| [1] |
Luangharn T, Hyde KD, Chukeatirote E. 2014. Proximate analysis and mineral content of Laetiporus sulphureus strain MFLUCC 12-0546 from Northern Thailand. Chiang Mai Journal of Science 41:765−770 |
| [2] |
Khatua S, Ghosh S, Acharya K. 2017. Laetiporus sulphureus (Bull.: Fr.) Murr. as food as medicine. |
| [3] |
Radic N, Injac R, Strukelj B. 2009. Sulphur tuft culinary-medicinal mushroom, Laetiporus sulphureus (Bull.: Fr.) Murrill (Aphyllophoromycetideae): bioactive compounds and pharmaceutical effects (review). |
| [4] |
Pleszczyńska M, Wiater A, Siwulski M, Szczodrak J. 2013. Successful large-scale production of fruiting bodies of Laetiporus sulphureus (Bull.: Fr.) Murrill on an artificial substrate. |
| [5] |
Khalilov Q, Numonov S, Sukhrobov P, Bobakulov K, Sharopov F, et al. 2022. New triterpenoids from the fruiting bodies of Laetiporus sulphureus and their anti-inflammatory activity. |
| [6] |
Gargoyle888. 2007. Laetiporus sulphureus (Chicken of the woods) on an oak tree. Photograph. Wikimedia Commons. https://commons.wikimedia.org/wiki/File:Laetiporus_sulphureus_(Chicken_of_the_woods)_on_an_oak_tree_-_20070921.jpg (Accessed on 25 February 2026) |
| [7] |
Bulam S, Üstün NŞ, Pekşen A. 2019. Nutraceutical and food preserving importance of Laetiporus sulphureus. |
| [8] |
Elkhateeb WA, El Ghwas DE, Gundoju NR, Somasekhar T, Akram M, et al. 2021. Chicken of the woods Laetiporus sulphureus and Schizophyllum commune treasure of medicinal mushrooms. |
| [9] |
Azeem U, Hakeem KR, Ali M. 2020. Ethnomycology. In Fungi for Human Health: Current Knowledge and Future Perspectives. Cham: Springer. pp. 23−39 doi: 10.1007/978-3-030-58756-7_4 |
| [10] |
Kaaronen RO. 2025. Living in the Mycelial World: a global cross-cultural ethnomycological review. |
| [11] |
Stephenson SL, Semwal KC. 2023. Distribution, ecology, and taxonomy of medicinal mushrooms. In Wild Mushrooms and Health, eds. Semwal KC, Stephenson SL, Husen A. 1st Edition. Boca Raton: CRC Press. pp. 11–22 doi: 10.1201/b23190-2 |
| [12] |
Patocka J. 2019. Will the sulphur polypore (Laetiporus sulphureus) become a new functional food? |
| [13] |
Grienke U, Zöll M, Peintner U, Rollinger JM. 2014. European medicinal polypores – a modern view on traditional uses. |
| [14] |
Sułkowska-Ziaja K, Muszyńska B, Gawalska A, Sałaciak K. 2018. Laetiporus sulphureus – chemical composition and medicinal value. |
| [15] |
Jorjadze A, Bussmann RW, Paniagua Zambrana NY, Batsatsashvili K, Svanidze E. 2023. Traditional use of polypores in Georgia (the Caucasus). |
| [16] |
Dong WG, Wang ZX, Feng XL, Zhang RQ, Shen DY, et al. 2022. Chromosome-level genome sequences, comparative genomic analyses, and secondary-metabolite biosynthesis evaluation of the medicinal edible mushroom Laetiporus sulphureus. |
| [17] |
Jen CI, Lu MK, Lai MN, Ng LT. 2024. Sulfated polysaccharides of Laetiporus sulphureus fruiting bodies exhibit anti-breast cancer activity through cell cycle arrest, apoptosis induction, and inhibiting cell migration. |
| [18] |
Ullah TS, Firdous SS, Shier WT, Hussain J, Shaheen H, et al. 2022. Diversity and ethnomycological importance of mushrooms from Western Himalayas, Kashmir. |
