Flavonoid Composition and Molecular Basis of the Potential Sexual-Enhancing Properties of a Turnera diffusa Extract (Liboost®)
Abstract
1. Introduction
2. Results and Discussion
2.1. Phytochemical Characterization of Turnera diffusa Extract
2.2. In Vitro Evaluation of Biological Activity

3. Materials and Methods
3.1. Reagents and Standards
3.2. Cell Cultures
3.3. Samples and Sample Preparation
3.4. HPLC-DAD-HRMS Analysis
3.5. Cell Proliferation/Citotoxicity Assays
3.6. Nitric Oxide Production Assay
3.7. Aromatase Inhibiton Assay
3.8. Phosphodiesterease 5 (PDE-5) Inhibition Assay
3.9. Controls and Experimental Design
3.10. Statistical Analysis
4. Conclusions
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
| HPLC-DAD-HRMS | High-Performance Liquid Chromatography—Diode Array Detector—High-Resolution Mass Spectrometry |
| PDE5 | Phosphodiesterase-5 |
| NO | Nitric Oxide |
| cGMP | cyclic Guanosine Monophosphate |
| nNOS | Nitric Oxide Synthase |
| eNOS | Endothelial Nitric Oxide Synthase |
| GC | Guanylate Cyclase |
| USD | United States Dollar |
| CAGR | Compound Annual Growth Rate |
| US | Unite States |
| DAD | Diode Array Detector |
| HPLC-MS | High-Performance Liquid Chromatography—Mass Spectrometry |
| MW | Molecular Weight |
| HepG2 | Immortalized cell line derived from liver tissue of a patient with hepatocellular carcinoma |
| NHDF | Normal Human Dermal Fibroblasts |
| HUVEC | Human Umbilical Vein Endothelial Cells |
| ANOVA | Analysis of Variance |
| LC–MS | Liquid Chromatography—Mass Spectrometry |
| WST-1 | Water-Soluble Tetrazolium salt |
| FBS | Fetal Bovine Serum |
| EMEM | Eagle’s Minimum Essential Medium |
| DMEM | Dulbecco’s Modified Eagle Medium |
| DMSO | Dimethyl Sulfoxide |
| CO2 | Carbon Dioxide |
| SEM | Standard Error of the Mean |
| HSD | Tukey’s Honestly Significant Difference |
References
- McCabe, M.P.; Sharlip, I.D.; Atalla, E.; Balon, R.; Fisher, A.D.; Laumann, E.; Lee, S.W.; Lewis, R.; Segraves, R.T. Definitions of Sexual Dysfunctions in Women and Men: A Consensus Statement from the Fourth International Consultation on Sexual Medicine 2015. J. Sex. Med. 2016, 13, 135–143. [Google Scholar] [CrossRef]
- Derogatis, L.R.; Burnett, A.L. The Epidemiology of Sexual Dysfunctions. J. Sex. Med. 2008, 5, 289–300. [Google Scholar] [CrossRef]
- Rosen, R.; Brown, C.; Heiman, J.; Leiblum, S.; Meston, C.; Shabsigh, R.; Ferguson, D.; D’Agostino, R. The Female Sexual Function Index (FSFI): A Multidimensional Self-Report Instrument for the Assessment of Female Sexual Function. J. Sex Marital Ther. 2000, 26, 191–208. [Google Scholar] [CrossRef]
- Lewis, R.W.; Fugl-Meyer, K.S.; Corona, G.; Hayes, R.D.; Laumann, E.O.; Moreira, E.D.; Rellini, A.H.; Segraves, T. Definitions/Epidemiology/Risk Factors for Sexual Dysfunction. J. Sex. Med. 2010, 7, 1598–1607. [Google Scholar] [CrossRef]
- Burnett, A.L.; Lowenstein, C.J.; Bredt, D.S.; Chang, T.S.K.; Snyder, S.H. Nitric Oxide: A Physiologic Mediator of Penile Erection. Science 1979, 1992, 257. [Google Scholar] [CrossRef]
- Berman, J.R.; Berman, L.; Goldstein, I. Female Sexual Dysfunction: Incidence, Pathophysiology, Evaluation, and Treatment Options. Urology 1999, 54, 385–391. [Google Scholar] [CrossRef]
- Park, J.K.; Kim, J.U.; Lee, S.O.; Hwang, P.H.; Yi, H.K.; Kim, Y.G.; Cho, K.W. Nitric Oxide-Cyclic GMP Signaling Pathway in the Regulation of Rabbit Clitoral Cavernosum Tone. Exp. Biol. Med. 2002, 227, 1022–1030. [Google Scholar] [CrossRef] [PubMed]
- Musicki, B.; Liu, T.; Lagoda, G.A.; Bivalacqua, T.J.; Strong, T.D.; Burnett, A.L. Endothelial Nitric Oxide Synthase Regulation in Female Genital Tract Structures. In J. Sex. Med.; 2009; Volume 6, pp. 247–253. [Google Scholar]
