Open Access
| Issue |
BIO Web Conf.
Volume 224, 2026
2nd International Seminar on Food Science and Technology: “Fostering Sustainable Food Systems and Alternative Food Sources” (ISoFST 2025)
|
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|---|---|---|
| Article Number | 01018 | |
| Number of page(s) | 7 | |
| DOI | https://doi.org/10.1051/bioconf/202622401018 | |
| Published online | 26 February 2026 | |
- T.M. Bayless, E. Brown, D.M. Paige, Lactase Non-persistence and Lactose Intolerance, Curr. Gastroenterol. Rep. 19 (2017). https://doi.org/10.1007/s11894-017-0558-9. [Google Scholar]
- E. Dewiasty, S. Setiati, R. Agustina, A.G. Roosheroe, M. Abdullah, R. Istanti, L.C. de Groot, Prevalence of lactose intolerance and nutrients intake in an older population regarded as lactase non-persistent, Clin. Nutr. ESPEN 43 (2021) 317–321. https://doi.org/10.1016/j.clnesp.2021.03.033. [Google Scholar]
- N. Bernat, M. Cháfer, A. Chiralt, C. González-Martínez, Development of a non-dairy probiotic fermented product based on almond milk and inulin, Food Sci. Technol. Int. 21 (2015) 440–453. https://doi.org/10.1177/1082013214543705. [Google Scholar]
- B. Hegar, A. Widodo, Lactose intolerance in Indonesian children, Asia Pac. J. Clin. Nutr. 24 (2015) S31–S40. https://doi.org/10.6133/apjcn.2015.24.s1.06. [Google Scholar]
- D. Plamada, B.-E. Teleky, S.-A. Nemeș, L. Mitrea, K. Szabo, L. Călinoiu, M. Pascuta, R.-A. Varvara, C. Ciont, G. Martău, E. Simon, G. Barta, F. Dulf, D. Vodnar, M. Nițescu, Plant-Based Dairy Alternatives—A Future Direction to the Milky Way, Foods 12 (2023). https://doi.org/10.3390/foods12091883. [Google Scholar]
- Mellia Silvy Irdianty, Agnes Sri Harti, Erlina Windyastuti, Synbiotic Soygurt Tempe Extract as A Functional Drink for Stunting Prevention, Int. J. Public Heal. Excell. 3 (2023) 288–299. https://doi.org/10.55299/ijphe.v3i1.629. [Google Scholar]
- A.R. Siedharta, Y.R. Swasti, F.S. Pranata, The Quality of Ice Cream with Cowpea Tempeh Extract and Porang Tuber Extract Paste as Stabilizer, Amerta Nutr. 8 (2024) 519–527. https://doi.org/10.20473/amnt.v8i4.2024.519-527. [Google Scholar]
- L. Alejandra, F. Castaneda, S. Saini, O. Laaksonen, A. Kårlund, S.L. Leong, W.R. Newson, V. Passoth, K. Hanhineva, M. Langton, Current Research in Food Science Sensory and volatile compound profiles in tempeh-like products from faba bean and oats, Curr. Res. Food Sci. 10 (2025) 101029. https://doi.org/10.1016/j.crfs.2025.101029. [Google Scholar]
- Y. Tang, C. Zhou, Z. Yu, M. Jiang, Y. Chen, H. Wang, Formation of lipid-derived volatile products through lipoxygenase (LOX)- and hydroperoxide lyase (HPL)- mediated pathway in oat, barley and soy bean, Food Chem. X 22 (2024) 101514. https://doi.org/10.1016/j.fochx.2024.101514. [Google Scholar]
- M.A.N. Nur Liyana Nordin, Rabiha Sulaiman, Jamilah Bakar, Comparison of Phenolic and Volatile Compounds in MD2 Pineapple Peel and Core, Foods 12 (2023). https://doi.org/10.3390/foods12112233. [Google Scholar]
- L.C.D.O. Barretto, J. De Jesus, J. Antônio, N. Narain, R. Anne, Characterization and extraction of volatile compounds from pineapple ( Ananas comosus L . Merril ) processing residues, Food Sci. Technol, Campinas, 33(4) 33 (2013) 638–645. [Google Scholar]