| [19] |
Verma K, Mehmood T, Kumar S, Altaf U, Sharma YP. 2023. Wild medicinal mushrooms of the northwest Himalayas of Jammu and Kashmir, India and their traditional and modern applications. In Wild Mushrooms and Health, eds. Semwal KC, Stephenson SL, Husen A. 1st Edition. Boca Raton: CRC Press. pp. 23–50 doi: 10.1201/b23190-3 |
| [20] |
Adhikari HS, Magar GT, Balami S. 2024. Laetiporus sulphureus in the mid-hills of Central Nepal: ecology, ethnomycology and present status. |
| [21] |
Campi MG, Azevedo-Olivera C, Costa-Rezende D, Maubet Cano Y, Morera G, et al. 2022. What are the Laetiporus species present in southern South America? |
| [22] |
Gafforov Y, Rašeta M, Rapior S, Yarasheva M, Wang X, et al. 2023. Macrofungi as medicinal resources in Uzbekistan: biodiversity, ethnomycology, and ethnomedicinal practices. |
| [23] |
Vasco-Palacios AM, Peña-Cañón R, Benavides OL, Dávila-Giraldo LR. 2025. Hongos comestibles y desarrollo sostenible en Colombia. |
| [24] |
Rojas C, Arroyo I, Doss RG. 2023. Ethnomycology, bioprospection, and uses of mushrooms in Costa Rica. In Wild Mushrooms and Health, eds. Semwal KC, Stephenson SL, Husen A. 1st Edition. Boca Raton: CRC Press. pp. 51–64 doi: 10.1201/b23190-4 |
| [25] |
Dejene T, Oria-de-Rueda JA, Martín-Pinto P. 2017. Edible wild mushrooms of Ethiopia: neglected non-timber forest products. |
| [26] |
Dejene T, Teshome B, Tadesse W, Martín-Pinto P. 2023. Diversity and ecology of wild mushrooms in Ethiopia. In Wild Mushrooms and Health, eds. Semwal KC, Stephenson SL, Husen A. 1st Edition. Boca Raton: CRC Press. pp. 180–193 doi: 10.1201/b23190-9 |
| [27] |
Sitotaw R, Lulekal E, Abate D. 2020. Ethnomycological study of edible and medicinal mushrooms in Menge District, Asossa Zone, Benshangul Gumuz Region, Ethiopia. |
| [28] |
Mjaika NE. 2022. A systematic review of biodiversity and conservation of indigenous mushrooms (Basidiomycotina, Ascomycotina) of Central Africa countryside: uses, distribution and checklists. |
| [29] |
Teke NA, Kinge TR, Bechem E, Nji TM, Ndam LM, et al. 2018. Ethnomycological study in the Kilum-Ijim mountain forest, Northwest Region, Cameroon. |
| [30] |
Rosemary Kinge T, Apiseh Apalah N, Mue Nji T, Neh Acha A, Mathias Mih A. 2017. Species richness and traditional knowledge of macrofungi (mushrooms) in the awing forest reserve and communities, Northwest Region, Cameroon. |
| [31] |
Kolundzic MD, Grozdanic NO, Stanojkovic TP, Milenkovic MT, Dinic MR, et al. 2016. Antimicrobial and cytotoxic activities of the sulphur shelf medicinal mushroom Laetiporus sulphureus (Agaricomycetes) from Serbia. |
| [32] |
Duan Y, Qi J, Gao JM, Liu C. 2022. Bioactive components of Laetiporus species and their pharmacological effects. |
| [33] |
Zhao H, Lan Y, Liu H, Zhu Y, Liu W, et al. 2017. Antioxidant and hepatoprotective activities of polysaccharides from spent mushroom substrates (Laetiporus sulphureus) in acute alcohol-induced mice. |
| [34] |
Hwang HS, Lee SH, Baek YM, Kim SW, Jeong YK, et al. 2008. Production of extracellular polysaccharides by submerged mycelial culture of Laetiporus sulphureus var. miniatus and their insulinotropic properties. |