- Reis, R.B.; Kohn, I.J.; Ikeguchi, E.F.; Laor, E.; Te, A.E.; Martins, A.C.P. Safety and Efficacy of Sildenafil in Postmenopausal Women with Sexual Dysfunction. Urology 1999, 53, 481–486. [Google Scholar] [CrossRef] [PubMed]
- Mayer, M.; Stief, C.G.; Truss, M.C.; Ückert, S. Phosphodiesterase Inhibitors in Female Sexual Dysfunction. World J. Urol. 2005, 23, 393–397. [Google Scholar] [CrossRef] [PubMed]
- Davis, S.R.; Wahlin-Jacobsen, S. Testosterone in Women-the Clinical Significance. Lancet Diabetes Endocrinol. 2015, 3, 980–992. [Google Scholar] [CrossRef]
- Mauras, N.; Ross, J.L.; Gagliardi, P.; Yu, Y.M.; Hossain, J.; Permuy, J.; Damaso, L.; Merinbaum, D.; Singh, R.J.; Gaete, X.; et al. Randomized Trial of Aromatase Inhibitors, Growth Hormone, or Combination in Pubertal Boys with Idiopathic, Short Stature. J. Clin. Endocrinol. Metab. 2016, 101, 4984–4993. [Google Scholar] [CrossRef]
- Carson, C.C.; Lue, T.F. Phosphodiesterase Type 5 Inhibitors for Erectile Dysfunction. BJU Int. 2005, 96, 257–280. [Google Scholar] [CrossRef]
- Ho, C.Y.; Hsu, C.H.; Chien, T.J. Herbal Dietary Supplements for Erectile Dysfunction: A Systematic Review and Meta-Analysis of Randomized-Controlled Trials. J. Tradit. Complement. Med. 2025, 16, 109. [Google Scholar] [CrossRef]
- Rowland, D.L.; Tai, W. A Review of Plant-Derived and Herbal Approaches to the Treatment of Sexual Dysfunctions. J. Sex Marital Ther. 2003, 29, 185–205. [Google Scholar] [CrossRef]
- Sexual Health Supplement Market Report. Available online: https://www.researchandmarkets.com/reports/5980514/sexual-health-supplement-market-report (accessed on 2 March 2026).
- Bhagavathula, A.S.; Elnour, A.A.; Shehab, A. Pharmacovigilance on Sexual Enhancing Herbal Supplements. Saudi Pharm. J. 2015, 24, 115. [Google Scholar] [CrossRef] [PubMed]
- Shamloul, R. Natural Aphrodisiacs. J. Sex. Med. 2010, 7, 39–49. [Google Scholar] [CrossRef] [PubMed]
- Petre, G.C.; Francini-Pesenti, F.; Vitagliano, A.; Grande, G.; Ferlin, A.; Garolla, A. Dietary Supplements for Erectile Dysfunction: Analysis of Marketed Products, Systematic Review, Meta-Analysis and Rational Use. Nutrients 2023, 15, 3677. [Google Scholar] [CrossRef] [PubMed]
- Ho, C.C.K.; Tan, H.M. Rise of Herbal and Traditional Medicine in Erectile Dysfunction Management. Curr. Urol. Rep. 2011, 12, 470–478. [Google Scholar] [CrossRef]
- Tucker, J.; Fischer, T.; Upjohn, L.; Mazzera, D.; Kumar, M. Unapproved Pharmaceutical Ingredients Included in Dietary Supplements Associated with US Food and Drug Administration Warnings. JAMA Netw. Open 2018, 1, e183337. [Google Scholar] [CrossRef]
- Lowry, T.P. Damiana. J. Psychoact. Drugs 1984, 16, 267–268. [Google Scholar] [CrossRef]
- Urbizu-González, A.L.; Castillo-Ruiz, O.; Martínez-Ávila, G.C.G.; Torres-Castillo, J.A. Natural variability of essential oil and antioxidants in the medicinal plant Turnera diffusa. Asian Pac. J. Trop. Med. 2017, 10, 121–125. [Google Scholar] [CrossRef]
- Kumar, S.; Taneja, R.; Sharma, A. Pharmacognostic standardization of Turnera aphrodisiaca Ward. J. Med. Food 2006, 9, 254–260. [Google Scholar] [CrossRef] [PubMed]
- Szewczyk, K.; Zidorn, C. Ethnobotany, Phytochemistry, and Bioactivity of the Genus Turnera (Passifloraceae) with a Focus on Damiana—Turnera diffusa. J. Ethnopharmacol. 2014, 152, 424–443. [Google Scholar] [CrossRef]
- Martinez-Avila, G.C.; Aguilar-Zarate, P.; Rojas, R. Currently applied extraction processes for secondary metabolites from Lippia turbinata and Turnera diffusa and future perspectives. Separations 2021, 8, 158. [Google Scholar] [CrossRef]
