, R.; Ariyanta, H.A.; Fatriasari, W.; Shimizu, K. Antioxidant, anti-inflammatory and anti-acne activities of stingless bee (Tetragonula biroi) propolis. Fitoterapia 2023, 164, 105375. [Google Scholar] [CrossRef]
- Tsuchiya, Y.; Sakai, H.; Hirata, A.; Yanai, T. Brazilian green propolis suppresses acetaminophen-induced hepatocellular necrosis by modulating inflammation-related factors in rats. J. Toxicol. Pathol. 2018, 31, 275–282. [Google Scholar] [CrossRef] [Green Version]
State | Locations | Symbol | Geographical Coordinates |
---|---|---|---|
Yucatan | Espita | EY | 21°00′46″ N, 88°18′17″ W |
Yucatan | Mama | MY | 20°28′38″ N, 89°21′54″ W |
Campeche | Centaruros del Norte | CNC | 18°12′16″ N, 91°32′9″ W |
Campeche | Ich-Ek | IKC | 19°44′0″ N, 89°58′1″ W |
Campeche | Zoh-Laguna | ZLC | 18°35′14″ N, 89°25′1″ W |
Quintana Roo | Bacalar | BQR | 18°40′42″ N, 88°23′33″ W |
Quintana Roo | Felipe Carrillo Puerto | FCPQR | 19°34′43″ N, 88°02′43″ W |
Quintana Roo | Tihosuco | TQR | 20°11′45″ N, 88°22′25″ W |
Tabasco | Reforma | RT | 17°52′00″ N, 93°14′00″ W |
Tabasco | San Marcos | SMT | 18°02′25″ N, 93°00′57″ W |
Veracruz | Ejido Nicolas Bravo | NVV | 18°40′24″ N, 97°24′54″ W |
Oaxaca | San Juan Bautista | SJBO | 16°30′35″ N, 90°20′50″ W |
Sample | TPC | FC | DPPH | ABTS | MCA | FRAP | CMS | H | IPTD | GP | GN |
---|---|---|---|---|---|---|---|---|---|---|---|
MY | 51.52 | 9.57 | 16.03 | 5.54 | 70.81 | 47.23 | 66.18 | 33.82 | 12.06 | ND | ND |
MY | 56.15 | 8.18 | 20.51 | 9.12 | 74.86 | 57.34 | 79.52 | 20.48 | 11.57 | ND | ND |
MY | 49.54 | 6.51 | 24.22 | 12.32 | 72.29 | 61.22 | 74.15 | 25.85 | 8.69 | ND | ND |
EY | 196.03 | 9.78 | 92.91 | 44.88 | 47.38 | 84.93 | 71.70 | 28.30 | 8.87 | 0.39 | 0.39 |
EY | 226.14 | 12.76 | 93.63 | 49.11 | 47.38 | 74.01 | 75.30 | 24.70 | 10.51 | 0.09 | 1.45 |
EY | 207.11 | 8.04 | 95.94 | 41.14 | 45.92 | 76.02 | 78.33 | 21.67 | 11.47 | ND | ND |
EY | 208.88 | 13.60 | 90.19 | 34.94 | 59.09 | 76.78 | 80.04 | 19.96 | 11.45 | ND | ND |
TQR | 20.95 | 48.54 | 8.01 | 8.35 | 69.29 | 19.85 | 82.90 | 17.10 | 11.33 | ND | ND |
TQR | 24.74 | 46.68 | 13.14 | 3.12 | 76.74 | 27.95 | 79.16 | 20.84 | 10.94 | ND | ND |
TQR | 23.20 | 39.39 | 14.74 | 3.64 | 64.23 | 18.23 | 83.70 | 16.30 | 11.30 | ND | ND |
BQR | 18.65 | 39.26 | 13.11 | 3.73 | 87.22 | 21.62 | 53.17 | 46.83 | 11.72 | ND | ND |
BQR | 19.83 | 45.62 | 11.29 | 5.22 | 79.15 | 21.36 | 55.12 | 44.88 | 12.15 | ND | ND |
BQR | 24.74 | 50.38 | 19.59 | 2.90 | 76.79 | 37.88 | 56.32 | 43.68 | 12.57 | ND | ND |
FCPQR | 39.60 | 47.55 | 22.97 | 5.22 | 85.95 | 55.50 | 53.62 | 46.38 | 10.00 | 12.49 | 12.49 |
FCPQR | 36.82 | 59.85 | 13.21 | 4.20 | 83.91 | 41.99 | 60.52 | 39.48 | 11.63 | 6.25 | 3.12 |
FCPQR | 45.67 | 48.59 | 15.24 | 3.46 | 85.45 | 48.94 | 58.53 | 41.47 | 10.93 | ND | ND |
IKC | 37.31 | 12.37 | 13.07 | 20.21 | 84.42 | 57.39 | 70.50 | 29.50 | 12.00 | ND | ND |
IKC | 49.20 | 17.53 | 21.33 | 17.51 | 78.88 | 59.16 | 70.32 | 29.68 | 12.56 | ND | ND |
IKC | 39.39 | 15.91 | 10.36 | 27.88 | 90.69 | 55.02 | 65.70 | 34.30 | 10.86 | ND | ND |
CNC | 38.27 | 16.71 | 13.14 | 3.22 | 75.79 | 27.62 | 69.13 | 30.87 | 11.69 | ND | 6.25 |
CNC | 35.08 | 18.44 | 13.18 | 12.46 | 63.21 | 33.90 | 71.51 | 28.49 | 12.54 | ND | 6.26 |
CNC | 42.65 | 19.02 | 13.75 | 5.92 | 60.33 | 41.50 | 67.12 | 32.88 | 12.86 | ND | ND |
ZLC | 61.94 | 10.70 | 26.71 | 17.79 | 79.19 | 72.35 | 54.95 | 45.05 | 14.45 | ND | ND |
ZLC | 56.26 | 8.77 | 17.49 | 8.10 | 66.02 | 69.60 | 81.78 | 18.22 | 13.27 | ND | ND |
