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Phenolic Acid Patterns in Different Plant Species of Families Asteraceae and Lamiaceae: Possible Phylogenetic Relationships and Potential Molecular Markers. J CHEM-NY 2022. [DOI: 10.1155/2022/9632979] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 11/17/2022] Open
Abstract
Nowadays, investigations of some specific secondary metabolites estimated near 10,000 various compounds of phenolic nature in different plant species. The interest in natural compounds is not only due to their antioxidant potential, but also to their economic impact, as most of them may be extracted from underexploited plant species. The presented research work presents an extended analysis of the most important phenolic acids of the selected known and underexploited plant species from the families Asteraceae and Rosaceae with the development of phylogenic tree analysis according to the nonparametric rate smoothing (NPRS) methods. HPLC-UV analysis revealed the original spectrum of phenolic acids in selected known and underexploited plant species of the families Rosaceae and Asteraceae. The analysis of phenolic acid’s contribution from their total amount in the methanolic extract in Asteraceae found the high percentage of syringic acid in leaves varied between 64.13% and 95.13%. The detected high contribution of syringic acid among estimated phenolic acids in Asteraceae leaves suggests its possible prevalence in the representatives of the family Asteraceae. The content of draconic acid in the leaves of most representatives of the family Rosaceae which represented more than 30% of total phenolic acid content. The high presence of such phenolic acids may relate to the antioxidant activity of the studied herbal extracts.
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Nataraj N, Hussain M, Ibrahim M, Hausmann AE, Rao S, Kaur S, Khazir J, Mir BA, Olsson SB. Effect of Altitude on Volatile Organic and Phenolic Compounds of Artemisia brevifolia Wall ex Dc. From the Western Himalayas. Front Ecol Evol 2022. [DOI: 10.3389/fevo.2022.864728] [Citation(s) in RCA: 1] [Impact Index Per Article: 0.3] [Reference Citation Analysis] [Abstract] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 11/13/2022] Open
Abstract
Adaptation to changing environmental conditions is a driver of plant diversification. Elevational gradients offer a unique opportunity for investigating adaptation to a range of climatic conditions. The use of specialized metabolites as volatile and phenolic compounds is a major adaptation in plants, affecting their reproductive success and survival by attracting pollinators and protecting themselves from herbivores and other stressors. The wormseed Artemisia brevifolia can be found across multiple elevations in the Western Himalayas, a region that is considered a biodiversity hotspot and is highly impacted by climate change. This study aims at understanding the volatile and phenolic compounds produced by A. brevifolia in the high elevation cold deserts of the Western Himalayas with the view to understanding the survival strategies employed by plants under harsh conditions. Across four sampling sites with different elevations, polydimethylsiloxane (PDMS) sampling and subsequent GCMS analyses showed that the total number of volatile compounds in the plant headspace increased with elevation and that this trend was largely driven by an increase in compounds with low volatility, which might improve the plant’s resilience to abiotic stress. HPLC analyses showed no effect of elevation on the total number of phenolic compounds detected in both young and mature leaves. However, the concentration of the majority of phenolic compounds decreased with elevation. As the production of phenolic defense compounds is a costly trait, plants at higher elevations might face a trade-off between energy expenditure and protecting themselves from herbivores. This study can therefore help us understand how plants adjust secondary metabolite production to cope with harsh environments and reveal the climate adaptability of such species in highly threatened regions of our planet such as the Himalayas.