- Arletti, R.; Benelli, A.; Cavazzuti, E.; Scarpetta, G.; Bertolini, A. Stimulating Property of Turnera diffusa and Pfaffia paniculata Extracts on the Sexual Behavior of Male Rats. Psychopharmacology 1999, 143, 15–19. [Google Scholar] [CrossRef]
- Hnatyszyn, O.; Moscatelli, V.; Garcia, J.; Rondina, R.; Costa, M.; Arranz, C.; Balaszczuk, A.; Ferraro, G.; Coussio, J.D. Hnatyszyn Argentinian Plant Extracts with Relaxant Effect on the Smooth Muscle of the Corpus Cavernosum of Guinea Pig. Phytomedicine 2003, 10, 669–674. [Google Scholar] [CrossRef] [PubMed][Green Version]
- Estrada-Reyes, R.; Ortiz-López, P.; Gutiérrez-Ortíz, J.; Martínez-Mota, L. Turnera diffusa Wild (Turneraceae) Recovers Sexual Behavior in Sexually Exhausted Males. J. Ethnopharmacol. 2009, 123, 423–429. [Google Scholar] [CrossRef]
- Estrada-Reyes, R.; Carro-Juárez, M.; Martínez-Mota, L. Pro-Sexual Effects of Turnera Diffusa Wild (Turneraceae) in Male Rats Involves the Nitric Oxide Pathway. J. Ethnopharmacol. 2013, 146, 164–172. [Google Scholar] [CrossRef]
- Ito, T.Y.; Trant, A.S.; Polan, M.L. A Double-Blind Placebo-Controlled Study of Arginmax, a Nutritional Supplement for Enhancement of Female Sexual Function. J. Sex Marital Ther. 2001, 27, 541–549. [Google Scholar] [CrossRef]
- Palacios, S.; Soler, E.; Ramírez, M.; Lilue, M.; Khorsandi, D.; Losa, F. Effect of a Multi-Ingredient Based Food Supplement on Sexual Function in Women with Low Sexual Desire. BMC Womens Health 2019, 19, 58. [Google Scholar] [CrossRef]
- Concerto, C.; Rodolico, A.; Meo, V.; Chiappetta, D.; Bonelli, M.; Mineo, L.; Saitta, G.; Stuto, S.; Signorelli, M.S.; Petralia, A.; et al. A Systematic Review on the Effect of Nutraceuticals on Antidepressant-Induced Sexual Dysfunctions: From Basic Principles to Clinical Applications. Curr. Issues Mol. Biol. 2022, 44, 3335–3350. [Google Scholar] [CrossRef]
- Zhao, J.; Dasmahapatra, A.K.; Khan, S.I.; Khan, I.A. Anti-Aromatase Activity of the Constituents from Damiana (Turnera diffusa). J. Ethnopharmacol. 2008, 120, 387–393. [Google Scholar] [CrossRef]
- Chaurasiya, N.D.; Zhao, J.; Pandey, P.; Doerksen, R.J.; Muhammad, I.; Tekwani, B.L. Selective Inhibition of Human Monoamine Oxidase B by Acacetin 7-Methyl Ether Isolated from Turnera Diffusa (Damiana). Molecules 2019, 24, 810. [Google Scholar] [CrossRef] [PubMed]
- Le Bail, J.C.; Laroche, T.; Marre-Fournier, F.; Habrioux, G. Aromatase and 17b-Hydroxysteroid Dehydrogenase Inhibition by Flavonoid. Cancer Lett. 1998, 133, 101–106. [Google Scholar] [CrossRef]
- Zhao, J.; Pawar, R.S.; Ali, Z.; Khan, I.A. Phytochemical Investigation of Turnera siffusa. J. Nat. Prod. 2007, 70, 289–292. [Google Scholar] [CrossRef] [PubMed]
- Willer, J.; Jöhrer, K.; Greil, R.; Zidorn, C.; Çiçek, S.S. Cytotoxic Properties of Damiana (Turnera siffusa) Extracts and Constituents and A Validated Quantitative UHPLC-DAD Assay. Molecules 2019, 24, 855. [Google Scholar] [CrossRef]
- Bernardo, J.; Ferreres, F.; Gil-Izquierdo, Á.; Valentão, P.; Andrade, P.B. Medicinal Species as MTDLs: Turnera siffusa Willd. Ex Schult Inhibits CNS Enzymes and Delays Glutamate Excitotoxicity in SH-SY5Y Cells via Oxidative Damage. Food Chem. Toxicol. 2017, 106, 466–476. [Google Scholar] [CrossRef] [PubMed]
- Bezerra, A.G.; Negri, G.; Duarte-Almeida, J.M.; Smaili, S.S.; Carlini, E.A. Phytochemical Analysis of Hydroethanolic Extract of Turnera diffusa Willd and Evaluation of Its Effects on Astrocyte Cell Death. Einstein 2016, 14, 56–63. [Google Scholar] [CrossRef]
- Celestino, M.M.; Gomes, A.C.; Botelho, P.B.; Gambero, A.; Mesquita, L.M.; Vilegas, W.; Ribeiro, M.L.; Mota, J.F. South American Herbal Extracts Reduce Food Intake through Modulation of Gastrointestinal Hormones in Overweight and Obese Women. J. Funct. Foods 2017, 35, 555–563. [Google Scholar] [CrossRef]
