Comparative study of phytochemical content and bioactivity of five Zingiberaceae species from Thailand with biodiversity implications

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CHANAKRAN PAPAYRATA
SURAPON SAENSOUK
THEERAPHAN CHUMROENPHAT

Abstract

Abstract. Papayrata C, Saensouk S, Chumroenphat T. 2025. Comparative study of phytochemical content and bioactivity of five Zingiberaceae species from Thailand with biodiversity implications. Biodiversitas 26: 4229-4242. Zingiberaceae plants are widely used in traditional medicine and as food ingredients. Their phytochemicals and biological activities differ depending on species, genotype, and cultivation conditions. This study investigated five Thai Zingiberaceae species, including Zingiber chrysostachys (ZC), Zingiber niveum (ZN), Zingiber ligulatum (ZS), Alpinia galanga white cultivar (AGW), and yellow cultivar (AGY). ZC showed the highest total phenolic content (200.04 mg GAE/100 g DW) and total flavonoid content (157.16 mg RE/100 g DW), with myricetin at a concentration of 146.14 µg/g DW. Caffeic acid was the major phenolic acid found in all species, with the highest concentration in ZN (109.60 µg/100 g DW). ZC exhibited the highest antioxidant activity with a DPPH scavenging activity of 471.77 µg TE/g DW, IC50 of 251.04 µg/mL, and 104.71 mmol FeSO?/g DW by FRAP assay, with AGE inhibition of 98.15%. AGY was prominent for its remarkably high curcumin content (263.42 µg/g DW), ZN contained the highest 6-gingerol (118.37 µg/g DW), AGW had the highest eugenol concentration (17.92 µg/g DW), and ZS showed the highest vitamin C content (16.29 mg/100 g DW). Multivariate analyses confirmed strong correlations between myricetin, caffeic acid, and rutin, as well as their corresponding biological activities. ZC demonstrated the best potential for development as a functional food or herbal ingredient.

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Alam S, Sarker MdMR, Sultana TN, Chowdhury MdNR, Rashid MA, Chaity NI, Zhao C, Xiao J, Hafez EE, Khan SA, Mohamed IN. 2022. Antidiabetic phytochemicals from medicinal plants: Prospective candidates for new drug discovery and development. Front Endocrinol 13: 800714. DOI: 10.3389/fendo.2022.800714.

Alolga R, Wang F, Zhang X, Li J, Tran LSP, Yin X. 2022. Bioactive compounds from the Zingiberaceae family with known antioxidant activities for possible therapeutic uses. Antioxidants 11 (7): 1281. DOI: 10.3390/antiox11071281.

Asamenew G, Kim HW, Lee MK, Lee SH, Kim Y, Cha YS, Yoo SM, Kim JB. 2019. Characterization of phenolic compounds from normal ginger (Zingiber officinale Rosc.) and black ginger (Kaempferia parviflora Wall.) using UPLC-DAD-QToF-MS. Eur Food Res Technol 245 (3): 653-665. DOI: 10.1007/s00217-018-3188-z.

Aziz IM, Alfuraydi AA, Almarfadi OM, Aboul-Soud MA, Alshememry AK, Alsaleh AN, Almajhdi FN. 2024. Phytochemical analysis, antioxidant, anticancer, and antibacterial potential of Alpinia galanga (L.) rhizome. Heliyon 10 (17): e37196. DOI: 10.1016/j.heliyon.2024.e37196.

Ballester P, Cerdá B, Arcusa R, García-Muñoz AM, Marhuenda J, Zafrilla P. 2023. Antioxidant activity in extracts from Zingiberaceae family: Cardamom, turmeric, and ginger. Molecules 28 (10): 4024. DOI: 10.3390/molecules28104024.

Cao X, Xia Y, Zeng M, Wang W, He Y, Liu J. 2019. Caffeic acid inhibits the formation of advanced glycation end products (AGEs) and mitigates the AGEs-induced oxidative stress and inflammation reaction in human umbilical vein endothelial cells (HUVECs). Chem Biodivers 16 (10): e1900174. DOI: 10.1002/cbdv.201900174.

