2 citations
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December 2022 in “bioRxiv (Cold Spring Harbor Laboratory)” In this study, overexpression of miR-29 in mice led to aging-related phenotypes and early lethality, demonstrating its significant role in driving aging processes.
2 citations
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November 2022 in “Animal Bioscience” This study found that m6A-circRNA-ZNF638 enhances the activation of secondary hair follicle stem cells in cashmere goats by interacting with the miR-361-5p/Wnt5a pathway.
2 citations
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November 2021 in “Cell Biology International” This study found that overexpression of miR-122 in balding hair follicles may induce apoptosis in human dermal papilla cells by repressing IGF1R, suggesting a new potential pathological mechanism in androgenetic alopecia.
1 citations
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November 2024 in “Genes” This study suggests that miR-144 influences hair follicle dynamics through its impact on Lhx2, which could lead to advancements in cashmere production, fleece quality, and treatments for hair growth disorders.
1 citations
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May 2024 in “Animal Biotechnology” In cashmere goats, this study found that reducing miR-361-5p levels activates secondary hair follicle stem cells by upregulating the FOXM1 gene, which in turn stimulates the Wnt/β-catenin pathway, crucial for cashmere fiber morphogenesis.
1 citations
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December 2023 in “International journal of molecular sciences” In this study, researchers found that miR-199a-3p plays a regulatory role in hair follicle development via the PTPRF/β-catenin axis and established a mouse model of alopecia areata by downregulating this small RNA, suggesting its potential value in studying alopecia diseases.
1 citations
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January 2023 in “The FASEB Journal” This study found that circAGK was highly expressed in AGA patients and promoted dermal papilla cell apoptosis, suggesting it as a potential target for treating androgen alopecia.
1 citations
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December 2022 in “Animals” This study found that miR-27a may influence sheep hair follicle stem cell proliferation and apoptosis by targeting PIK3R3, affecting the AKT/MTOR pathway.
1 citations
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October 2022 in “Research Square (Research Square)” This study found that melatonin treatment in Cashmere goat kids enhances the density of secondary hair follicles and improves Cashmere quality by regulating the MAPK pathway and reducing cell apoptosis.
August 2026 in “Mendeley Data” In this study, researchers explored how hair follicle neural crest stem cell-derived exosomes, particularly those carrying miR-214-3p, promote neurite outgrowth and aid peripheral nerve regeneration, supported by detailed in vitro and in vivo data on nerve repair and functional recovery in rat models.
August 2026 in “Aesthetic Plastic Surgery” In this study, hair follicle stem cell-derived exosomes enriched with miR-181a-5p accelerated hair regrowth and the transition from telogen to anagen in mice, with up to 90% hair coverage observed, suggesting enhanced activation of the Wnt/β-catenin pathway compared to controls.
June 2026 in “Archives of Dermatological Research” In this study, the rs4541843 G > A variant was found to be significantly associated with increased risk and severity of alopecia areata, as well as elevated expression of hsa-miR-182-5p, suggesting their potential as molecular markers for diagnosis and severity assessment.
May 2026 in “Animal Bioscience” This study found that m6A-circHECA enhances the differentiation of stem cells into hair follicle lineages in cashmere goats by sequestering miR-449a-5p, boosting LEF1 gene expression, and activating the Wnt/β-catenin pathway.
April 2026 in “Frontiers in Cell and Developmental Biology” This study found that exosomes from human umbilical cord mesenchymal stem cells reduced hair follicle aging and promoted hair regeneration in models by upregulating COL17A1 through the miR-21-5p/DKK2/Wnt/β-catenin axis, outperforming existing treatments like minoxidil.
February 2026 in “Journal of Nanobiotechnology” This study reports that a new ROS-responsive hydrogel platform delivering miR-665 effectively reduced inflammation and promoted hair follicle regeneration in AA, suggesting a promising treatment approach.
February 2026 in “Figshare” In this study, researchers developed a biocompatible, ROS-responsive hydrogel to deliver miR-665 locally, effectively reducing inflammatory signaling and promoting hair follicle regeneration in an alopecia areata mouse model, offering a promising approach for targeted treatment.
February 2026 in “Figshare” This study found that a newly developed biocompatible hydrogel, responsive to reactive oxygen species, enabled targeted delivery of miR-665, significantly promoting hair regeneration and reducing T-cell infiltration in a mouse model of alopecia areata, suggesting a promising strategy for treating this condition.
January 2026 in “Stem Cell Research & Therapy” This study found that targeting the AR/miR-128-3p/IGF-1 pathway with ASLNC168501 shows potential for treating androgenetic alopecia by restoring hair follicle stem cell function and promoting hair regeneration.
January 2026 in “Mendeley Data” This dataset supports a study suggesting that hair follicle neural crest stem cell-derived exosomes carrying miR-214-3p may promote neurite outgrowth and aid peripheral nerve regeneration in vitro and in vivo.
January 2026 in “Current Issues in Molecular Biology” This study found that transfecting alpaca melanocytes with miR-5110 altered gene expression related to pigmentation, specifically identifying pathways like MAPK and Wnt as involved in melanogenesis regulation, providing insights into miR-5110's role in pigmentation processes.
January 2026 in “Regenerative Therapy” Low-frequency electromagnetic fields may help treat hair loss by promoting hair regrowth.
January 2026 in “Figshare” This study found that the loss of ASLNC168501 accelerates hair follicle stem cell dysfunction in androgenetic alopecia through activation of the AR/miR-128-3p/IGF-1 pathway, suggesting that restoring ASLNC168501 could be a promising therapeutic strategy for hair regeneration.
January 2026 in “Figshare” This study found that the ASLNC168501 pathway has significant potential for restoring hair follicle stem cell function and promoting hair regeneration in androgenetic alopecia by counteracting the AR/miR-128-3p/IGF-1 pathway dysfunction.
October 2025 in “Animals” This study explored the genetic regulation of goose feather follicle development, identifying miR-200a as a key regulator that inhibits GEDF proliferation through the Wnt pathway, potentially impacting goose down quality and supporting selective breeding strategies.
September 2025 in “Stem Cells Translational Medicine” This study found that exosomes from human umbilical cord stem cells, pretreated with lithium chloride, significantly enhance hair regeneration in mice by activating the Wnt signaling pathway through miR-146a-5p.
August 2025 in “Skin Research and Technology” This study discusses the potential of miR-200c-3p as a genetic marker and therapeutic tool for alopecia areata, but it highlights the need for additional methodological details and addresses discrepancies with previous findings on miRNA expression in hair-related processes.
July 2025 in “Burns & Trauma” In this study, researchers developed a new SFL-3D system to produce extracellular vesicles from rejuvenated dermal papilla cell spheroids, which demonstrated significant antifibrotic effects in reducing hypertrophic scarring, highlighting their potential for precision-targeted scar management.
May 2025 in “BMC Genomics” This study found that circ 0020938 suppresses hair follicle stem cell proliferation by interacting with the miR-142-5p/DSG4 axis, which aids in the hair follicle cycle's proper progression.
April 2025 in “Journal of Investigative Dermatology” This study discovered that exosomes from adipose-derived mesenchymal stem cells can mitigate damage in dermal papilla cells by modulating the TGF-β1/SMAD2 signaling pathway through miRNAs miR-574-3p and miR-125a-5p, revealing potential therapeutic targets for androgenetic alopecia.
April 2025 in “Archives of Dermatological Research” This research observed that overexpression of lncRNA H19 in human dermal papilla cells inhibited cell senescence and maintained hair follicle-inducing abilities by activating the Wnt signaling pathway, suggesting potential therapeutic strategies for androgenetic alopecia.