12 citations
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April 2014 in “Molecular Medicine Reports” In this study, transcriptome analysis identified 68 differentially expressed miRNAs in human dermal papilla cells treated with hydrogen peroxide, suggesting they play a significant role in growth arrest and apoptosis.
11 citations
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May 2023 in “Proceedings of the National Academy of Sciences” This study found that hair follicle stem cells are stiff with high actomyosin contractility, while hair germ progenitors are soft and enlarge during quiescence, influencing hair regeneration; inducing miR-205 reduces contractility and activates regeneration in mice.
10 citations
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May 2020 in “Frontiers in cell and developmental biology” In this study, researchers found that Dicer, but not Tarbp2, plays a crucial role in regulating the growth phase of hair follicles in post-natal mice.
9 citations
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June 2019 in “Cell cycle/Cell cycle (Georgetown, Tex. Online)” A specific RNA increases hair stem cell growth and skin healing by affecting a protein through interaction with a microRNA.
9 citations
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April 2019 in “Bioscience, biotechnology, and biochemistry” This research identified key miRNAs involved in sheep fetal hair follicle development, highlighting the prolactin signaling pathway and platelet activation as critical processes in secondary follicle initiation.
8 citations
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October 2020 in “Stem cell research & therapy” This study found that DNMT1 promotes adipogenesis in hair follicle stem cells by regulating the miR-214-3p/MAPK1/p-ERK1/2 pathway, suggesting potential applications in stem cell therapy.
8 citations
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July 2017 in “The journal of investigative dermatology/Journal of investigative dermatology” This study identified four circulating microRNAs as highly predictive of frontal fibrosing alopecia status, suggesting potential roles in diagnostics and disease understanding.
8 citations
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March 2015 in “Molecular Medicine Reports” This study found that para-phenylenediamine induces cytotoxic effects in normal human hair dermal papilla cells by altering microRNA expression and causing cell death, cell cycle arrest, and oxidative stress.
7 citations
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January 2020 in “Scientific Reports” This study identified differentially expressed miRNAs between the telogen and anagen phases of hair growth in Wan Strain Angora rabbits, contributing to understanding miRNA-mediated regulation of rabbit hair follicle cycling.
3 citations
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April 2022 in “Biomolecules” This study found that the MIR34A rs2666433 (A/G) variant is linked to increased risk and severity of alopecia areata, and high circulatory miR-34a levels may play a role in the disease's pathogenesis.
3 citations
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January 2018 in “Biomedical dermatology” This study found that epigallocatechin-3-gallate (EGCG) may reduce paclitaxel-induced apoptosis in human dermal papilla cells by regulating microRNA expression related to apoptosis and cell proliferation.
2 citations
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February 2022 in “Human Gene Therapy” This study found that upregulated miR-149 restricted hair follicle stem cell differentiation and hair growth by inhibiting the MAPK1/ERK2 pathway, which affects FGF2 and c-MYC expression.
1 citations
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August 2025 in “Frontiers in Medicine” This review discusses the roles of microRNAs (miRs) in dermatological diseases and suggests they could be promising targets for innovative skin disease treatments, although further research is needed for clinical application.
1 citations
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July 2024 in “International Journal of Molecular Sciences” In this study, miR-181a was found to inhibit the proliferation and induction abilities of ovine dermal papilla cells by targeting the GNAI2 gene and affecting the Wnt/β-Catenin signaling pathway, highlighting its role in the regulation of hair follicle growth and development.
1 citations
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January 2024 in “International journal of molecular sciences” This review outlines that in women with PCOS, microRNAs (miRNAs) are abnormally expressed in various tissues compared to those without the condition, suggesting these miRNAs as potential biomarkers and therapeutic targets, given their role in pathways critical to PCOS and potential interactions affecting reproductive outcomes.
1 citations
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March 2023 in “PloS one” In this study, researchers identified key mRNA and microRNA regulatory mechanisms that influence cashmere growth in cashmere goats under different photoperiods, potentially offering new methods to enhance cashmere production.
1 citations
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September 2022 in “The journal of investigative dermatology/Journal of investigative dermatology” This study found that miR-148a plays a significant role in regulating skin homeostasis and hair follicle cycling, influencing stem cell activity and development in mice.
1 citations
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June 2018 in “World rabbit science” This study identified differentially expressed microRNAs between back and belly skin in Rex rabbits, highlighting their potential roles in skin development processes.
May 2026 in “The FASEB Journal” In this integrative study, the researchers examined microRNA-mRNA networks related to androgenetic alopecia and found that miR-146b-5p may promote hair growth and improve inflammation, highlighting a potential therapeutic target for the condition.
March 2026 in “Biomolecules” This review highlights the critical role of microRNAs in regulating hair follicle biology, significantly impacting wool and cashmere development by modulating gene expression and signaling pathways in sheep and goats.
March 2026 in “Dermatology and Therapy” This study identified distinct plasma miRNA profiles in alopecia areata that may aid in diagnosis and therapy, but further validation is needed to confirm these exploratory findings.
October 2025 in “Gene Expression” This review explores the potential of exosomes, which contain substances that may stimulate hair follicle activity, as a new therapeutic strategy for alopecia, and discusses their possible benefits and risks based on current knowledge of microRNAs and intracellular signaling in hair follicle morphogenesis.
August 2025 in “BMC Research Notes” In this study, researchers found that the microRNA profiles of induced pluripotent stem cells (iPSCs) derived from different adult cell types are largely similar, although each line exhibits some unique gene expression, distinct from both their cells of origin and embryonic stem cells.
July 2025 in “Biochimica et Biophysica Acta (BBA) - Molecular Cell Research” In this study, researchers identified the miR-22-3p/CLIC4 signaling pathway as a key regulator in hair follicle miniaturization among androgenetic alopecia models, suggesting that targeting CLIC4-mediated sonic hedgehog pathway disruption may offer new therapeutic strategies for AGA treatment.
June 2025 in “International Journal of Nutrology” In this systematic review, various nutrients and diets, such as a plant-based diet and supplements like omega-3 fatty acids, were found to impact tissue regeneration, skin health, and wound healing, highlighting the role of nutrient-sensitive signaling pathways in these processes.
May 2025 in “Preprints.org” This study identified a unique circulating microRNA signature associated with severe alopecia areata, distinguishing it from other inflammatory skin conditions and suggesting these miRNAs as non-invasive biomarkers for diagnosis and potential therapeutic targets.
November 2023 in “Elsevier eBooks” In this chapter, researchers discuss how microRNAs (miRNAs) interact with vitamin D signaling, highlighting their emerging role as mediators in vitamin D-regulated disorders and their potential for developing miRNA-based clinical applications.
January 2023 in “Annals of dermatology/Annals of Dermatology” This study found that overexpression of miR-1246 in peripheral CD4+ T cells can reduce markers associated with inflammation and T cell activation in severe active alopecia areata, suggesting potential therapeutic benefits.
December 2022 in “bioRxiv (Cold Spring Harbor Laboratory)” This study found that inducing miR-205 reduces actin contractility and stiffness in hair follicle stem cells and progenitors, stimulating hair regeneration in both young and old mice.
July 2018 in “Benha Journal of Applied Sciences” In this study, researchers found that patients with alopecia areata had significantly higher levels of miR-203 in their skin compared to healthy controls.