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Rodrigues FFG, Boligon AA, Menezes IRA, Galvão-Rodrigues FF, Salazas GJT, Nonato CFA, Braga NTTM, Correia FMA, Caldas GFR, Coutinho HDM, Siyadatpanah A, Kim B, Costa JGM, Barros ARC. HPLC/DAD, Antibacterial and Antioxidant Activities of Plectranthus Species (Lamiaceae) Combined with the Chemometric Calculations. Molecules 2021; 26:molecules26247665. [PMID: 34946747 PMCID: PMC8703593 DOI: 10.3390/molecules26247665] [Citation(s) in RCA: 4] [Impact Index Per Article: 1.0] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 11/30/2021] [Revised: 12/13/2021] [Accepted: 12/15/2021] [Indexed: 11/16/2022] Open
Abstract
The increase in antibiotic resistance and the emergence of new bacterial infections have intensified the research for natural products from plants with associated therapy. This study aimed to verify the antibacterial and antioxidant activity of crude extracts of the genus Plectranthus species, being the first report on the modulation of aminoglycosides antibiotic activity by Plectranthus amboinicus extracts. The chemical composition was obtained by chemical prospecting and High-Performance Liquid Chromatography with diode arrangement detector (HPLC/DAD). The antibacterial activities of the extracts alone or in association with aminoglycosides were analyzed using the microdilution test. The antioxidant activity was evaluated by 2,2-diphenyl-1-picrylhydrazyl (DPPH) free radical scavenging. The phytochemical prospection allowed the flavonoids, saponins, tannins and triterpenoids to be identified. Quercetin, rutin, gallic acid, chlorogenic acid, caffeic acid, catechin, kaempferol, glycosylated kaempferol, quercitrin, and isoquercitrin were identified and quantified. The principal component analysis (PCA) observed the influence of flavonoids and phenolic acids from Plectranthus species on studied activities. Phytochemical tests with the extracts indicated, especially, the presence of flavonoids, confirmed by quantitative analysis by HPLC. The results revealed antibacterial activities, and synergistic effects combined with aminoglycosides, as well as antioxidant potential, especially for P. ornatus species, with IC50 of 32.21 µg/mL. Multivariate analyzes show that the inclusion of data from the antioxidant and antibacterial activity suggests that the antioxidant effect of these species presents a significant contribution to the synergistic effect of phytoconstituents, especially based on the flavonoid contents. The results of this study suggest the antibacterial activity of Plectranthus extracts, as well as their potential in modifying the resistance of the analyzed aminoglycosides.
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Affiliation(s)
- Fabíola F. G. Rodrigues
- Northeast Biotechnology Network, Postgraduate Program in Biotechnology, State University of Ceará, Fortaleza 60740-000, Brazil; (F.F.G.R.); (I.R.A.M.); (H.D.M.C.); (A.R.C.B.)
- Health Unit, University Center Dr. Leão Sampaio, Juazeiro do Norte 63040-000, Brazil; (N.T.T.M.B.); (F.M.A.C.); (G.F.R.C.)
- Department of Biological Chemistry, Regional University of Cariri, Crato 63105-000, Brazil; (F.F.G.-R.); (G.J.T.S.); (C.F.A.N.)
| | - Aline A. Boligon
- Department of Industrial Pharmacy, Federal University of Santa Maria, Santa Maria 97105-900, Brazil;
| | - Irwin R. A. Menezes
- Northeast Biotechnology Network, Postgraduate Program in Biotechnology, State University of Ceará, Fortaleza 60740-000, Brazil; (F.F.G.R.); (I.R.A.M.); (H.D.M.C.); (A.R.C.B.)
- Department of Biological Chemistry, Regional University of Cariri, Crato 63105-000, Brazil; (F.F.G.-R.); (G.J.T.S.); (C.F.A.N.)
| | - Fábio F. Galvão-Rodrigues
- Department of Biological Chemistry, Regional University of Cariri, Crato 63105-000, Brazil; (F.F.G.-R.); (G.J.T.S.); (C.F.A.N.)
| | - Gerson J. T. Salazas
- Department of Biological Chemistry, Regional University of Cariri, Crato 63105-000, Brazil; (F.F.G.-R.); (G.J.T.S.); (C.F.A.N.)
| | - Carla F. A. Nonato
- Department of Biological Chemistry, Regional University of Cariri, Crato 63105-000, Brazil; (F.F.G.-R.); (G.J.T.S.); (C.F.A.N.)
