September 2025 in “Institutional Repositories DataBase (IRDB)” Lactic acid bacteria fermentation can turn waste into valuable skincare ingredients.
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July 2020 in “International Journal for Research in Applied Science and Engineering Technology” Pseudomonas DL17 can completely break down the harmful dye Sunset Yellow FCF in 48 hours.
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October 2015 in “Journal of bioactive and compatible polymers” Keratin hydrogel from human hair is a promising biocompatible material for soft tissue fillers.
January 2025 in “International Journal For Multidisciplinary Research” The soap strips are effective and eco-friendly anti-fungal alternatives.
January 2026 in “Eng—Advances in Engineering” Berry extracts improve fabric strength and flexibility, making it suitable for medical and cosmetic uses.
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March 2024 in “Sustainability” Using food industry waste and fermentation can create sustainable cosmetics.
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August 2023 in “Life” Bioinspired polymers are promising for advanced medical treatments and tissue repair.
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September 2013 in “Materials Science and Engineering C” Keratin-based hydrogels from human hair and wool are promising for wound dressings and are more eco-friendly.
September 2021 in “Crop research/Crop Research” Aluminum foil packaging kept the biotin nutrition bar with the least bacteria after 30 days.
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October 2018 in “Фармацевтичний часопис” Biogenic surfactants should be explored as safer alternatives in dermatological products.
January 2026 in “International Journal of Cosmetic Science” Upcycled pineapple biopolymer is effective and eco-friendly for skincare, suncare, and haircare.
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December 2006 in “Annals of the New York Academy of Sciences” Green algae can break down finasteride, reducing environmental harm.
September 2025 in “Journal of Polymer Science” Functionalized bacterial cellulose can improve medical tissue engineering.
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September 2019 in “ACS omega” The new nanocomposite films are stronger, protect against UV, speed up wound healing, and are antibacterial without being toxic.
October 2025 in “International Journal of Women’s Dermatology” Many women's hair growth products contain harmful ingredients, but eco-friendly options are available.
March 2026 in “ACS Omega” The hydrogel significantly speeds up wound healing and improves skin recovery.
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May 2024 in “Biomimetics” Bioactive biopolymers can improve diabetic wound healing by enhancing tissue regeneration.
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March 2022 in “Exploration” Bioactive inorganic particles-based biomaterials show promise for improving skin wound healing.
Deep eutectic solvents can replace toxic solvents in extracting useful compounds for medicines.
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July 2025 in “Scientific Reports” Acinetobacter strain A1-4-2 can safely clean water pollutants.
August 2025 in “International Journal of Biological Macromolecules” A new hydrogel can kill resistant bacteria and help heal infected burn wounds.
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January 2023 in “Bioresource Technology Reports” Enzymes can release hydrocarbons from Botryococcus braunii without harming cells, suggesting potential for continuous extraction.
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July 2025 in “Chemical Engineering Journal” The hydrogel dressing effectively treats infected wounds by combining infection control and tissue regeneration.
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March 2010 Green technologies can make the pharmaceutical industry more sustainable by reducing waste.
June 2026 in “ACS Applied Materials & Interfaces” Dandelion-derived carbon dots effectively kill bacteria and speed up wound healing.
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December 2023 in “Materials” Organic and biogenic nanocarriers can improve drug delivery but face challenges like consistency and safety.
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September 2022 in “Materials Today Bio” Adhesive hydrogels with natural antibacterial agents are effective wound dressings that promote healing and prevent antibiotic resistance.
July 2020 in “Environmental Science and Pollution Research” Finasteride harms invertebrates' survival and burial ability.
Dandelion-derived carbon dots effectively kill bacteria and speed up wound healing.
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September 2019 in “ACS Biomaterials Science & Engineering” Probiotic nanoscaffolds significantly improved burn healing and infection control in mice.