Cao XZ, Wu ZW, Ma XY, Deng WL, Chen DH, Liu JL, Li JH, Wang H, Pei BQ, Zhao D, Wang Q. 2025. Potential biomarkers of fatal hypothermia revealed by UHPLC-MS metabolomics in mice. Metabolites 15 (2): 116. DOI: 10.3390/metabo15020116.

Chagas MDSS, Behrens MD, Moragas-Tellis CJ, Penedo GXM, Silva AR, Gonçalves-de-Albuquerque CF. 2022. Flavonols and flavones as potential anti-inflammatory, antioxidant, and antibacterial compounds. Oxid Med Cell Longev 2022 (1): 9966750. DOI: 10.1155/2022/9966750.

Chen J, Yang J, Ma L, Li J, Shahzad N, Kim CK. 2020. Structure-antioxidant activity relationship of methoxy, phenolic hydroxyl, and carboxylic acid groups of phenolic acids. Sci Rep 10 (1): 2611. DOI: 10.1038/s41598-020-59451-z.

Chen S, Wang X, Cheng Y, Gao H, Chen X. 2023. A review of classification, biosynthesis, biological activities and potential applications of flavonoids. Molecules 28 (13): 4982. DOI: 10.3390/molecules28134982.

Chociej P, Foss K, Jab?o?ska M, Ustarbowska M, Sawicki T. 2024. The profile and content of polyphenolic compounds and antioxidant and anti-glycation properties of root extracts of selected medicinal herbs. Plant Foods Hum Nutr 79 (2): 468-473. DOI: 10.1007/s11130-024-01180-z.

Chouni A, Paul S. 2017. A review on phytochemical and pharmacological potential of Alpinia galanga. Pharmacogn J 10 (1): 9-15. DOI: 10.5530/pj.2018.1.2.

Chumroenphat T, Saensouk S, Saensouk P. 2021a. Chemical composition and antioxidant activity of three species of Cornukaempferia in Thailand. Biodiversitas 22 (9): 3892-3899. DOI: 10.13057/biodiv/d220952.

Chumroenphat T, Somboonwatthanakul I, Saensouk S, Siriamornpun S. 2021b. Changes in curcuminoids and chemical components of turmeric (Curcuma longa L.) under freeze-drying and low-temperature drying methods. Food Chem 339: 128121. DOI: 10.1016/j.foodchem.2020.128121.

Chumroenphat T, Somboonwatthanakul I, Saensouk S, Siriamornpun S. 2019. The diversity of biologically active compounds in the rhizomes of recently discovered Zingiberaceae plants native to north eastern Thailand. Pharmacogn J 11 (5): 1014-1022. DOI: 10.5530/pj.2019.11.160.

Deepika, Maurya PK. 2022. Health benefits of quercetin in age-related diseases. Molecules 27 (8): 2498. DOI: 10.3390/molecules27082498.

Divekar PA, Narayana S, Divekar BA, Kumar R, Gadratagi BG, Ray A, Singh AK, Rani V, Singh V, Singh AK, Kumar A, Singh RP, Meena RS, Behera TK. 2022. Plant secondary metabolites as defense tools against herbivores for sustainable crop protection. Intl J Mol Sci 23 (5): 2690. DOI: 10.3390/ijms23052690.

Edo GI, Igbuku UA, Makia RS, Isoje EF, Gaaz TS, Yousif E, Jikah AN, Zainulabdeen K, Akpoghelie PO, Opiti RA, Essaghah AEA, Ahmed DS, Umar H. 2025. Phytochemical profile, therapeutic potentials, nutritional composition, and food applications of ginger: A comprehensive review. Discov Food 5: 25. DOI: 10.1007/s44187-025-00280-2.

