484
Views
3
CrossRef citations to date
0
Altmetric
ORIGINAL RESEARCH

Controlled-Release Wedelia trilobata L. Flower Extract Loaded Fibroin Microparticles as Potential Anti-Aging Preparations for Cosmetic Trade Commercialization

ORCID Icon, , , , ORCID Icon & ORCID Icon
Pages 1109-1121 | Received 19 Jan 2023, Accepted 13 Apr 2023, Published online: 26 Apr 2023

References

  • López-Otín C, Blasco MA, Partridge L, Serrano M, Kroemer G. The hallmarks of aging. Cell. 2013;153(6):1194–1217. doi:10.1016/j.cell.2013.05.039
  • Ferreira MS, Magalhães MC, Oliveira R, Sousa-Lobo JM, Almeida IF. Trends in the use of botanicals in anti-aging cosmetics. Molecules. 2021;26(12):3584. doi:10.3390/molecules26123584
  • Ok S-C. Insights into the anti-aging prevention and diagnostic medicine and healthcare. Diagnostics. 2022;12(4):819. doi:10.3390/diagnostics12040819
  • Liguori I, Russo G, Curcio F, et al. Oxidative stress, aging, and diseases. Clin Interv Aging. 2018;13:757. doi:10.2147/CIA.S158513
  • Wang J, Cao B, Zhao H, Feng J. Emerging roles of ganoderma lucidum in anti-aging. Aging Dis. 2017;8(6):691–707. doi:10.14336/AD.2017.0410
  • Engel N, Mahlknecht U. Aging and anti-aging: unexpected side effects of everyday medication through sirtuin1 modulation. Int J Mol Med. 2008;21:223–232. doi:10.3892/ijmm.21.2.223
  • Nguyen PH, Tran V, Pham DT, Dao TNP, Dewey RS. Use of and attitudes towards herbal medicine during the COVID-19 pandemic: a cross-sectional study in Vietnam. Eur J Integr Med. 2021;44:101328. doi:10.1016/J.EUJIM.2021.101328
  • Tran VD, Pham DT, Cao TTN, et al. Perspectives on COVID-19 prevention and treatment using herbal medicine in Vietnam: a cross-sectional study. Ann Ig. 2021;34(5):515–531. doi:10.7416/AI.2021.2484
  • Balekar N, Nakpheng T, Srichana T. Wedelia trilobata L.: a phytochemical and pharmacological review. Chiang Mai J Sci. 2014;41(3):590–605.
  • Mardina V, Ilyas S, Harmawan T, Halimatussakdiah H, Tanjung M. Antioxidant and cytotoxic activities of the ethyl acetate extract of Sphagneticola trilobata (L.) J.F. Pruski on MCF-7 breast cancer cell. J Adv Pharm Technol Res. 2020;11(3):123–127. doi:10.4103/japtr.JAPTR_31_20
  • Mardina V, Mastura H, Sufriadi E. Flower of sphagneticola trilobata (L.) J.F Pruski from Aceh, Indonesia: antioxidant and cytotoxic activity on HeLa cells. IOP Conf Ser Mater Sci Eng. 2020;1007(1):012182. doi:10.1088/1757-899X/1007/1/012182
  • Sureshkumar S, Bhama S, Kumar TS, Mjn C, Rajesh R. Analgesic activities of the medicinal plants of Wedelia trilobata, Wedelia biflora and Eclipta alba in standard experimental animal models. Biosci Biotechnol Res Asia. 2007;4(1):201–206.
  • Govindappa M, Sravya N, Poojashri MN, et al. Antimicrobial, antioxidant and in vitro anti-inflammatory activity and phytochemical screening of water extract of Wedelia trilobata (L.) Hitchc. J Med Plants Res. 2011;5:5718–5729.
  • Chethan J, Sampath Kumara KK, Niranjana SR, Prakash HS. Evaluation of antioxidant and antibacterial activities of methanolic flower extract of Wedelia trilobata (L.) Hitch. African J Biotechnol. 2012;11(41):9829–9834. doi:10.5897/ajb11.3729
  • Balekar N, Katkam NG, Nakpheng T, Jehtae K, Srichana T. Evaluation of the wound healing potential of Wedelia trilobata (L.) leaves. J Ethnopharmacol. 2012;141(3):817–824. doi:10.1016/j.jep.2012.03.019
  • Mardina V, Ilyas S, Halimatussakdiah H, Harmawan T, Tanjung M, Yusof F. Anticancer, antioxidant, and antibacterial activities of the methanolic extract from Sphagneticola trilobata (L.) J. F Pruski Leaves. J Adv Pharm Technol Res. 2021;12(3):222–226. doi:10.4103/japtr.JAPTR_131_21
  • Upadhyay K, Gupta NK, Dixit VK. Development and characterization of phyto-vesicles of wedelolactone for hepatoprotective activity. Drug Dev Ind Pharm. 2012;38(9):1152–1158. doi:10.3109/03639045.2011.643892
  • Kade I, Barbosa N, Ibukun E, Igbakin AP, Nogueira C, Rocha JB. Aqueous extracts of Sphagneticola trilobata attenuates streptozotocin-induced hyperglycaemia in rat models by modulating oxidative stress parameters. Biol Med. 2010;2:1–13.
  • Lans C. Ethnomedicines used in Trinidad and Tobago for reproductive problems. J Ethnobiol Ethnomed. 2007;3:13. doi:10.1186/1746-4269-3-13
  • Elia R, Guo J, Budijono S, et al. Encapsulation of volatile compounds in silk microparticles. J Coatings Technol Res. 2015;12(4):793–799. doi:10.1007/s11998-015-9668-1
  • Bayraktar O, Köse MD, Baspinar Y. Development of olive leaf extract loaded fibroin microparticles by spray drying. Drug Discovery. 2019;13:39–45.