| | - Nara T. T. M. Braga
- Health Unit, University Center Dr. Leão Sampaio, Juazeiro do Norte 63040-000, Brazil; (N.T.T.M.B.); (F.M.A.C.); (G.F.R.C.)
| | - Fabrina M. A. Correia
- Health Unit, University Center Dr. Leão Sampaio, Juazeiro do Norte 63040-000, Brazil; (N.T.T.M.B.); (F.M.A.C.); (G.F.R.C.)
| | - Germana F. R. Caldas
- Health Unit, University Center Dr. Leão Sampaio, Juazeiro do Norte 63040-000, Brazil; (N.T.T.M.B.); (F.M.A.C.); (G.F.R.C.)
| | - Henrique D. M. Coutinho
- Northeast Biotechnology Network, Postgraduate Program in Biotechnology, State University of Ceará, Fortaleza 60740-000, Brazil; (F.F.G.R.); (I.R.A.M.); (H.D.M.C.); (A.R.C.B.)
- Department of Biological Chemistry, Regional University of Cariri, Crato 63105-000, Brazil; (F.F.G.-R.); (G.J.T.S.); (C.F.A.N.)
| | - Abolghasem Siyadatpanah
- Ferdows School of Paramedical and Health, Birjand University of Medical Sciences, Birjand 9717853577, Iran
- Correspondence: (A.S.); (B.K.); (J.G.M.C.)
| | - Bonglee Kim
- Department of Patology, College of Korean Medicine, Kyung Hee University, Seoul 02447, Korea
- Korean Medicine-Based Drug Repositioning Cancer Research Center, College of Korean Medicine, Kyung Hee University, Seoul 02447, Korea
- Correspondence: (A.S.); (B.K.); (J.G.M.C.)
| | - José G. M. Costa
- Northeast Biotechnology Network, Postgraduate Program in Biotechnology, State University of Ceará, Fortaleza 60740-000, Brazil; (F.F.G.R.); (I.R.A.M.); (H.D.M.C.); (A.R.C.B.)
- Department of Biological Chemistry, Regional University of Cariri, Crato 63105-000, Brazil; (F.F.G.-R.); (G.J.T.S.); (C.F.A.N.)
- Correspondence: (A.S.); (B.K.); (J.G.M.C.)
| | - Adriana R. C. Barros
- Northeast Biotechnology Network, Postgraduate Program in Biotechnology, State University of Ceará, Fortaleza 60740-000, Brazil; (F.F.G.R.); (I.R.A.M.); (H.D.M.C.); (A.R.C.B.)
- Experimental Biology Nucleus, University of Fortaleza, Fortaleza 60811-905, Brazil
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Karpova E, Davlatov SK, Chernonosov A. Phenolic compounds in taxonomy of Myricaria longifolia and Myricaria bracteata (Tamaricaceae). BIO WEB OF CONFERENCES 2021. [DOI: 10.1051/bioconf/20213800051] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 11/14/2022] Open
Abstract
For the first time, the phenolic profile of poorly studied Siberian species of the genus Myricaria Desv. Myricaria longifolia (Willd.) Ehrenb. was investigated by HPLC and LC-MS/MS in comparison with that of wide-ranging species M. bracteata Royle. 65 quantitative parameters of the phenolic profiles were processed by ANOVA and principal component analysis (PCA). The results suggest that the distinction between the species is mainly determined by the variance in total flavonoids and free quercetin in the leaves. Free gallic and ferulic acids, hyperoside and total phenolics in aqueous ethanol extract, as well as kaempferol and rhamnazin in the hydrolyzed extract contributed to the difference between the species. The significant differences justify the positions of these species in two individual series of the genus Myricaria established before. The statistical analysis of the biochemical data allowed us to identify both the characters that determined the distinction between species, and indicators of heterogeneity of the species that varies abnormally (the concentrations of isorhamnetin and rhamnazin, and their ratio).
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