Guerrini A, Tacchini M, Chiocchio I, Grandini A, Radice M, Maresca I, Paganetto G, Sacchetti G. 2023. A comparative study on chemical compositions and biological activities of four Amazonian Ecuador essential oils: Curcuma longa L. (Zingiberaceae), Cymbopogon citratus (DC.) Stapf (Poaceae), Ocimum campechianum Mill. (Lamiaceae), and Zingiber officinale Roscoe (Zingiberaceae). Antibiotics 12 (1): 177. DOI: 10.3390/antibiotics12010177.

Hasnat H, Shompa SA, Islam MM, Alam S, Richi FT, Emon NU, Ashrafi S, Ahmed NU, Chowdhury MNR, Fatema N, Hossain MS, Ghosh A, Ahmed F. 2024. Flavonoids: A treasure house of prospective pharmacological potentials. Heliyon 10: e27533. DOI: 10.1016/j.heliyon.2024.e27533.

Hu L, Zhu F, Wang Y, Wu T, Wu X, Huang Z, Sun D, Liu M. 2024. Comparison and chemometrics analysis of phenolic compounds and mineral elements in Artemisia argyi folium from different geographical origins. Food Chem X 24: 101909. DOI: 10.1016/j.fochx.2024.101909.

Huang Z, Xie L, Wang H, Zhong J, Li Y, Liu J, Ou Z, Liang X, Li Y, Huang H, Lin Z, Zhang K, Zhang L, Zheng X. 2019. Geographic distribution and impacts of climate change on the suitable habitats of Zingiber species in China. Ind Crops Prod 138: 111429. DOI: 10.1016/j.indcrop.2019.05.078.

Ivanovi? M, Makoter K, Islam?evi? Razboršek M. 2021. Comparative study of chemical composition and antioxidant activity of essential oils and crude extracts of four characteristic Zingiberaceae herbs. Plants 10 (3): 501. DOI: 10.3390/plants10030501.

Jangpangi D, Patni B, Chandola V, Chandra S. 2025. Medicinal plants in a changing climate: Understanding the links between environmental stress and secondary metabolite synthesis. Front Plant Sci 16: 1587337. DOI: 10.3389/fpls.2025.1587337.

Khan MWA, Sherwani S, Alshammari MHE, Alsukaibi AKD, Khan WA, Haque A, Alenezi KM, Shahab U. 2024. Pharmacological activities of Zingiber officinale Roscoe: Inhibition of HSA protein glycation, structure stability and function restoration. Pharmaceuticals 17 (11): 1469. DOI: 10.3390/ph17111469.

Kuzminska J, Szyk P, Mlynarczyk DT, Bakun P, Muszalska-Kolos I, Dettlaff K, Sobczak A, Goslinski T, Jelinska A. 2024. Curcumin derivatives in medicinal chemistry: Potential applications in cancer treatment. Molecules 29 (22): 5321. DOI: 10.3390/molecules29225321.

Li X, Ao M, Zhang C, Fan S, Chen Z, Yu L. 2021. Zingiberis rhizoma recens: A review of its traditional uses, phytochemistry, pharmacology, and toxicology. Evid Based Complement Alternat Med 2021: 6668990. DOI: 10.1155/2021/6668990.

Liu J, He Y, Wang S, He Y, Wang W, Li Q, Cao X. 2018. Ferulic acid inhibits advanced glycation end products (AGEs) formation and mitigates the AGEs-induced inflammatory response in HUVEC cells. J Funct Foods 48: 19-26. DOI: 10.1016/j.jff.2018.06.024.

Olszowy-Tomczyk M, Wianowska D. 2023. Antioxidant properties of selected flavonoids in binary mixtures, considerations on myricetin, kaempferol and quercetin. Intl J Mol Sci 24 (12): 10070. DOI: 10.3390/ijms241210070.

Oriakhi K, Ibeji CU, Essien EE, Eluehike N, Orumwensodia K, Uadia P, Choudhary IM. 2022. In vitro and computational studies on the antiglycation activity of compounds isolated from antidiabetic Tetracera alnifolia stem bark. J Biomol Struct Dyn 40: 9742-9751. DOI: 10.1080/07391102.2021.1934542.