- El-Ansari, M.A.; Nawwar, M.A.; Saleh, N.A.M. Stachysetin, a Diapigenin-7-Glucoside-p, p′-Dihydroxy-Truxinate from Stachys aegyptiaca. Phytochemistry 1995, 40, 1543–1548. [Google Scholar] [CrossRef]
- Saravanan, M.; Senthilkumar, P.; Kalimuthu, K.; Chinnadurai, V.; Vasantharaj, S.; Pugazhendhi, A. Phytochemical and Pharmacological Profiling of Turnera subulata Sm., a Vital Medicinal Herb. Ind. Crops Prod. 2018, 124, 822–833. [Google Scholar] [CrossRef]
- Fabre, N.; Rustan, I.; de Hoffmann, E.; Quetin-Leclercq, J. Determination of flavone, flavonol, and flavanone aglycones by negative ion liquid chromatography electrospray ion trap mass spectrometry. J. Am. Soc. Mass Spectrom. 2001, 12, 707–715. [Google Scholar] [CrossRef]
- Gates, P.J.; Lopes, N.P. Characterisation of flavonoid aglycones by negative ion chip-based nanospray tandem mass spectrometry. Int. J. Anal. Chem. 2012, 2012, 259217. [Google Scholar] [CrossRef]
- Arafa, M.G.; Ghalwash, D.; El-Kersh, D.M.; Elmazar, M.M. Propolis-based niosomes as oromuco-adhesive films: A randomized clinical trial of a therapeutic drug delivery platform for the treatment of oral recurrent aphthous ulcers. Sci. Rep. 2018, 8, 18056. [Google Scholar] [CrossRef]
- Pérez-Meseguer, J.; Garza-Juárez, A.; Salazar-Aranda, R.; Salazar-Cavazos, M.L.; De La, Y.C.; Rodríguez, T.; Rivas-Galindo, V.; Waksman, N.; Torres, D.E. Development and Validation of an HPLC-DAD Analytical Procedure for Quality Control of Damiana (Turnera diffusa), Using an Antioxidant Marker Isolated from the Plant. J. AOAC Int. 2010, 93, 1161–1168. [Google Scholar] [CrossRef]
- Wagner, H. Synergy research: Approaching a new generation of phytopharmaceuticals. Fitoterapia 2011, 82, 34–37. [Google Scholar] [CrossRef]
- Rybalkin, S.D.; Rybalkina, I.G.; Fei, R.; Hofmann, F.; Beavo, J.A. Regulation of CGMP-Specific Phosphodiesterase (PDE5) Phosphorylation in Smooth Muscle Cells. J. Biol. Chem. 2002, 277, 3310–3317. [Google Scholar] [CrossRef] [PubMed]
- Ko, W.C.; Shih, C.M.; Lai, Y.H.; Chen, J.H.; Huang, H.L. Inhibitory Effects of Flavonoids on Phosphodiesterase Isozymes from Guinea Pig and Their Structure-Activity Relationships. Biochem. Pharmacol. 2004, 68, 2087–2094. [Google Scholar] [CrossRef] [PubMed]
- Ongaro, A.; Zagotto, G.; Memo, M.; Gianoncelli, A.; Ribaudo, G. Natural Phosphodiesterase 5 (PDE5) Inhibitors: A Computational Approach. Nat. Prod. Res. 2021, 35, 1648–1653. [Google Scholar] [CrossRef] [PubMed]
- Yakubu, R.O.; Akanji, M.A. Bioactivity Guided Identification of Sexual Function Restorative Constituents of Carpolobia lutea G. Don Roots in Paroxetine-Induced Sexual Dysfunction Male Rats. J. Ethnopharmacol. 2025, 349, 119931. [Google Scholar] [CrossRef]
- Adefegha, S.A.; Oboh, G.; Fakunle, B.; Oyeleye, S.I.; Olasehinde, T.A. Quercetin, Rutin, and Their Combinations Modulate Penile Phosphodiesterase-5′, Arginase, Acetylcholinesterase, and Angiotensin-I-Converting Enzyme Activities: A Comparative Study. Comp. Clin. Path. 2018, 27, 773–780. [Google Scholar] [CrossRef]
- Estrada-Reyes, R.; Ferreyra-Cruz, O.A.; Jiménez-Rubio, G.; Hernández-Hernández, O.T.; Martínez-Mota, L. Prosexual Effect of Chrysactinia mexicana A. Gray (Asteraceae), False Damiana, in a Model of Male Sexual Behavior. Biomed Res. Int. 2016, 2016, 2987917. [Google Scholar] [CrossRef]
- Rowland, D.L.; McNabney, S.M.; Mulzon, K.R.; Trammell, S. Plant-Derived Supplements for Sexual Health and Problems, Part 2: Further Evidence for Specific Herbal Effects. Curr. Sex. Health Rep. 2019, 11, 144–155. [Google Scholar] [CrossRef]