  • Pham DT, Phewchan P, Navesit K, Chokamonsirikun A, Khemwong T, Tiyaboonchai W. Development of metronidazole-loaded in situ thermosensitive hydrogel for periodontitis treatment. Turkish J Pharm Sci. 2021;18(4):510. doi:10.4274/TJPS.GALENOS.2020.09623
  • Pham DT, Tiyaboonchai W. Fibroin-coated poly (ethylenimine)-docusate nanoparticles as a novel drug delivery system. Curr Sci. 2021;121(6):775–780. doi:10.18520/CS/V121/I6/775-780
  • Pham DT, Saelim N, Tiyaboonchai W. Alpha mangostin loaded crosslinked silk fibroin-based nanoparticles for cancer chemotherapy. Colloids Surfaces B Biointerfaces. 2019;181:705–713. doi:10.1016/j.colsurfb.2019.06.011
  • Pham DT, Thao NTP, Thuy BTP, De TV, Nguyen TQC, Nguyen NNT. Silk fibroin hydrogel containing Sesbania sesban L. extract for rheumatoid arthritis treatment. Drug Deliv. 2022;29(1):882–888. doi:10.1080/10717544.2022.2050848
  • Pham DT, Tiyaboonchai W. Fibroin nanoparticles: a promising drug delivery system. Drug Deliv. 2020;27(1):431–448. doi:10.1080/10717544.2020.1736208
  • Pham DT, Saelim N, Cornu R, Béduneau A, Tiyaboonchai W. Crosslinked fibroin nanoparticles: investigations on biostability, cytotoxicity, and cellular internalization. Pharmaceuticals. 2020;13(5):86. doi:10.3390/ph13050086
  • Hcini K, Lozano-Pérez AA, Luis Cenis J, Quílez M, José Jordán M. Extraction and encapsulation of phenolic compounds of tunisian rosemary (Rosmarinus officinalis L.) extracts in silk fibroin nanoparticles. Plants. 2021;10(11):2312. doi:10.3390/plants10112312
  • Omenetto FG, Kaplan DL. New opportunities for an ancient material. Science. 2010;329(5991):528–531. doi:10.1126/science.1188936
  • Altman GH, Diaz F, Jakuba C, et al. Silk-based biomaterials. Biomaterials. 2003;24(3):401–416. doi:10.1016/S0142-9612(02)00353-8
  • Montalbán MG, Coburn JM, Lozano-Pérez AA, Cenis JL, Víllora G, Kaplan DL. Production of curcumin-loaded silk fibroin nanoparticles for cancer therapy. Nanomater. 2018;8(2):126. doi:10.3390/nano8020126
  • Crivelli B, Bari E, Perteghella S, et al. Silk fibroin nanoparticles for celecoxib and curcumin delivery: ROS-scavenging and anti-inflammatory activities in an in vitro model of osteoarthritis. Eur J Pharm Biopharm Off J Arbeitsgemeinschaft fur Pharm Verfahrenstechnik eV. 2019;137:37–45. doi:10.1016/j.ejpb.2019.02.008
  • Lozano-Pérez AA, Rodriguez-Nogales A, Ortiz-Cullera V, et al. Silk fibroin nanoparticles constitute a vector for controlled release of resveratrol in an experimental model of inflammatory bowel disease in rats. Int J Nanomedicine. 2014;9:4507–4520. doi:10.2147/IJN.S68526
  • Lozano-Pérez AA, Rivero HC, Del Carmen Pérez Hernández M, et al. Silk fibroin nanoparticles: efficient vehicles for the natural antioxidant quercetin. Int J Pharm. 2017;518(1):11–19. doi:10.1016/j.ijpharm.2016.12.046
  • Blainski A, Lopes GC, de Mello JCP. Application and analysis of the folin ciocalteu method for the determination of the total phenolic content from limonium Brasiliense L. Molecules. 2013;18:6852–6865. doi:10.3390/molecules18066852
  • Tailor CS, Goyal A. Antioxidant activity by DPPH radical scavenging method of ageratum conyzoides Linn. Leaves. Am J Ethnomed. 2014;1:244–249.
  • Pham DT, Saelim N, Tiyaboonchai W. Crosslinked fibroin nanoparticles using EDC or PEI for drug delivery: physicochemical properties, crystallinity and structure. J Mater Sci. 2018;53(20):14087–14103. doi:10.1007/s10853-018-2635-3
  • Pham DT, Tetyczka C, Hartl S, et al. Comprehensive investigations of fibroin and poly (ethylenimine) functionalized fibroin nanoparticles for ulcerative colitis treatment. J Drug Deliv Sci Technol. 2019:101484. doi:10.1016/j.jddst.2019.101484
  • Mizokami SS, Arakawa NS, Ambrosio SR, et al. Kaurenoic acid from sphagneticola trilobata inhibits inflammatory pain: effect on cytokine production and activation of the NO–cyclic GMP–protein kinase G–ATP-sensitive potassium channel signaling pathway. J Nat Prod. 2012;75(5):896–904. doi:10.1021/np200989t
  • Buga MR, Zaharia C, Stancu I-C, Vasile E, Trusca R, Cincu C. Natural silk fibroin micro- and nanoparticles with potential uses in drug delivery systems. UPB Sci Bull Ser B. 2013;75:43–52.
  • Pham DT, Saelim N, Tiyaboonchai W. Paclitaxel loaded EDC-crosslinked fibroin nanoparticles: a potential approach for colon cancer treatment. Drug Deliv Transl Res. 2019;10(2):413–424. doi:10.1007/s13346-019-00682-7