Papayrata C, Saensouk S, Chumroenphat T. 2024. Influence of germination time on free amino acids, phenolic compounds and ?-aminobutyric acid in pigeon pea (Cajanus cajan (L.) Huth) seeds. Not Bot Horti Agrobo 52 (31): 13674. DOI: 10.15835/nbha52313674.

Patil JR, Mhatre KJ, Yadav K, Yadav LS, Srivastava S, Nikalje GC. 2024. Flavonoids in plant-environment interactions and stress responses. Discov Plants 1: 68. DOI: 10.1007/s44372-024-00063-6.

Peng W, Li P, Ling R, Wang Z, Feng X, Liu J, Yang Q, Yan J. 2022. Diversity of volatile compounds in ten varieties of Zingiberaceae. Molecules 27 (2): 565. DOI: 10.3390/molecules27020565.

Prasad C, Davis KE, Imrhan V, Juma S, Vijayagopal P. 2019. Advanced glycation end products and risks for chronic diseases: Intervening through lifestyle modification. Am J Lifestyle Med 13: 384-404. DOI: 10.1177/1559827617708991.

Qattan MY, Khan MI, Alharbi SH, Verma AK, Al-Saeed FA, Abduallah AM, Al Areefy AA. 2022. Therapeutic importance of kaempferol in the treatment of cancer through the modulation of cell signalling pathways. Molecules 27 (24): 8864. DOI: 10.3390/molecules27248864.

Ragsasilp A, Saensouk P, Saensouk S. 2022. Ginger family from Bueng Kan Province, Thailand: Diversity, conservation status, and traditional uses. Biodiversitas 23 (5): 556-567. DOI: 10.13057/biodiv/d230556.

Rashedinia M, Rasti Arbabi Z, Sabet R, Emami L, Poustforoosh A, Sabahi Z. 2023. Comparison of protective effects of phenolic acids on protein glycation of BSA supported by in vitro and docking studies. Biochem Res Intl 2023: 9984618. DOI: 10.1155/2023/9984618.

Rawat S, Bhatt ID, Rawal RS, Nandi SK. 2017. Geographical and environmental variation in chemical constituents and antioxidant properties in Roscoea procera Wall. J Food Biochem 41: e12302. DOI: 10.1111/jfbc.12302.

Remigante A, Spinelli S, Basile N, Caruso D, Falliti G, Dossena S, Marino A, Morabito R. 2022. Oxidation stress as a mechanism of aging in human erythrocytes: Protective effect of quercetin. Intl J Mol Sci 23 (14): 7781. DOI: 10.3390/ijms23147781.

Roy A, Khan A, Ahmad I, Alghamdi S, Rajab BS, Babalghith AO, Alshahrani MY, Islam S, Islam MR. 2022. Flavonoids: A bioactive compound from medicinal plants and its therapeutic applications. BioMed Res Intl 2022: 5445291. DOI: 10.1155/2022/5445291.

Sarfaraz D, Rahimmalek M, Saeidi G. 2021. Polyphenolic and molecular variation in Thymus species using HPLC and SRAP analyses. Sci Rep 11: 5019. DOI: 10.1038/s41598-021-84449-6.

Setyawati A, Komariah, Pujiasmanto B, Fatawi A, Batubara I. 2021. Secondary metabolites of turmeric and ginger on various altitudes and soil characteristics. IOP Conf Ser Earth Environ Sci 724: 012020. DOI: 10.1088/1755-1315/724/1/012020.

Sharifi-Rad M, Varoni EM, Salehi B, Sharifi-Rad J, Matthews KR, Ayatollahi SA, Kobarfard F, Ibrahim SA, Mnayer D, Zakaria ZA, Sharifi-Rad M, Yousaf Z, Iriti M, Basile A, Rigano D. 2017. Plants of the genus Zingiber as a source of bioactive phytochemicals: From tradition to pharmacy. Molecules 22 (12): 2145. DOI: 10.3390/molecules22122145.

