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May 2024 in “ACS Applied Materials & Interfaces” PCL nanoscaffold-based liver spheroids are effective for drug screening and studying liver toxicity.
Chirality influences the structure, strength, and biological uses of peptide-based hydrogels.
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September 2019 in “International Journal of Nanomedicine” RADA16-I can effectively deliver and release mangiferin, improving its solubility and bioavailability.
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August 2022 in “Frontiers in Physiology” Finasteride may help treat kidney disease caused by a high-fat diet by reducing harmful toxins and improving gut bacteria.
105 citations
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December 2017 in “Journal of Biological Engineering” Artificial skin grafts face immune rejection, but stem cells may improve future designs.
October 2025 in “International Journal of Women’s Dermatology” Many women's hair growth products contain harmful ingredients, but eco-friendly options are available.
June 2025 in “Molecular Therapy — Nucleic Acids” A new treatment using a DNA aptamer can promote hair growth by targeting a specific receptor.
July 2025 in “Cosmoderma” The plant-based supplement improved hair, skin, and nail health and boosted well-being without side effects.
76 citations
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October 2016 in “Clinics in dermatology” Sex hormones, especially androgens, play a key role in causing acne.
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October 2015 in “Journal of Cosmetic Dermatology” The serum improved skin aging signs by enhancing cell metabolism and reducing wrinkles.
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May 2024 in “Molecules” Glycyrrhetinic acid from licorice may help treat acne by reducing inflammation and oil production.
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November 2020 in “Nature Materials” Hydrogel scaffolds can help wounds heal better and grow hair.
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November 2025 in “International Journal of Molecular Sciences” Balancing good and harmful microbes is key to healing chronic wounds.
December 2024 in “Biochemical and Biophysical Research Communications” LMWP-PDGFA shows promise for improving hair health and treating hair loss with fewer side effects.
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April 2023 in “Scientific Reports” Self-assembling RADA16-I hydrogels with bioactive peptides significantly improve wound healing.
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August 2022 in “Microbial Cell Factories” Balancing skin microbiota is crucial for healthy skin and treating skin diseases.
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March 2022 in “Frontiers in Bioengineering and Biotechnology” Bioengineered scaffolds help heal skin wounds, but perfect treatments are still needed.
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January 2009 in “Biochemistry” Vitamin D receptor binds similarly to natural and synthetic ligands, affecting gene regulation.
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December 2020 in “PLANT PHYSIOLOGY” A mutant FERONIA gene affects root hair growth at high temperatures.
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December 2020 in “International Journal of Molecular Sciences” Treatments for PCOS aim to reduce androgen levels and improve insulin sensitivity to lower cardiometabolic risk.
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March 2024 in “Sustainability” Using food industry waste and fermentation can create sustainable cosmetics.
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January 2023 in “Frontiers in Immunology” Skin-associated adipocytes help protect the skin from infections by supporting its immune barrier.
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October 2023 in “Molecular cancer” New treatments like nanotechnology show promise in improving skin cancer therapy.
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December 2024 in “Pharmaceutics” Hydrogel microneedles offer a promising, minimally invasive way to treat diseases like cancer and hair loss, but need improvements in strength and standardization.
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July 2022 in “International Journal of Molecular Sciences” Skin cells release substances important for healing and fighting infection, and understanding these could improve skin disorder treatments.
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November 2025 in “Biomimetics” Hydrogels show promise in preventing and treating skin damage from radiation therapy.
July 2024 in “Current Pharmaceutical Design” Biodegradable polymers help wounds heal faster.
September 2023 in “Journal of Natural Fibers” Drying hair with a microfiber towel better maintains hair strength and structure than using a cotton towel or blow-drier.
New treatments for hair loss should target eight main causes and use specific plant compounds and peptides for better results.
June 2023 in “Frontiers in Bioengineering and Biotechnology” The conclusion is that accurately replicating the complexity of the extracellular matrix in the lab is crucial for creating realistic human tissue models.