- J.A. Pino, Original article Odour-active compounds in pineapple ( Ananas comosus [ L .] Merril cv . Red Spanish ), 3 (2013) 564–570. https://doi.org/10.1111/j.1365-2621.2012.03222.x. [Google Scholar]
- Association of Official Analytical Chemistry International, Official Methods of Analysis of AOAC International, AOAC Int. (2005). [Google Scholar]
- S. Baliyan, R. Mukherjee, A. Priyadarshini, A. Vibhuti, A. Gupta, R.P. Pandey, C.M. Chang, Determination of Antioxidants by DPPH Radical Scavenging Activity and Quantitative Phytochemical Analysis of Ficus religiosa, Molecules 27 (2022). https://doi.org/10.3390/molecules27041326. [Google Scholar]
- E. Sufitri, E. Emelda, M.A. Munir, V. Aprilia, The detection of ascorbic acid in orange (Rutaceae Sp.) using titration technique, Asian J. Anal. Chem. 1 (2023) 1–5. https://doi.org/10.53866/ajac.v1i1.267. [Google Scholar]
- W.S. Arbuckle, Ice Cream, (1986). https://doi.org/10.1007/978-1-4615-7222-0. [Google Scholar]
- A. Romulo, R. Surya, Tempe: A traditional fermented food of Indonesia and its health benefits, Int. J. Gastron. Food Sci. 26 (2021) 100413. https://doi.org/10.1016/j.ijgfs.2021.100413. [Google Scholar]
- R. Shanti, K. Komala, I.H. Azhar, F. Shalihati, Tempe: Indonesian Vegan Protein for the World, Atlantis Press International BV, 2023. https://doi.org/10.2991/978-94-6463-144-9_18. [Google Scholar]
- R. Siti Rashima, M. Maizura, W.M. Wan Nur Hafzan, H. Hazzeman, Physicochemical properties and sensory acceptability of pineapples of different varieties and stages of maturity, Food Res. 3 (2019) 491–500. https://doi.org/10.26656/fr.2017.3(5).060. [Google Scholar]
- Q. Abbas Syed, Effects of different ingredients on texture of ice cream, J. Nutr. Heal. Food Eng. 8 (2018) 422–435. https://doi.org/10.15406/jnhfe.2018.08.00305. [Google Scholar]
- S. Roy, S.A. Hussain, W.G. Prasad, Y. Khetra, Quality attributes of high protein ice cream prepared by incorporation of whey protein isolate, Appl. Food Res. 2 (2022) 100029. https://doi.org/10.1016/j.afres.2021.100029. [Google Scholar]
- M. Farid Hossain, Nutritional Value and Medicinal Benefits of Pineapple, Int. J. Nutr. Food Sci. 4 (2015) 84. https://doi.org/10.11648/j.ijnfs.20150401.22. [CrossRef] [Google Scholar]
- Y.L. Huang, C.J. Chow, Y.J. Fang, Preparation and physicochemical properties of fiber-rich fraction from pineapple peels as a potential ingredient, J. Food Drug Anal. 19 (2011). https://doi.org/10.38212/2224-6614.2179. [Google Scholar]
- X. Liu, G. Sala, E. Scholten, Structural and functional differences between ice crystal-dominated and fat network-dominated ice cream, Food Hydrocoll. 138 (2023) 108466. https://doi.org/10.1016/j.foodhyd.2023.108466. [Google Scholar]
- E. Ortega-Hernández, L. Martinez-Alvarado, B.A. Acosta-Estrada, M. Antunes-Ricardo, Solid-State Fermented Pineapple Peel: A Novel Food Ingredient with Antioxidant and Anti-Inflammatory Properties, Foods 12 (2023). https://doi.org/10.3390/foods12224162. [Google Scholar]
