Open Access
Issue
BIO Web Conf.
Volume 223, 2026
The 3rd International Conference on Food Technology and Nutrition (ICFTN 2025)
Article Number 06001
Number of page(s) 15
Section Food Biochemistry
DOI https://doi.org/10.1051/bioconf/202622306001
Published online 25 February 2026
  • J.H.V. Purba, T. Sipayung, Perkebunan kelapa sawit Indonesia dalam perspektif pembangunan berkelanjutan. Jurnal Masyarakat Indonesia. 43, 81-94 (2017) [Google Scholar] [Google Scholar]
  • D.P. Rahayu, E. Suroso, Subeki, R. Suhardjo, S. Rizal, Uji in vitro daya hambat ekstrak kulit Senna multijuga terhadap jamur Ganoderma boninense. Jurnal Agroindustri Halal. 11, (2025) [Google Scholar] [Google Scholar]
  • Y.W. Khoo, K.P. Chong, Ganoderma boninense: general characteristics of pathogenicity and methods of control. Frontiers in Plant Science. 14, (2023) [Google Scholar] [Google Scholar]
  • R. Wandri, S. Alam, S.D. Ayundra, A. Apriansa, A. Asmono, Subeki, Y. Fitriana, R. Hasibuan, R. Suharjo, First report: Senna multijuga Subsp. multijuga (Fabales: Fabaceae) as an attractant and bioinsecticide for Oryctes rhinoceros (Coleoptera: Scarabaeidae). Agriculture. 14,1477 (2024) [Google Scholar] [Google Scholar]
  • K. Bene, K.I. Sinan, G. Zengin, A. Diuzheva, J. Jeko, Z. Cziaky, M.Z. Aumeeruddy, J. Xiao, M.F. Mahomoodally, A multidirectional investigation of stem bark extracts of four African plants: HPLC-MS/MS profiling and biological potentials. Journal of Pharmaceutical and Biomedical Analysis. 168, 217-224 (2019) [Google Scholar] [Google Scholar]
  • O.S. Oladeji, F.E. Adelowo, A.P. Oluyori, The genus Senna (Fabaceae): A review on its traditional uses, botany, phytochemistry, pharmacology and toxicology. South African Journal of Botany. 138, 1-32 (2021) [Google Scholar] [Google Scholar]
  • S. Oladeji, F.E. Adelowo, A.P. Oluyori, The genus Senna (Fabaceae): A review on its traditional uses, botany, phytochemistry, pharmacology and toxicology. South African Journal of Botany. 138, 1-32 (2021) [Google Scholar] [Google Scholar]
  • M.A. Ibrahim, M.S. Islam, Anti-diabetic effects of the acetone fraction of Senna singueana stem bark in a type 2 diabetes rat model. Journal of Ethnopharmacology. 153, 392-399 (2014) [Google Scholar] [Google Scholar]
  • P, Aditya, W. Lestari, K.D. Sitanggang, I.A.P, Septiyani. Isolasi dan karakteristik jamur dari Ganoderma di Desa Pernantian Perkebunan PT. Umada. Jurnal Pengabdian Kepada Masyarakat. 14, 167-172 (2024 ) [Google Scholar] [Google Scholar]
  • P. Sansores-Perazaa, M. Rosado-Valladoa, W. Brito-Loezaa, G.J. Mena-Rejon, L. Quijano, Cassine, an antimicrobial alkaloid from Senna racemosa. Fitoterapia. 71, 690-692 (2000) [Google Scholar] [Google Scholar]
  • M.N. Nascimento, M.M. Martins, L.C. Cunhac, P. Santos, L.P. Goulart, T. Silva, C.H.G. Martins, S.A. de Morais, M. Pivatto, Antimicrobial and cytotoxic activities of Senna and Cassia species (Fabaceae) extracts. Industrial Crops and Products. 148, 112081 (2020) [Google Scholar] [Google Scholar]
  • I. Fletcher, A. Freer, A. Ahmed, P. Fitzgerald, Effect of temperature and growth media on mycelium growth of Pleurotus ostreatus and Ganoderma lucidum strains. Cohesive Journal of Microbiology and Infectious Disease. 2, 1-5 (2019) [Google Scholar] [Google Scholar]
  • E. Sulyanti, Yaherwandi, R.M. Ulindari, Aktivitas air rebusan beberapa kulit jeruk (Citrus spp) untuk menekan pertumbuhan Colletotrichum gloeosporioides pada tanaman buah naga secara in vitro. Jurnal Proteksi Tanaman. 3, 56-64 (2019) [Google Scholar] [Google Scholar]
  • S.R. Susanti, S. Kusmiadi, S.N. Aini, Uji efikasi ekstrak daun mengkudu, kemangi dan jambu biji dalam menghambat pertumbuhan cendawan Colletotrichum gloeosporioides pada buah pepaya. Jurnal Agrosaintek. 1, 16-22 (2017) [Google Scholar] [Google Scholar]
  • S.R. Maji, C. Roy, S.K. Sinha, Gas chromatography-mass spectrometry (GC-MS): a comprehensive review of synergistic combinations and their applications in the past two decades. J. Anal. Sci. Appl. Biotechnol. 5, 72-85 (20230 [Google Scholar] [Google Scholar]