Sohrab S, Mishra P, Dwivedi V, Veis P, Pathak AK, Mishra SK. 2024. Elemental analysis and metabolic profiling of medicinally potent members of Zingiberaceae family using FT-IR and LIBS coupled with PLS-DA. Heliyon 10: e33395. DOI: 10.1016/j.heliyon.2024.e33395.

Sumi MJ, Zaman SB, Imran S, Sarker P, Rhaman MS. 2024. A review on the ethnopharmacological importance and biochemical composition of medicinal plants within the Zingiberaceae family. Plant Sci Today 11 (Sp1): 275-286. DOI: 10.14719/pst.3514.

Sun DJ, Zhu LJ, Zhao YQ, Zhen YQ, Zhang L, Lin CC, Chen LX. 2020. Diarylheptanoid: A privileged structure in drug discovery. Fitoterapia 142: 104490. DOI: 10.1016/j.fitote.2020.104490.

Tanweer S, Mehmood T, Zainab S, Ahmad Z, Shehzad A. 2020. Comparison and HPLC quantification of antioxidant profiling of ginger rhizome, leaves and flower extracts. Clin Phytosci 6: 12. DOI: 10.1186/s40816-020-00158-z.

Van HT, Thang TD, Luu TN, Doan VD. 2021. An overview of the chemical composition and biological activities of essential oils from Alpinia genus (Zingiberaceae). RSC Adv 11: 37767-37783. DOI: 10.1039/D1RA07370B.

Vaou N, Stavropoulou E, Voidarou C, Tsakris Z, Rozos G, Tsigalou C, Bezirtzoglou E. 2022. Interactions between medical plant-derived bioactive compounds: Focus on antimicrobial combination effects. Antibiotics 11 (8): 1014. DOI: 10.3390/antibiotics11081014.

Yang J, Lee H, Sung J, Kim Y, Jeong HS, Lee J. 2019. Conversion of rutin to quercetin by acid treatment in relation to biological activities. Prev Nutr Food Sci 24 (3): 313-320. DOI: 10.3746/pnf.2019.24.3.313.

Yoon D, Choi B, Kim H, Lee DY. 2024. Metabolic differences in Zingiber officinale Roscoe by geographical origin determined via multiplatform metabolomics and method for simultaneous analysis of six phenolic compounds. J Food Sci 89: 7452-7463. DOI: 10.1111/1750-3841.17456.

Youn I, Han AR, Piao D, Lee H, Kwak H, Lee Y, Nam JW, Seo EK. 2024. Phytochemical and pharmacological properties of the genus Alpinia from 2016 to 2023. Nat Prod Rep 41: 1346-1367. DOI: 10.1039/d4np00004h.

Yuan L, Pan K, Li Y, Yi B, Gao B. 2021. Comparative transcriptome analysis of Alpinia oxyphylla Miq. reveals tissue-specific expression of flavonoid biosynthesis genes. BMC Genom Data 22: 19. DOI: 10.1186/s12863-021-00973-4.

Yuliawati K, Febriyanti R, Sumiwi S, Levita J. 2025. Anti-inflammatory activities of some plants of genus Alpinia: Insights from in vitro, in vivo, and human studies. J Exp Pharmacol 17: 51-91. DOI: 10.2147/JEP.S499115.

Zheng M, Liu Y, Zhang G, Yang Z, Xu W, Chen Q. 2024. The antioxidant properties, metabolism, application and mechanism of ferulic acid in medicine, food, cosmetics, livestock and poultry. Antioxidants 13 (7): 853. DOI: 10.3390/antiox13070853.

Zheng W, Chen R, Xu K, Wang R, Wang Z, Li H, Go Y, Chan X, Huang Q, Wu J. 2025. Flavonoids in lotus stamen extract inhibit high glucose-induced intracellular glycation in fibroblasts by upregulating the expression of glyoxalase 1 and alleviating oxidative stress. Antioxidants 14 (4): 392. DOI: 10.3390/antiox14040392.

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