- C.T. Chang, C.K. Hsu, S.T. Chou, Y.C. Chen, F.S. Huang, Y.C. Chung, Effect of fermentation time on the antioxidant activities of tempeh prepared from fermented soybean using Rhizopus oligosporus, Int. J. Food Sci. Technol. 44 (2009) 799–806. https://doi.org/10.1111/j.1365-2621.2009.01907.x. [Google Scholar]
- M. Grabacka, A. Starzy, R. Duli, Effect of Fungal and Fungal-Bacterial Tempe-Type Fermentation on the Bioactive Potential of Grass Pea Seeds and Flaxseed Oil Cake Mix, 2024 (2024). https://doi.org/10.1155/2024/5596798. [Google Scholar]
- E.P.A.N. Tias, M.G. Wicaksono, L.R. Hayati, A.F. Salsabila, K.A.D. Prabowo, E. Setyaningsih, Potential Bromelain Pinneapple Extract to Breaker Tempe Protein As Organic MSG, Asian J. Heal. Appl. Sci. 1 (2022) 11–21. https://doi.org/10.53402/ajhas.v1i3.182. [Google Scholar]
- J. Ma, K. Su, M. Chen, S. Wang, Study on the antioxidant activity of peptides from soybean meal by fermentation based on the chemical method and induced oxidative stress, (2023) 6634–6647. https://doi.org/10.1002/fsn3.3612. [Google Scholar]
- D. Subali, R.E. Christos, V.T. Givianty, A.V. Ranti, F. Kartawidjajaputra, L. Antono, R. Dijaya, N.A. Taslim, G. Rizzo, F. Nurkolis, Soy-Based Tempeh Rich in Paraprobiotics Properties as Functional Sports Food: More Than a Protein Source, Nutrients 15 (2023) 1–11. https://doi.org/10.3390/nu15112599. [Google Scholar]
- S. Ketnawa, P. Chaiwut, S. Rawdkuen, Pineapple wastes: A potential source for bromelain extraction, Food Bioprod. Process. 90 (2012) 385–391. https://doi.org/10.1016/j.fbp.2011.12.006. [CrossRef] [Google Scholar]
- M.A. Hossain, S.M.M. Rahman, Total phenolics, flavonoids and antioxidant activity of tropical fruit pineapple, Food Res. Int. 44 (2011) 672–676. https://doi.org/10.1016/j.foodres.2010.11.036. [Google Scholar]
- R.W. Goff, H Douglas; Hartel, Ice Cream, 7th Editio, Springer New York, 2013. [Google Scholar]
- B. Wu, R.W. Hartel, The Science of Ice Cream Meltdown and Structural Collapse : A Comprehensive Review, (2025) 1–17. https://doi.org/10.1111/1541-4337.70226. [Google Scholar]
- X. Liu, G. Sala, E. Scholten, Current Research in Food Science Role of polysaccharide structure in the rheological , physical and sensory properties of low-fat ice cream, Curr. Res. Food Sci. 7 (2023) 100531. https://doi.org/10.1016/j.crfs.2023.100531. [Google Scholar]
- M.R. Muse, R.W. Hartel, Ice Cream Structural Elements that Affect Melting Rate and Hardness, J. Dairy Sci. 87 (2004) 1–10. https://doi.org/10.3168/jds.S0022-0302(04)73135-5. [Google Scholar]
- M.A.G.Q. I. C. Antunes, R. Bexiga, C. Pinto, L. C. Roseiro, Cow’s Milk in Human Nutrition and the Emergence of Plant-Based Milk Alternatives, Foods 12 (2023) 1–21. https://doi.org/10.3390/foods12010099. [Google Scholar]
- C. Méndez-Velasco, H.D. Goff, Fat structure in ice cream: A study on the types of fat interactions, Food Hydrocoll. 29 (2012) 152–159. https://doi.org/10.1016/j.foodhyd.2012.02.002. [Google Scholar]
- D.N.A. S Sa’adah, O M Candra, G Nugrahani, A Pramono, Nutritional composition, glycemic index, glycemic load, and organoleptical quality of glucomannan- enriched soy milk ice cream, IOP Conf. Ser. Earth Environ. Sci. 102 (2018). https://doi.org/10.1088/1755-1315/102/1/012014. [Google Scholar]
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