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March 2018 in “Experimental Dermatology” Treg dysfunction is linked to various autoimmune skin diseases, and understanding Treg properties is key for new treatments.
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June 2007 in “Cell Stem Cell” Removing the ATR gene in adult mice causes rapid aging and stem cell loss.
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December 2011 in “Journal of Investigative Dermatology” Sox2-positive dermal papilla cells have unique characteristics and contribute more to skin and hair follicle formation than Sox2-negative cells.
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March 2010 in “Histochemistry and cell biology” Skin cells can help create early hair-like structures in lab cultures.
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June 2005 in “Journal of the European Academy of Dermatology and Venereology” A man with HIV developed skin and hair issues after starting HIV treatment, which improved with topical treatment.
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December 2008 in “Journal of The American Academy of Dermatology” Finasteride can cause a unique skin reaction on the penile shaft.
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October 2018 in “JCI insight” CD8+ T cells are involved in alopecia areata and may cause disease relapse.
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March 1996 in “Proceedings of the National Academy of Sciences” CD18-deficient mice developed psoriasis-like skin disease, useful for studying inflammatory skin disorders.
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July 2017 in “Structure” FGF9 controls which receptors it binds to through a process where two FGF9 molecules join, and changes in FGF9 can lead to incorrect receptor activation.
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October 2017 in “Behavioural Pharmacology” Fluoxetine's effectiveness as an antidepressant in mice depends on a specific protein activity and a 5-minute pretest.
November 2025 in “Archiv für Pathologische Anatomie und Physiologie und für Klinische Medicin” Sporadic trichoblastic neoplasms generally don't recur or spread, with one case showing a specific genetic fusion.
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March 2017 in “Oncotarget” SOCS3 treatment can prevent hair loss by stopping harmful immune responses.
October 2025 in “Carbohydrate Polymer Technologies and Applications” TM-β-CD improves finasteride's solubility and delivery, while β-CD offers better long-term release.
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June 2025 in “Cell Reports” Clonally expanded CD8+ T cells cause alopecia areata.
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March 2024 in “Journal of Investigative Dermatology” SPRY1 deficiency in skin cells causes stem cells to move to the skin surface, leading to increased pigmentation.
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September 2022 in “Frontiers in Immunology” Soluble CD83 speeds up wound healing and reduces scarring.
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July 2020 in “International Journal of Pharmaceutics” Finasteride's solubility improves with native y-CDs, enhancing hair loss treatment and reducing side effects.
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January 2022 in “The Application of Clinical Genetics” A young Russian girl with Meier-Gorlin syndrome has two new mutations in the CDC6 gene.
January 2026 in “Clinical Dermatology Review” Platelet-rich plasma therapy improves hair growth and health in androgenetic alopecia better than some FDA-approved treatments.
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January 2024 in “Science Advances” Touch dome keratinocytes in adult skin have traits of different skin cell types.
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May 2024 in “International Journal of Molecular Sciences” Targeting CD169+ skin macrophages may help treat psoriasis.
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September 2019 in “EMBO Molecular Medicine” CDK4/6 inhibitors can protect hair cells from chemotherapy damage.
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August 2016 in “American Journal Of Pathology” Fibroblast changes in systemic sclerosis may help understand disease severity and treatment.
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October 2022 in “Cell Regeneration” A new mouse model effectively mimics vitiligo for research and drug testing.
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August 2025 in “Journal of Translational Medicine” CD44 signaling can help heal wounds without scars.
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May 2025 in “BMC Cancer” CDK4/6 inhibitors affect safety and quality of life differently, requiring careful use.
October 2015 in “Elsevier eBooks” Aldesleukin can treat certain cancers and increase HIV patient CD4+ counts but often causes severe side effects.
September 2025 in “JID Innovations” Squaric acid dibutylester promotes hair growth by activating immune cells, especially macrophages.
March 2022 in “Clinical Cosmetic and Investigational Dermatology” CDKN2AIP gene is less active in nevus sebaceous, affecting related RNA networks.
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November 1998 in “Journal of Biological Chemistry” Mouse and human keratin 16 can both form filaments, with differences likely due to the tail domain, not the helical domain.