| [35] |
Klaus A, Kozarski M, Niksic M, Jakovljevic D, Todorovic N, et al. 2013. The edible mushroom Laetiporus sulphureus as potential source of natural antioxidants. |
| [36] |
Wiater A, Pleszczyńska M, Szczodrak J, Janusz G. 2012. Comparative studies on the induction of Trichoderma harzianum mutanase by α-(1→3)-glucan-rich fruiting bodies and mycelia of Laetiporus sulphureus. |
| [37] |
Patel DK, Dutta SD, Ganguly K, Cho SJ, Lim KT. 2021. Mushroom-derived bioactive molecules as immunotherapeutic agents: a review. |
| [38] |
Kovács D, Vetter J. 2015. Chemical composition of the mushroom Laetiporus sulphureus (Bull.) Murill. |
| [39] |
Olennikov DN, Agafonova SV, Nazarova AV, Borovskii GB, Penzina TA. 2008. Organic acids and carbohydrates from Laetiporus sulphureus fruiting bodies. |
| [40] |
Złotko K, Wiater A, Waśko A, Pleszczyńska M, Paduch R, et al. 2019. A report on fungal (1→3)-α-d-glucans: properties, functions and application. |
| [41] |
Nawawi WMFW, Jones MP, Kontturi E, Mautner A, Bismarck A. 2020. Plastic to elastic: fungi-derived composite nanopapers with tunable tensile properties. |
| [42] |
Baharlouei P, Rahman A. 2022. Chitin and chitosan: prospective biomedical applications in drug delivery, cancer treatment, and wound healing. |
| [43] |
Jen CI, Ng LT. 2025. F2-sulfated polysaccharides of Laetiporus sulphureus suppress triple-negative breast cancer cell proliferation and metastasis through the EGFR-mediated signaling pathway. |
| [44] |
Górska-Jakubowska S, Wu Y, Turło J, Xu B. 2025. Critical review on the anti-tumor activity of bioactive compounds from edible and medicinal mushrooms over the last five years. |
| [45] |
Jen CI, Ng LT. 2024. Physicochemical properties of different sulfated polysaccharide components from Laetiporus sulphureus and their anti-proliferative effects on MDA-MB-231 breast cancer cells. |
| [46] |
Lu MK, Jen CI, Chao CH, Hsu YC, Ng LT. 2023. SPS, a sulfated galactoglucan of Laetiporus sulphureus, exhibited anti-inflammatory activities. |
| [47] |
Qu Y, Yang X, Zhao D, Zhang P, Mi Y, et al. 2025. Structural characterization and anti-tumor activity of a polysaccharide from Laetiporus sulphureus in A549 cells. |
| [48] |
Wang J, Zhang P, He H, Se X, Sun W, et al. 2017. Eburicoic acid from Laetiporus sulphureus (Bull.: Fr.) Murrill attenuates inflammatory responses through inhibiting LPS-induced activation of PI3K/Akt/mTOR/NF-κB pathways in RAW264.7 cells. |
| [49] |
Saba E, Son Y, Jeon BR, Kim SE, Lee IK, et al. 2015. Acetyl eburicoic acid from Laetiporus sulphureus var. miniatus suppresses inflammation in murine macrophage RAW 264.7 cells. |
| [50] |
Hassan K, Matio Kemkuignou B, Kirchenwitz M, Wittstein K, Rascher-Albaghdadi M, et al. 2022. Neurotrophic and immunomodulatory lanostane triterpenoids from wood-inhabiting Basidiomycota. |
| [51] |
Hassan K, Kemkuignou BM, Stadler M. 2021. Two new triterpenes from basidiomata of the medicinal and edible mushroom, Laetiporus sulphureus. |
| [52] |