- Simpson, E.R. Sources of Estrogen and Their Importance. J. Steroid Biochem. Mol. Biol. 2003, 86, 225–230. [Google Scholar] [CrossRef]
- Chen, C.C.; Ke, W.H.; Ceng, L.H.; Hsieh, C.W.; Wung, B.S. Calcium- and Phosphatidylinositol 3-Kinase/Akt-Dependent Activation of Endothelial Nitric Oxide Synthase by Apigenin. Life Sci. 2010, 87, 743–749. [Google Scholar] [CrossRef]
- Yang, N.; Qin, S.; Wang, M.; Chen, B.; Yuan, N.; Fang, Y.; Yao, S.; Jiao, P.; Yu, Y.; Zhang, Y.; et al. Pinocembrin, a Major Flavonoid in Propolis, Improves the Biological Functions of EPCs Derived from Rat Bone Marrow through the PI3K-ENOS-NO Signaling Pathway. Cytotechnology 2013, 65, 541–551. [Google Scholar] [CrossRef]
- Khoo, N.K.H.; White, C.R.; Pozzo-Miller, L.; Zhou, F.; Constance, C.; Inoue, T.; Patel, R.P.; Parks, D.A. Dietary Flavonoid Quercetin Stimulates Vasorelaxation in Aortic Vessels. Free Radic. Biol. Med. 2010, 49, 339–347. [Google Scholar] [CrossRef] [PubMed]
- Basini, G.; Santini, S.E.; Bussolati, S.; Grasselli, F. The Phytoestrogen Quercetin Impairs Steroidogenesis and Angiogenesis in Swine Granulosa Cells in Vitro. J. Biomed. Biotechnol. 2009, 2009, 419891. [Google Scholar] [CrossRef]
- Benito-Vázquez, I.; Garrido-Romero, M.; Hontoria-Caballo, G.; Díez-Municio, M.; Moreno, F.J.; Jiménez-Amezcua, I. Optimization and Enzymatic Intensification of Bioactive Compound Extraction from Carob Pulps with Potential Weight Management Applications. Adv. Sample Prep. 2025, 16, 100219. [Google Scholar] [CrossRef]
- Sun, J.; Zhang, X.; Broderick, M.; Fein, H. Measurement of Nitric Oxide Production in Biological Systems by Using Griess Reaction Assay. Sensors 2003, 3, 276–284. [Google Scholar] [CrossRef]
| No. | Compound | Rt (min) | Molecular Formula | MW | Detected m/z Ions | Fragments (m/z) | Mass Error (ppm) | Standard |
|---|---|---|---|---|---|---|---|---|
| 1 | Apigenin-6,8-di-C-glycoside (Vincenin II) | 5.137 | C27H30O15 | 594.1585 | 593.1512 [M − H]− | 473.1097 | 0.01 | Yes |
| 353.0693 | ||||||||
| 2 | Myrcetin-3-O-(6-glucosyl)glucoside | 5.937 | C27H30O18 | 642.1432 | 641.1357 [M − H]− | 316.0232 | −0.42 | No |
| 3 | Luteolin-8-C-(rhamnosyl)glucoside | 6.22 | C27H30O15 | 594.1585 | 593.1511 [M − H]− | 473.1096 | −0.27 | No |
| 693.1583 [M + HCOO]− | 357.0626 | |||||||
| 327.0522 | ||||||||
| 4 | Apigenin-8-C-glucoside (Vitexin) | 6.729 | C21H20O10 | 432.1056 | 431.0985 [M − H]− | 341.0585 | 0.3 | Yes |
| 311.0502 | ||||||||
| 293.0472 | ||||||||
| 5 | Apigenin-8-C-(rhamnosyl) glucoside (Vitexin-2″-O-rhamnosyl) | 6.854 | C27H30O14 | 578.1636 | 577.1561 [M − H]− | 457.1151 | −0.26 | Yes |
| 623.1661 [M + HCOO]− | 413.0890 | |||||||
| 293.0468 | ||||||||
| 6 | Acacetin-6,8-di-C-glucoside | 6.904 | C28H32O15 | 608.1741 | 607.1667 [M − H]− | 487.1256 | −0.59 | No |
| 653.1859 [M + HCOO]− | ||||||||
| 7 | Quercetin-3-O-(6-glucosyl)glucoside | 7.062 | C27H30O17 | 626.1483 | 625.1408 [M − H]− | 301.1238 | −0.53 | No |
| 671.1271 [M + HCOO]− | ||||||||
| 8 | Larcitrin-3-O-(6-glucosyl)glucoside | 8.229 | C27H30O16 | 656.1589 | 655.1520 [M − H]− | 331.0407 | 0.42 | No |
| 9 | Quercetin-3-O-(6-rhamnosyl)-glucoside (Rutin) | 8.787 | C27H30O16 | 610.1534 | 609.1458 [M − H]− | 301.0364 | −0.51 | Yes |
| 10 | Luteolin-7-O-glucoside | 8.879 | C27H30O16 | 448.1006 | 447.0931 [M − H]− | 285.0350 | −0.07 | Yes |
| 493.0981 [M + HCOO]− | ||||||||
| 11 | Quercetin-3-O-glucoside | 8.896 | C21H20O12 | 464.0955 | 463.0879 [M − H]− | 301.0313 | −0.58 | Yes |
| 12 | Kaempferol-3-O-(2″-rhhamnosyl-galactoside)7-O-rhamnoside | 9.271 | C33H40O19 | 740.2164 | 739.2084 [M − H]− | −1.71 | No | |