ZLC | 62.56 | 19.08 | 22.34 | 12.95 | 83.03 | 62.42 | 82.71 | 17.29 | 14.66 | 6.25 | 6.23 |
RT | 31.11 | 32.05 | 34.72 | 1.69 | 77.11 | 75.38 | 80.70 | 19.30 | 13.48 | ND | ND |
RT | 32.06 | 29.46 | 22.36 | 2.86 | 82.07 | 76.27 | 74.88 | 25.12 | 12.32 | ND | ND |
RT | 38.12 | 17.89 | 29.52 | 5.60 | 93.15 | 89.02 | 76.77 | 23.23 | 10.92 | ND | ND |
SMT | 89.07 | 17.75 | 21.23 | 7.39 | 85.91 | 71.34 | 39.62 | 60.38 | 12.79 | ND | ND |
SMT | 88.37 | 24.27 | 31.41 | 8.98 | 81.65 | 65.31 | 42.66 | 57.34 | 13.36 | ND | ND |
SMT | 94.48 | 18.89 | 23.32 | 7.44 | 84.50 | 80.30 | 41.94 | 58.06 | 12.54 | ND | ND |
NVV | 88.12 | 41.76 | 24.68 | 1.14 | 86.25 | 42.24 | 33.48 | 66.52 | 12.80 | ND | ND |
NVV | 89.75 | 38.90 | 23.40 | 5.40 | 79.64 | 44.93 | 43.58 | 56.42 | 13.39 | ND | ND |
NVV | 87.62 | 40.76 | 21.87 | 2.95 | 90.18 | 48.25 | 47.67 | 52.33 | 12.35 | ND | ND |
SJBO | 57.46 | 32.72 | 70.26 | 13.25 | 88.72 | 70.19 | 42.49 | 57.51 | 8.91 | ND | ND |
Properties | TPC | FC | DPPH | ABTS | MCA | FRAP | CMS | IPTD | H | GP | GN |
---|---|---|---|---|---|---|---|---|---|---|---|
TPC | 1 | ||||||||||
FC | −0.426 | 1 | |||||||||
DPPH | 0.892 | −0.359 | 1 | ||||||||
ABTS | 0.818 | −0.549 | 0.810 | 1 | |||||||
MCA | −0.622 | 0.397 | −0.605 | −0.649 | 1 | ||||||
FRAP | 0.546 | −0.578 | 0.589 | 0.480 | −0.094 | 1 | |||||
CMS | 0.037 | −0.291 | 0.001 | 0.236 | −0.497 | −0.018 | 1 | ||||
IPTD | −0.180 | −0.013 | −0.373 | −0.330 | 0.183 | −0.052 | 0.030 | 1 | |||
H | −0.037 | 0.291 | −0.001 | −0.236 | 0.497 | 0.018 | −1.000 | −0.030 | 1 | ||
GP | −0.114 | 0.264 | −0.099 | −0.130 | 0.093 | 0.022 | −0.017 | −0.142 | 0.017 | 1 | |
GN | −0.114 | 0.128 | −0.106 | −0.076 | 0.054 | −0.129 | 0.055 | −0.049 | −0.055 | 0.647 | 1 |
Disclaimer/Publisher’s Note: The statements, opinions and data contained in all publications are solely those of the individual author(s) and contributor(s) and not of MDPI and/or the editor(s). MDPI and/or the editor(s) disclaim responsibility for any injury to people or property resulting from any ideas, methods, instructions or products referred to in the content. |
© 2023 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
Share and Cite
Ruiz Ruiz, J.C.; Pacheco López, N.A.; Rejón Méndez, E.G.; Samos López, F.A.; Medina Medina, L.; Quezada-Euán, J.J.G. Phenolic Content and Bioactivity as Geographical Classifiers of Propolis from Stingless Bees in Southeastern Mexico. Foods 2023, 12, 1434. https://doi.org/10.3390/foods12071434
Ruiz Ruiz JC, Pacheco López NA, Rejón Méndez EG, Samos López FA, Medina Medina L, Quezada-Euán JJG. Phenolic Content and Bioactivity as Geographical Classifiers of Propolis from Stingless Bees in Southeastern Mexico. Foods. 2023; 12(7):1434. https://doi.org/10.3390/foods12071434
Chicago/Turabian StyleRuiz Ruiz, Jorge Carlos, Neith Aracely Pacheco López, Estephania Guadalupe Rejón Méndez, Felipe Antonio Samos López, Luis Medina Medina, and José Javier G. Quezada-Euán. 2023. "Phenolic Content and Bioactivity as Geographical Classifiers of Propolis from Stingless Bees in Southeastern Mexico" Foods 12, no. 7: 1434. https://doi.org/10.3390/foods12071434
APA StyleRuiz Ruiz, J. C., Pacheco López, N. A., Rejón Méndez, E. G., Samos López, F. A., Medina Medina, L., & Quezada-Euán, J. J. G. (2023). Phenolic Content and Bioactivity as Geographical Classifiers of Propolis from Stingless Bees in Southeastern Mexico. Foods, 12(7), 1434. https://doi.org/10.3390/foods12071434