Sun WJ, He HB, Wang JZ, Wu L, Cheng F, et al. 2014. The main components analysis of Laetiporus sulphureus crude extract and its hepatoprotective effect on carbon tetrachloride-induced hepatic fibrosis in rats. |
| [53] |
León F, Quintana J, Rivera A, Estévez F, Bermejo J. 2004. Lanostanoid triterpenes from Laetiporus sulphureus and apoptosis induction on HL-60 human myeloid leukemia cells. |
| [54] |
Ríos J-L, Andújar I, Recio M-C, Giner R-M. 2012. Lanostanoids from fungi: a group of potential anticancer compounds. |
| [55] |
Mabou FD, Yossa Nzeuwa IB. 2021. Terpenes: structural classification and biological activities. |
| [56] |
He JB, Tao J, Miao XS, Bu W, Zhang S, et al. 2015. Seven new drimane-type sesquiterpenoids from cultures of fungus Laetiporus sulphureus. |
| [57] |
Zhang JW, Wen GL, Zhang L, Duan DM, Ren ZH. 2015. Sulphureuine B, a drimane type sesquiterpenoid isolated from Laetiporus sulphureus induces apoptosis in glioma cells. |
| [58] |
Du W, Yang Q, Xu H, Dong L. 2022. Drimane-type sesquiterpenoids from fungi. |
| [59] |
Chandrawanshi NK, Tandia DK. 2024. Determination of antioxidant and antidiabetic potency of polar solvent extracts of Laetiporus sulphureus (Bull.) Murrill. |
| [60] |
Petrović N, Tosti T, Srbljak I, Đurić A, Kosanić M. 2023. Biochemical characterization and bioactivity of methanolic and acetonic extracts of Laetiporus sulphureus basidiocarps. |
| [61] |
Petrović J, Glamočlija J, Milinčić DD, Doroški A, Lević S, et al. 2024. Comparative chemical analysis and bioactive properties of aqueous and glucan-rich extracts of three widely appreciated mushrooms: Agaricus bisporus (J.E.Lange) Imbach, Laetiporus sulphureus (Bull.) Murill and Agrocybe aegerita (V. Brig.) Vizzini. |
| [62] |
Olennikov DN, Tankhaeva LM, Agafonova SV. 2011. Antioxidant components of Laetiporus sulphureus (Bull.: Fr.) Murr. fruit bodies. |
| [63] |
Abbassi K, Benoutman A, Erbiai EH, Taheri FZ, Makrane H, et al. 2025. Chemical characterization and antifungal activity of extracts from the edible fungus Laetiporus sulphureus against Fusarium oxysporum, the causative agent of vascular fusariosis in Moroccan date palm. |
| [64] |
Petrović J, Papandreou M, Glamočlija J, Ćirić A, Baskakis C, et al. 2014. Different extraction methodologies and their influence on the bioactivity of the wild edible mushroom Laetiporus sulphureus (Bull.) Murrill. |
| [65] |
Petrović J, Stojković D, Reis FS, Barros L, Glamočlija J, et al. 2014. Study on chemical, bioactive and food preserving properties of Laetiporus sulphureus (Bull.: Fr.) Murr. |
| [66] |
Bulam S, Karadeniz M, Bakır TK, Ünal S. 2022. Assessment of total phenolic, total flavonoid, metal contents and antioxidant activities of Trametes versicolor and Laetiporus sulphureus. |
| [67] |
Novaković A, Karaman M, Šojić B, Ikonić P, Peulić T, et al. 2025. From forest to fork: antioxidant and antimicrobial potential of Laetiporus sulphureus (Bull.) Murrill in cooked sausages. |
| [68] |
Jovanović MM, Marković KG, Grujović MŽ, Pavić J, Mitić M, et al. 2023. Anticancer assessment and antibiofilm potential of Laetiporus sulphureus mushroom originated from Serbia. |
| [69] |