| 785.2087 [M + HCOO]− | ||||||||
| 13 | Isorhamnetin-3-O-(6-glucosyl)glucoside | 10.221 | C28H32O17 | 640.1639 | 639.1564 [M − H]− | 315.0513 | −0.8 | No |
| 685.1607 [M + HCOO]− | ||||||||
| 14 | Apigenin-7-O-glucoside | 11.471 | C21H20O10 | 432.1056 | 431.0983 [M − H]− | 269.0447 | −0.19 | Yes |
| 477.1056 [M + HCOO]− | ||||||||
| 15 | Quercetin-7-O-glucoside | 11.662 | C21H20O12 | 464.0955 | 463.0879 [M − H]− | 301.0299 | −0.79 | No |
| 509.1012 [M + HCOO]- | ||||||||
| 16 | Syringetin-3-O-(6-glucosyl)glucoside | 12.129 | C29H34O18 | 670.1745 | 669.1667 [M − H]− | 345.0566 | −1.52 | No |
| 715.1530 [M + HCOO]− | ||||||||
| 17 | Chrysoeriol-7-O-glucoside | 12.829 | C22H22O11 | 462.1162 | 461.1087 [M − H]− | 299.0485 | −0.58 | No |
| 507.1131 [M + HCOO]− | 283.0195 | |||||||
| 18 | Isorhamnetin-3-O-glucoside | 12.966 | C22H22O12 | 478.1111 | 477.1035 [M − H]− | 315.0474 | −0.25 | Yes |
| 523.1098 [M + HCOO]− | ||||||||
| 19 | Diosmetin-8-C-(rhamnosyl)-glucoside | 13.113 | C28H32O15 | 608.1741 | 607.1667 [M − H]− | 461.1059 | −1.23 | No |
| 299.0501 | ||||||||
| 20 | Quercetin-3-O-(2-rhamnosyl)ketodeoxihexoside | 13.771 | C27H28O15 | 592.1428 | 591.1351 [M − H]− | 427.0676 | −0.52 | No |
| 637.1289 [M + HCOO]− | 301.0358 | |||||||
| 21 | Luteolin-8-C-(rhamnosyl)quinovoside | 13.929 | C27H30O14 | 578.1636 | 577.1556 [M − H]− | 473.1097 | −1.34 | No |
| 623.1549 [M + HCOO]− | 413.0876 | |||||||
| 357.0618 | ||||||||
| 327.0516 | ||||||||
| 22 | Tricin-7-O-glucoside | 14.096 | C22H22O11 | 492.1268 | 491.1191 [M − H]− | 473.1068 | −0.96 | No |
| 537.1283 [M + HCOO]− | 329.0511 | |||||||
| 313.0329 | ||||||||
| 23 | Luteolin-8-C-(2-deoxihexoside)-ketodeoxihexoside | 15.938 | C27H28O14 | 576.1479 | 575.1407 [M − H]− | 411.0729 | 0.12 | No |
| 285.0414 | ||||||||
| 24 | Luteolin-8-C-(2-rhamnosyl)-ketodeoxihexoside | 17.738 | C27H28O14 | 576.1479 | 575.1403 [M − H]− | 411.0726 | −0.57 | No |
| 285.0412 | ||||||||
| 25 | Tricin-glucoside | 18.405 | C23H24O12 | 492.1268 | 491.1192 [M − H]− | 473.1094 | −0.86 | No |
| 537.1267 [M + HCOO]− | 313.0368 | |||||||
| 26 | Naringenin | 19.038 | C15H12O5 | 272.0685 | 271.0610 [M − H]− | 151.0047 | −0.92 | No |
| 317.0631 [M + HCOO]− | 119.0511 | |||||||
| 107.0150 | ||||||||
| 27 | Apigenin-7-O-(2-rhamnosyl)ketodeoxihexoside | 19.938 | C27H28O13 | 560.153 | 559.1453 [M − H]− | 395.0788 | −0.48 | No |
| 605.1458 [M + HCOO]− | 269.0468 | |||||||
| 28 | Luteolin | 20.921 | C15H12O5 | 286.0477 | 285.0404 [M − H]− | 199.0337 | −0.92 | No |
| 331.0459 [M + HCOO]− | 175.0336 | |||||||
| 150.9977 | ||||||||
| 133.0238 | ||||||||
| 29 | Apigenin-7-O-(2-rhamnosyl)ketodeoxihexoside | 21.146 | C27H28O13 | 560.153 | 559.1458 [M − H]− | 395.0797 | −0.1 | No |
| 605.1444 [M + HCOO]− | 269.0487 | |||||||
| 30 | Luteolin-C-(deoxihexoside)deoxihexoside | 21.672 | C27H28O14 | 576.1479 | 575.1403 [M − H]− | 411.0738 | −0.5 | No |
| 621.1522 [M + HCOO]− | 285.0417 | |||||||
| 31 | Luteolin-C-(deoxihexoside)hexoside | 22.338 | C27H28O15 | 592.1428 | 591.1354 [M − H]− | 473.1085 | −0.44 | No |
| 637.1227 [M + HCOO]− | 327.0498 | |||||||
| 32 | Luteolin-C-(deoxihexoside)deoxihexoside | 22.560 | C27H28O14 | 576.1479 | 575.1406 [M − H]− | 411.0701 | −0.27 | No |
| 621.1318 [M + HCOO]− | 285.0381 | |||||||
| 33 | Kaempferol | 22.922 | C15H12O5 | 286.0477 | 285.0403 [M − H]− | −0.89 | Yes | |
| 331.0442 [M + HCOO]− | ||||||||
| 34 | Luteolin derivate | 23.630 | C21H16O9 | 412.0794 | 411.0722 [M − H]− | 383.0803 | −0.79 | No |
| 337.0370 | ||||||||
| 297.0412 | ||||||||
| 285.0447 | ||||||||
| 35 | Apigenin | 24.047 | C15H10O5 | 270.0528 | 269.0454 [M − H]− | 227.0363 | −0.79 | Yes |