  • H.V. Bossche, G. Willemsens, P. Marichal, Antifungal activity of ketoconazole. Reviews of Infectious Diseases. 2, 570-588 (1980) [Google Scholar] [Google Scholar]
  • S.E. Anderson, R. Meier, Potential mechanisms of acrylate toxicity and allergic contact dermatitis. Chem. Res. Toxicol. 29, 2079-2090 (2016) [Google Scholar] [Google Scholar]
  • R. Khan, B. Islam, M. Akram, S. Shakil, A.A. Ahmad, S.M. Ali, M. Siddiqui, A.U. Khan, Antimicrobial Activity of Five Herbal Extracts Against Multi-Drug Resistant (MDR) Strains of Bacteria and Fungus of Clinical Origin. Molecules. 14, 586-597 (2009) [Google Scholar] [Google Scholar]
  • Y. Ghasemi, A. Mohagheghzadeh, M.A. Ebrahimzadeh, Antifungal activity of some plant essential oils against Candida albicans. Pak. J. Pharm. Sci. 33, 247-252 (2020) [Google Scholar] [Google Scholar]
  • A.P. Desbois, V.J. Smith, Antibacterial free fatty acids: activities, mechanisms of action and biotechnological potential. Appl. Microbiol. Biotechnol. 85, 1629-1642 (2010) [Google Scholar] [Google Scholar]
  • D. Walters, L. Raynor, A. Mitchell, R. Walker, K. Walker, Antifungal activities of four fatty acids against plant pathogenic fungi. Mycopathologia. 157, 87-90 (2004) [Google Scholar] [Google Scholar]
  • D. Walters, R.L. Walker, K.C. Walker, Lauric acid exhibits antifungal activity against plant pathogenic fungi. J. Phytopathol. 151, 228-230 (2003) [Google Scholar] [Google Scholar]
  • N.C.C. Silva, Fernandes Júnior, A., Biological properties of medicinal plants: a review of their antimicrobial activity. J. Venom. Anim. Toxin.s Incl. Trop. Dis. 16, 402-413 (2010) [Google Scholar] [Google Scholar]
  • Y. Zhou, S. Wang, H. Lou, P. Fan, Chemical constituents and antimicrobial activity of volatile oil from Cassia tora leaves. Molecules. 24, 1-12 (2019) [Google Scholar] [Google Scholar]
  • Y. Zhang, Z. Li, S. Wei, C. Xu, M. Chen, Y. Sang, Y. Han, Y. Yan, Z. Li, Z. Cui, X. Ye, Antifungal Activity and Mechanisms of 2-Ethylhexanol, a Volatile Organic Compound Produced by Stenotrophomonas sp. NAU1697, against Fusarium oxysporum f. sp. Cucumerinum. J. Agric. Food. Chem. 72, 15213-15227 (2024) [Google Scholar] [Google Scholar]
  • J.S. Raut, S.M. Karuppayil, A status review on the medicinal properties of essential oils. Ind Crops Prod. 62, 250-264 (2014) [Google Scholar] [Google Scholar]
  • F. Silva, S. Ferreira, J.A. Queiroz, F.C, Domingues. Coriander (Coriandrum sativum L.) essential oil: its antibacterial activity and mode of action evaluated by flow cytometry. J Med Microbiol. 60, 1479-1486 (2019) [Google Scholar] [Google Scholar]
  • J. Zhang, L. Li, S.H. Kim, A.E. Hagerman, J. Lü, Anti-cancer, anti-diabetic and other pharmacologic and biological activities of penta-O-galloyl-β-D-glucose. Pharm. Res. 26, 2066-2080 (2009) [Google Scholar] [Google Scholar]
  • R.N. Roy, S. Laskar, S.K. Sen, Dibutyl phthalate, the bioactive compound produced by Streptomyces albidoflavus 321.2. Microbiol. Res. 161, 121-126 (2006) [Google Scholar] [Google Scholar]
  • L. Das, T. Sengupta, An overview of synthesis and biological activities of 2-pyridone derivatives over the last decade. Discover Applied Sciences. 7, 1069 (2025) [Google Scholar] [Google Scholar]
  • S. Kumar, N. Kaushik, R, Edrada-Ebel, P. Proksch, Isolation, characterization, and bioactivity of phthalic acid derivatives from Phomopsis sp. Nat Prod Commun. 6, 1231-1234 (2011) [Google Scholar] [Google Scholar]
  • M.M. Alshehri, C. Quispe, J. Herrera-Bravo, J. Sharifi-Rad, S. Tutuncu, E.F. Aydar, C. Topkaya, Z. Mertdinc, B. Ozcelik, M. Aital, N.V.A. Kumar, N. Lapava, J. Rajkovic, A. Ertani, P. Nicola, P. Semwal, S. Painuli, C. González-Contreras, M. Martorell, M. Butnariu, I.C. Bagiu, R.V. Bagiu, M.D. Barbhai, M. Kumar, S.D. Daştan, D. Calina, W.C. Cho, A review of recent studies on the antioxidant and anti-infectious properties of Senna plants. Oxidative Medicine and Cellular Longevity. 6025900 (2022) [Google Scholar] [Google Scholar]

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