Arsenijević D, Jovanović M, Pecić K, Jurišić V, Virijević K, et al. 2024. Laetiporus sulphureus mushroom extract strongly enhances proapoptotic effect of probiotics Bifidobacterium lactis on HCT-116 cells in a co-culture system. |
| [70] |
Coy Barrera ED, Nieto Ramírez IJ. 2011. Steroid-related metabolites from edible mushroom Laetiporus sulphureus. Revista Facultad De Ciencias Básicas 7:298−307 |
| [71] |
Adamska I. 2023. The possibility of using sulphur shelf fungus (Laetiporus sulphureus) in the food industry and in medicine—a review. |
| [72] |
Younis AM, Yosri M, Stewart JK. 2019. In vitro evaluation of pleiotropic properties of wild mushroom Laetiporus sulphureus. |
| [73] |
Sułkowska-Ziaja K, Grabowska K, Apola A, Kryczyk-Poprawa A, Muszyńska B. 2021. Mycelial culture extracts of selected wood-decay mushrooms as a source of skin-protecting factors. |
| [74] |
Pavic A, Ilic-Tomic T, Glamočlija J. 2021. Unravelling anti-melanogenic potency of edible mushrooms Laetiporus sulphureus and Agaricus silvaticus in vivo using the zebrafish model. |
| [75] |
Weber RWS, Mucci A, Davoli P. 2004. Laetiporic acid, a new polyene pigment from the wood-rotting basidiomycete Laetiporus sulphureus (Polyporales, Fungi). |
| [76] |
Davoli P, Mucci A, Schenetti L, Weber RWS. 2005. Laetiporic acids, a family of non-carotenoid polyene pigments from fruit-bodies and liquid cultures of Laetiporus sulphureus (Polyporales, Fungi). |
| [77] |
Seibold PS, Lenz C, Gressler M, Hoffmeister D. 2020. The Laetiporus polyketide synthase LpaA produces a series of antifungal polyenes. |
| [78] |
Petrović J, Glamočlija J, Ilić-Tomić T, Soković M, Robajac D, et al. 2020. Lectin from Laetiporus sulphureus effectively inhibits angiogenesis and tumor development in the zebrafish xenograft models of colorectal carcinoma and melanoma. |
| [79] |
Wang Y, Zhang Y, Shao J, Wu B, Li B. 2019. Potential immunomodulatory activities of a lectin from the mushroom Laetiporus sulphureus. |
| [80] |
Zhang J, Lv J, Zhao L, Shui X, Wang LA. 2018. Antioxidant and antimicrobial activities and chemical composition of submerged cultivated mycelia of Laetiporus sulphureus. |
| [81] |
Kim EJ, Yoo KH, Kim YS, Seok SJ, Kim JH. 2017. Hexane and chloroform fractions of Laetiporus sulphureus var. miniatus inhibit thrombin-treated matrix metalloproteinase-2/9 expression in human oral squamous carcinoma YD-10B cells. |
| [82] |
Lear MJ, Simon O, Foley TL, Burkart MD, Baiga TJ, et al. 2009. Laetirobin from the parasitic growth of Laetiporus sulphureus on Robinia pseudoacacia. |
| [83] |
Caloni F, Fossati P, Anadón A, Bertero A. 2020. Beauvericin: the beauty and the beast. |
| [84] |
Mahmoud OA, Abdel-Hadi SY. 2022. Extraction and purification of lovastatin from the edible mushroom Laetiporus sulphureus and its antioxidant activity. |
| [85] |
Adamska I, Felisiak K. 2025. The effect of heat treatment on the nutritional value and antioxidant activity of sulphur shelf (Laetiporus sulphureus). |
| [86] |
Pecić K, Jovanović M, Arsenijević D, Pavić J, Grujović M, et al. 2022. Laetiporus sulphureus affects migration and superoxide anion radical levels in HeLa cervical cancer cells. |