| 315.0434 [M + HCOO]− | 151.0460 | |||||||
| 117.0357 | ||||||||
| 36 | Luteolin derivate | 24.805 | C21H16O9 | 412.0794 | 411.0726 [M − H]− | 383.0794 | 1.08 | No |
| 337.0377 | ||||||||
| 297.0417 | ||||||||
| 285.0416 | ||||||||
| 37 | Luteolin methyl ether | 25.230 | C16H12O6 | 300.0634 | 299.0562 [M − H]− | 285.0362 | 0.3 | No |
| 256.0349 | ||||||||
| 227.0328 | ||||||||
| 151.0010 | ||||||||
| 133.0269 | ||||||||
| 38 | Pinocembrin | 25.847 | C15H12O4 | 256.0736 | 255.0662 [M − H]− | 213.0565 | −0.6 | Yes |
| 211.0768 | ||||||||
| 151.0045 | ||||||||
| 39 | Apigenin-7-O-(4″-p-E-coumaroyl)glucoside | 26.105 | C30H26O12 | 578.1424 | 577.1352 [M − H]− | 431.0986 | 0.17 | No |
| 623.1401 [M + HCOO]− | 269.0466 | |||||||
| 145.0304 | ||||||||
| 40 | Luteolin-8-C-E-propenoic acid | 26.464 | C18H12O8 | 356.0532 | 355.0456 [M − H]− | 337.0368 | −0.74 | No |
| 311.0567 | ||||||||
| 41 | Apigenin-7-O-(6″-p-E-coumaroyl)glucoside | 26.697 | C30H26O12 | 578.1424 | 577.1349 [M − H]− | 431.0995 | −0.56 | No |
| 269.0465 | ||||||||
| 145.0304 | ||||||||
| 42 | Apigenin-7-O-(6″-p-Z-coumaroyl)glucoside | 27.214 | C30H26O12 | 578.1424 | 577.1348 [M − H]− | 431.0981 | −0.54 | No |
| 269.0468 | ||||||||
| 145.0302 | ||||||||
| 43 | Apigenin-8-C-propiolic acid | 27.689 | C18H12O8 | 338.0427 | 337.0351 [M − H]− | 293.0462 | −0.62 | No |
| 383.0408 [M + HCOO]− | 202.9994 | |||||||
| 159.0096 | ||||||||
| 44 | Apigenin-7-O-(4″-p-Z-coumaroyl)glucoside | 27.957 | C30H26O12 | 578.1424 | 577.1351 [M − H]− | 431.0991 | −0.27 | No |
| 623.1306 [M + HCOO]− | 269.0460 | |||||||
| 145.0303 | ||||||||
| 45 | Apigenin-7-O-(3″-p-coumaroyl)glucoside | 29.765 | C30H26O12 | 578.1424 | 577.1354 [M − H]− | 431.0949 | 0.43 | No |
| 269.0461 | ||||||||
| 145.0313 | ||||||||
| 46 | Chrysin-8-C-propiolic acid | 30.706 | C18H10O6 | 322.0477 | 321.0402 [M − H]− | 293.0462 | −0.84 | No |
| 277.0513 | ||||||||
| 202.9994 | ||||||||
| 159.0099 | ||||||||
| 47 | Acacetin (5,7-Dihydroxy-4′-methoxyflavone) | 31.772 | C16H12O5 | 284.0682 | 283.0609 [M − H]− | 268.0385 | −1.05 | Yes |
| 240.0434 | ||||||||
| 211.0410 | ||||||||
| 151.0056 | ||||||||
| 48 | Genkwanin (4′,5-dihydroxy-7-methoxyflavone) | 32.656 | C16H12O5 | 284.0682 | 283.0610 [M − H]− | 268.0396 | −0.8 | No |
| 329.0645 [M + HCOO]− | 240.0435 | |||||||
| 211.0411 | ||||||||
| 165.0212 | ||||||||
| 49 | Velutin (5,4′-Dihydroxy-7,3′-dimethoxyflavone) | 34.347 | C17H14O6 | 314.079 | 313.0716 [M − H]− | 298.0464 | −0.73 | No |
| 283.0229 | ||||||||
| 255.0278 |
| Nr | Compound | Concentration (mg·g−1) | Quantification Standard |
|---|---|---|---|
| 1 | Apigenin-6,8-di-C-glycoside (Vincenin II) | 0.145 (0.001) * | Rutin |
| 2 | Myrcetin-3-O-(6-glucosyl)glucoside | 0.163 (0.002) | Rutin |
| 3 | Luteolin-8-C-(rhamnosyl)glucoside | 0.589 (0.008) | Rutin |
| 4 | Apigenin-8-C-glucoside (Vitexin) | 0.135 (0.001) | Luteolin-7-O-glucoside |
| 5 + 6 | Apigenin-8-C-(rhamnosyl)glucoside Acacetin-6,8-di-C-glucoside | 0.205 (0.003) | Rutin |
| 7 | Quercetin-3-O-(6-glucosyl)glucoside | 0.148 (0.003) | Rutin |
| 8 | Larcitrin-3-O-(6-glucosyl)glucoside | 0.341 (0.007) | Rutin |
| 9 | Quercetin-3-O-(6-rhamnosyl)-glucoside (Rutin) | 0.064 (0.003) | Rutin |
| 10 | Luteolin-7-O-glucoside | 0.139 (0.001) | Luteolin-7-O-glucoside |
| 11 +12 | Quercetin-3-O-glucoside Kaempferol-3-O-(2″-rhhamnosyl-galactoside)7-O-rhamnoside | 0.0760 (0.0004) | Luteolin-7-O-glucoside |
| 13 | Isorhamnetin-3-O-(6-glucosyl)glucoside | 0.177 (0.004) | Rutin |
| 14 | Apigenin-7-O-glucoside | 0.18 (0.01) | Luteolin-7-O-glucoside |
| 15 | Quercetin-7-O-glucoside | 0.071 (0.006) | Luteolin-7-O-glucoside |
