120 citations
,
February 2009 in “Apoptosis” This review examines apoptotic and anti-apoptotic mechanisms in skin homeostasis and related diseases but presents no new research findings.
108 citations
,
July 2002 in “Molecular and cellular biology” This study found that overexpressing Dsg3 in the suprabasal epidermis of transgenic mice resulted in flaking skin and abnormal hair growth, supporting Dsg3's role in regulating epidermal differentiation.
85 citations
,
July 2012 in “Cold Spring Harbor perspectives in biology” This article discusses the roles of epidermal stem cells in maintaining skin homeostasis and highlights how deregulation in signaling pathways may lead to cancer, but it reports no new experimental results.
84 citations
,
January 2008 in “Cold Spring Harbor Symposia on Quantitative Biology” This article reviews recent advancements in understanding skin stem cells and their roles in maintaining epidermal homeostasis and repairing wounds, without presenting new experimental findings.
76 citations
,
July 2019 in “Cellular and Molecular Life Sciences” This article reviews the role of stem cells in tissue development, tumor formation, and organoid generation, and highlights the potential of epigenetic regulation in advancing regenerative medicine and cancer treatment, without presenting new experimental results.
39 citations
,
August 2022 in “Cell Death and Disease” This study found that a dopamine-methacrylated hyaluronic acid hydrogel enhances the efficacy of adipose-derived stem cells in promoting skin regeneration, potentially involving the Notch signaling pathway.
23 citations
,
November 2018 in “Development, Growth & Differentiation” This review discusses the role of stem cell heterogeneity and compartmentalization within the epidermis and highlights their significance as niches for neighboring cells, without reporting new experimental results.
18 citations
,
September 1990 in “Veterinary Dermatology” This study in SPF lambs found that primary and secondary orf virus infections trigger similar skin responses, but the primary infection caused a more severe and prolonged reaction.
15 citations
,
August 2013 in “Stem Cells and Development” This study proposes a two-step method that may enhance the generation of stem-like epidermal cells with superior proliferation and differentiation potential for skin regeneration.
15 citations
,
January 2012 in “Journal of Veterinary Science” This study examined variations in epidermal thickness and protein expression across different dog breeds, finding significant differences by anatomical site and breed, with associated mRNA and protein expression changes observed.
9 citations
,
November 2018 in “Journal of cosmetic dermatology” This study reports that a plant extract from Orobanche rapum can stimulate skin rejuvenation and protect cutaneous microbiota, potentially creating healthier skin.
9 citations
,
May 2012 in “PLOS ONE” This study found that integrin-linked kinase is crucial for various epidermal functions, including differentiation and barrier formation, and also plays a previously unreported role in melanocyte development and function.
7 citations
,
March 2020 in “PloS one” This study demonstrates that α-parvin is crucial for epidermal morphogenesis and hair follicle development by mediating integrin-dependent adhesion and actin organization in keratinocytes.
6 citations
,
February 2012 in “American Journal of Animal and Veterinary Sciences” This review summarizes major growth factors that promote hair follicle growth, but it reports no new experimental findings.
6 citations
,
June 2011 in “British Journal of Dermatology” This study found that individuals with alopecia areata had significantly higher serum levels of retinol-binding protein 4 and increased IgG immunoreactivity against it, suggesting a role in the disease's pathogenesis.
5 citations
,
January 2009 in “Dermato-endocrinology” This study suggests that ADAM 10 and 12 proteases may play important roles in the regulation of hair cycling through their expression patterns in hair follicle structures.
3 citations
,
September 2005 in “Experimental dermatology” This review discusses the formation and structure of the cornified cell envelope in the epidermis, highlighting biochemical pathways and genetic factors, but presents no new experimental results.
2 citations
,
November 2023 in “International Journal for Research in Applied Science and Engineering Technology” This review explores various tissue regeneration technologies, highlighting how skin substitutes have significantly improved healing success rates for burn injuries, and examines cell-based therapies aimed at reducing scar formation and improving burn management.
2 citations
,
March 2020 in “International Journal of Molecular Sciences” This article reviews advanced strategies for enhancing drug delivery to cutaneous stem cells to improve treatment for skin conditions and reports no new experimental findings.
1 citations
,
January 2023 in “Przegląd Dermatologiczny” This case report describes a 64-year-old man with advanced colorectal cancer developing cutaneous side effects from panitumumab, highlighting the importance of early diagnosis and treatment to improve quality of life and therapy continuation.
1 citations
,
July 2020 in “bioRxiv (Cold Spring Harbor Laboratory)” This study found that centrosome ablation in developing epidermis triggers cell surveillance pathways, resulting in thinner skin and halted hair follicle growth, while later stages of epidermal growth may operate independently of basal progenitor division orientation.
1 citations
,
January 2018 in “Stem cell biology and regenerative medicine” This review discusses the roles of DNA methylation in skin development and regeneration, highlighting its impact on embryonic skin lineage, homeostasis, and potential therapeutic targets, but reports no new clinical results.
April 2024 in “Cell death and differentiation” This study discusses how different modes of regulated cell death in keratinocytes affect skin stem cell niches, and their role in skin inflammation, injury repair, and cancer, based on findings from human dermatological conditions and experimental mouse models.
September 2023 in “bioRxiv (Cold Spring Harbor Laboratory)” This study describes the use of a genetically engineered mouse model, mTurquoise2-Col4a1, to fluorescently label collagen IV and observe basement membrane dynamics during skin development, revealing its stability and pliability during rapid growth phases.
January 2018 in “Stem cell biology and regenerative medicine” This review discusses the interplay between signaling/transcription factor-mediated and epigenetic mechanisms in skin development and regeneration, highlighting the need for further exploration of epigenome reorganization in these processes.
49 citations
,
August 2004 in “The FASEB Journal” This study found that transgenic mice expressing human keratin K8 in the epidermis showed increased progression of skin lesions toward malignancy, suggesting a role for K8 in the development of invasive skin cancer.
26 citations
,
July 2012 in “Biochimica et Biophysica Acta (BBA) - General Subjects” This review discusses the identification and roles of different epidermal stem cell types in skin homeostasis and repair, and reports no new experimental findings.
22 citations
,
November 2018 in “Brazilian Journal of Pharmaceutical Sciences” This review discusses iontophoresis, low-frequency ultrasound, and microneedles for enhancing topical drug delivery in dermatological treatments and reports no clinical results; it emphasizes their mechanisms and potential uses.
12 citations
,
September 2020 in “Stem cell research & therapy” This study concluded that early-stage tissue-engineered skin substitutes, developed using skin progenitor cells, had a better graft efficiency and supported hair follicle formation, which may improve wound healing outcomes.
6 citations
,
October 2016 in “Journal of Cellular Physiology” This study found that human dermal fibroblasts can promote the viability and proliferation of microvascular endothelial cells in vitro, revealing important interactions at play in hair growth.