13 citations
,
August 2024 in “iScience” This study found that 3D spheroid culture reprogrammed mesenchymal stem cells into a uniform immunosuppressive phenotype, suggesting potential therapeutic applications for inflammatory diseases like psoriasis.
109 citations
,
January 1997 in “Journal of Experimental Botany” This paper discusses the cellular and molecular processes involved in root hair growth in higher plants, focusing on cytological phenomena and the effects of growth regulators and mutations, but reports no new experimental findings.
May 2026 in “Journal of Controlled Release” 1 citations
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March 1998 in “Journal of Dermatological Science”
May 2023 in “Stem cell research & therapy” This study describes a novel method using force-triggered density gradient sedimentation for efficiently isolating dermal papilla cells from neonatal mouse skin, showing promise for hair follicle regeneration research.
45 citations
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November 2022 in “Acta Biomaterialia” This study developed a biomimetic 3-D co-culture system that enhances the hair-inductive properties of human dermal papilla cell aggregates, potentially improving hair follicle tissue engineering.
29 citations
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April 2020 in “Biomolecules” The study suggests that a 3D culture system using the RAD16-I peptide scaffold can help restore the original phenotype of hair follicle dermal papilla cells and support their osteogenic and adipogenic differentiation.
April 2018 in “Journal of Investigative Dermatology” Key signals for hair follicle formation were identified.
This study found that while 3D spheroid culture preserved sweat gland cell-specific markers better than 2D culture, their growth and structural organization were suboptimal, highlighting the need for improved culture systems.
April 2017 in “Journal of Investigative Dermatology” This study found that hyperproliferative stimuli dysregulated the balance of stem cell divisions in keratinocytes, suggesting potential treatment strategies for both benign and cancerous hyperproliferative diseases.
1 citations
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December 2023 in “Scientific reports” This study investigated the use of 3D cell culture technology to explore hair follicle regeneration, examining the impact of the 3D cellular environment on hair follicle morphogenesis and the effects of microwell depth on spheroid formation.
November 2022 in “Journal of Investigative Dermatology” This study observed that three-dimensional cultures of dermal papilla cells enhanced endothelial cell migration and angiogenesis in vitro, which may improve vascularization in tissue-engineered skin constructs.
January 2026 in “Burns & Trauma” Low oxygen and metabolic changes help organoids grow and repair tissues.
January 2019 in “Institutional Repositories DataBase (IRDB)” This study developed in vitro methods to regenerate hair follicles and erector muscles by mimicking their native structures and mechanical conditions, reconstructing hair follicle-like structures and forming muscle-like tissues.
38 citations
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June 2016 in “Nanomedicine: Nanotechnology, Biology and Medicine” In this study, the RADA-PRG hydrogel enhanced SKP proliferation, survival, and gene expression, effectively supporting hair follicle regeneration in mice.
In this study, researchers developed a mathematical model of outer hair cell hair bundles that replicates experimental responses to mechanical stimuli, providing insights into the stimulus-dependent adaptation mechanisms and the functional significance of their three-row stereocilia configuration in mammalian hearing.
11 citations
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May 2010 in “Pigment Cell & Melanoma Research” This study reviews the genetic mechanisms behind cat coat patterns, revealing that specific loci determine tabby variations and suggesting these patterns could unravel broader developmental and evolutionary biology insights.
February 2024 in “Advanced Science” This study highlights that a novel radially aligned nanofiber scaffold with dual growth factor gradients significantly enhances wound healing, promoting cell migration, epidermal regeneration, and angiogenesis, ultimately leading to improved wound closure, immune regulation, and tissue remodeling compared to other groups.
30 citations
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February 2010 in “The journal of investigative dermatology/Journal of investigative dermatology” This study found that the orphan protein Plet-1 is expressed in specific keratinocytes of mouse hair follicles and may regulate keratinocyte interactions with inert tissues by affecting migration and adhesion.
January 2000 in “Medical Entomology and Zoology”
92 citations
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August 2017 in “Proceedings of the National Academy of Sciences of the United States of America” This study found that newborn mouse skin organoids can robustly grow hair in vivo, while adult organoids require specific interventions to restore their hair-forming ability.
3 citations
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September 2019 in “Clinical and experimental dermatology” This study found that basal cell carcinoma cells differentiate along hair follicle lineages and may be influenced by hair follicle cycle modulators for potential therapeutic targeting.
7 citations
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May 1993 in “Journal of the European Academy of Dermatology and Venereology” This review examines the role of cell adhesion molecules in the pathogenesis of various inflammatory and neoplastic skin diseases, suggesting their potential utility in diagnosis and treatment without presenting new clinical results.
January 2025 in “SSRN Electronic Journal”
4 citations
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January 2015 in “Journal of clinical & experimental dermatology research” This study observed a slight improvement in hair density in men with androgenetic alopecia treated with autologous platelet rich plasma, but only two cases showed cosmetic improvement.
3 citations
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July 2018 in “International Journal of Research -GRANTHAALAYAH” This paper compiles previously observed similarities in biomagnetic fields emitted by human hair and mouse vibrissa follicles, with findings supporting distinctive patterns of biomagnetic activity skewed to one side.
March 2026 in “Acta Histochemica” 4 citations
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December 2018 in “Zenodo (CERN European Organization for Nuclear Research)” This study reports that in vitro experiments suggest biomagnetic cross-talk between red blood cells and human hairs as a potential factor influencing RBC deformation.
April 2019 in “The journal of investigative dermatology/Journal of investigative dermatology” This study found that manipulating both gene expression and matrix stiffness in mice can alter hair regeneration after skin wounding, highlighting key factors in regenerative biology.
11 citations
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May 2018 in “Philosophical Transactions of the Royal Society B” This review covers recent developments in materials for in vitro and in vivo stem cell manipulation, highlighting innovative substrate properties but does not report new experimental results.