| 16 | Syringetin-3-O-(6-glucosyl)glucoside | 0.137 (0.004) | Rutin |
| 17 + 18 + 19 | Chrysoeriol-7-O-glucoside Isorhamnetin-3-O-glucoside Diosmetin-8-C-(rhamnosyl)-glucoside | 0.222 (0.003) | Luteolin-7-O-glucoside |
| 20 | Quercetin-3-O-(2-rhamnosyl)ketodeoxihexoside | 0.412 (0.007) | Rutin |
| 21 + 22 | Luteolin-8-C-(rhamnosyl)quinovoside Tricin-7-O-glucoside | 0.293 (0.004) | Luteolin-7-O-glucoside |
| 23 | Luteolin-8-C-(2-deoxihexoside)-ketodeoxihexoside | 0.72 (0.01) | Rutin |
| 24 | Luteolin-8-C-(2-rhamnosyl)-ketodeoxihexoside | 3.00 (0.02) | Rutin |
| 25 | Tricin-7-O-glucoside | 0.135 (0.009) | Luteolin-7-O-glucoside |
| 26 | Naringenin | 0.140 (0.002) | Acacetin |
| 27 | Apigenin-7-O-(2-rhamnosyl)ketodeoxihexoside | 0.343 (0.006) | Rutin |
| 28 | Luteolin | 0.109 (0.002) | Acacetin |
| 29 | Apigenin-7-O-(2-rhamnosyl)ketodeoxihexoside | 0.54 (0.02) | Rutin |
| 30 | Luteolin-C-(deoxihexoside)deoxihexoside | 0.279 (0.002) | Rutin |
| 31 | Luteolin-C-(deoxihexoside)hexoside | 0.4 (0.03) | Rutin |
| 32 | Luteolin-C-(deoxihexoside)deoxihexoside | 0.26 (0.02) | Rutin |
| 33 | Kaempferol | 0.087 (0.002) | Acacetin |
| 34 | Luteolin derivate | 0.392 (0.043) | Acacetin |
| 35 | Apigenin | 0.290 (0.006) | Acacetin |
| 36 | Luteolin derivate | 0.2 (0.1) | Acacetin |
| 37 | Luteolin-7-methyl ether | 0.137 (0.002) | Acacetin |
| 38 | Pinocembrin | 0.08 (0.01) | Acacetin |
| 39 | Apigenin-7-O-(4″-p-E-coumaroyl)glucoside | 0.226 (0.008) | Luteolin-7-O-glucoside |
| 40 | Luteolin-8-C-E-propenoic acid | 0.52 (0.02) | Acacetin |
| 41 | Apigenin-7-O-(6″-p-E-coumaroyl)glucoside | 0.156 (0.004) | Luteolin-7-O-glucoside |
| 42 | Apigenin-7-O-(6″-p-Z-coumaroyl)glucoside | 0.605 (0.007) | Luteolin-7-O-glucoside |
| 43 | Apigenin-8-C-propiolic acid | 1.97 (0.03) | Luteolin-7-O-glucoside |
| 44 | Apigenin-7-O-(4″-p-Z-coumaroyl)glucoside | 0.501 (0.007) | Luteolin-7-O-glucoside |
| 45 | Apigenin-7-O-(3″-p-coumaroyl)glucoside | 0.234 (0.007) | Luteolin-7-O-glucoside |
| 46 | Dihydroxyflavone-8-C-propiolic acid | 0.387 (0.006) | Acacetin |
| 47 | Acacetin (5,7-Dihydroxy-4′-methoxyflavone) | 0.216 (0.003) | Acacetin |
| 48 | Genkwanin (4′,5-dihydroxy-7-methoxyflavone) | 0.099 (0.005) | Acacetin |
| 49 | Velutin (5,4′-Dihydroxy-7,3′-dimethoxyflavone) | 0.066 (0.001) | Acacetin |
| Total flavonoids | 15.9 (0.2) |
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© 2026 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.
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Benito-Vázquez, I.; Morán-Valero, M.I.; Díez-Municio, M.; Mena-García, A. Flavonoid Composition and Molecular Basis of the Potential Sexual-Enhancing Properties of a Turnera diffusa Extract (Liboost®). Pharmaceuticals 2026, 19, 597. https://doi.org/10.3390/ph19040597
Benito-Vázquez I, Morán-Valero MI, Díez-Municio M, Mena-García A. Flavonoid Composition and Molecular Basis of the Potential Sexual-Enhancing Properties of a Turnera diffusa Extract (Liboost®). Pharmaceuticals. 2026; 19(4):597. https://doi.org/10.3390/ph19040597
Chicago/Turabian StyleBenito-Vázquez, Iván, María Inés Morán-Valero, Marina Díez-Municio, and Adal Mena-García. 2026. "Flavonoid Composition and Molecular Basis of the Potential Sexual-Enhancing Properties of a Turnera diffusa Extract (Liboost®)" Pharmaceuticals 19, no. 4: 597. https://doi.org/10.3390/ph19040597
APA StyleBenito-Vázquez, I., Morán-Valero, M. I., Díez-Municio, M., & Mena-García, A. (2026). Flavonoid Composition and Molecular Basis of the Potential Sexual-Enhancing Properties of a Turnera diffusa Extract (Liboost®). Pharmaceuticals, 19(4), 597. https://doi.org/10.3390/ph19040597

