27 citations
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February 2023 in “Frontiers in Cell and Developmental Biology” This review discusses the expanded understanding of WNT10B's role in various tissues and diseases over the past decade, emphasizing its genetic correlations and potential therapeutic implications, but reports no new clinical results.
26 citations
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April 2019 in “Genes” In this study, researchers identified novel long non-coding RNAs related to cashmere fineness in goats, highlighting a potential regulatory network involving lncRNA XLOC_008679 and its target gene KRT35.
25 citations
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August 2017 in “Animal Biotechnology” This study identified and characterized several long noncoding RNAs in Cashmere goats, revealing complex regulatory roles in hair follicle development and growth, particularly within the Wnt signaling pathway.
24 citations
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May 2022 in “BMC Veterinary Research” This study identified key mRNAs and lncRNAs, along with related pathways, that play potentially important roles in hair follicle development and cycling in cashmere goats.
17 citations
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June 2020 in “Animals” This study identified differentially expressed mRNAs and lncRNAs in Hu sheep hair follicles, suggesting certain genes and pathways are involved in the development of wool curvature patterns.
17 citations
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June 2019 in “BMC genomics” This study cataloged several long non-coding RNAs and microRNAs in cashmere goat dermal papilla cells, suggesting these non-coding RNAs may play a role in hair follicle stem cell activation and hair growth.
9 citations
,
March 2015 in “The journal of investigative dermatology/Journal of investigative dermatology” This symposium reviewed various advances in understanding and potentially reversing skin aging, with no new experimental results reported.
7 citations
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September 2022 in “International journal of molecular sciences” This study identified and analyzed numerous lncRNAs, miRNAs, and mRNAs involved in hair follicle development in cashmere goats, highlighting key regulatory pathways and suggesting roles for specific RNAs in enhancing hair follicle cell proliferation.
7 citations
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August 2020 in “Animal biotechnology” This study found that lncRNA-599547 positively regulates the expression of the Wnt10b gene by interacting with miR-15b-5p, enhancing the inductive property of dermal papilla cells in cashmere goats.
2 citations
,
August 2013 in “Journal of Investigative Dermatology” This review discusses the dynamic changes in chromatin organization and nuclear morphology during cellular processes like differentiation and disease, highlighting recent advances in understanding these epigenetic mechanisms without presenting new experimental findings.
1 citations
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November 2025 in “Clinical and Experimental Medicine” This review highlights the emerging role of long non-coding RNAs (lncRNAs) in dermatology, suggesting that lncRNAs significantly impact signaling pathways involved in normal skin functions and skin diseases, offering potential as biomarkers and therapeutic targets.
1 citations
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May 2025 in “BMC Genomics” In this study, researchers identified key lncRNAs and target genes potentially involved in the transformation of the hair follicle cycle, which could advance understanding of lncRNAs' roles in hair follicle development.
This review synthesizes current advances in transcriptomics and RNA regulatory networks, alongside stem cell-derived skin organoid research, to propose a conceptual framework for understanding and potentially guiding regenerative skin repair, without claiming clinical readiness.
September 2024 in “PubMed” This study found that patients with alopecia areata have distinct mRNA and lncRNA expression profiles between normal and bald scalp areas, identifying differentially expressed genes and revealing potential biomarkers for diagnosis, with keratin family genes possibly playing a key role in the disease's pathogenesis.
March 2024 in “Cytologia” In this study, researchers observed that melatonin-mediated LncRNA MTC in Liaoning cashmere goat skin fibroblasts enhances cell proliferation by interacting with the GSTM1 protein, affecting its complex formation with ASK1 and thereby inhibiting apoptosis, which may be relevant for improving cashmere growth.
July 2023 in “Indian Journal of Animal Health” This study found that fibroblast growth factor 5 may enhance Cashmere goat hair growth by altering the expression of specific genes related to keratin and keratin-associated proteins.
May 2022 in “Frontiers in Cell and Developmental Biology” This study identified that in pig embryos, the miR-29a-5p/EDAR/lncRNA627.1 ceRNA complex plays a critical role in inhibiting hair placode precursor cells proliferation and regulating hair placode formation through the suppression of EDAR expression, which may provide insights into similar mechanisms affecting human hair conditions.
August 2019 in “Research Square (Research Square)” This study explored how long non-coding RNA mediates the effects of FGF5 on the hair follicle development and villus growth of Liaoning cashmere goats.
21 citations
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January 2020 in “Brazilian Journal of Medical and Biological Research” This study found that lncRNA H19 may regulate CTGF expression in KGN cells by acting as a "sponge" for miR-19b, potentially influencing polycystic ovary syndrome development.
4 citations
,
October 2024 in “Experimental Dermatology” In this study, researchers identified 173 differentially expressed genes in alopecia areata patients linked to immune and hair follicle pathways, constructed a regulatory network involving mRNA, miRNA, and lncRNA, and highlighted CD8A and FOXD2-AS1 as potential diagnostic markers and therapeutic targets.
3 citations
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September 2022 in “Animal biotechnology” This study found that knocking down lncRNA MTC in Liaoning Cashmere goat skin fibroblasts inhibited cell proliferation and increased apoptosis, suggesting its role in facilitating cell growth by regulating specific proteins.
2 citations
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November 2024 in “PeerJ” This study identified a wide range of differentially expressed lncRNAs and mRNAs in the hair follicles of Hetian sheep, which may be useful for further research on improving carpet wool quality.
This study found that the long non-coding RNA lnc056 promotes the proliferation of hair follicle stem cells by upregulating TRIP6 expression through interaction with the transcription factor HNRNPUL1, suggesting a potential target for hair loss treatment.
June 2023 in “Livestock studies” This review highlights the significance of animal fibers, examining the molecular mechanisms influencing hair follicle development and their impact on fiber quality and quantity, with a focus on studies involving Angora and cashmere goats.
April 2023 in “Research Square (Research Square)” This study found that melatonin-mediated lncRNA018392 accelerated cell proliferation and inhibited apoptosis in cashmere goat skin fibroblasts by upregulating the expression of the nearby gene CSF1R.
January 2022 in “Figshare” This study found that knocking down lncRNA MTC in Liaoning Cashmere goat skin fibroblasts reduced cell proliferation and altered protein expression, suggesting its role in hair growth and regulatory pathways.
January 2020 in “bioRxiv (Cold Spring Harbor Laboratory)” This study found that DNA methylation regulates hair follicle differentiation in cashmere goats by suppressing gene expression during induction and enhancing it during differentiation, with potential involvement of specific lncRNAs.
7 citations
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May 2022 in “PLOS ONE” This study found that Hetian sheep with higher wool density produce more and finer wool, with key genes potentially influencing their wool growth and density.
This study identified various non-coding RNAs (ncRNAs) and mRNAs differentially expressed in skin tissues of two coat types of Jinlan Cashmere Goats, suggesting potential regulatory networks that could inform precision breeding strategies to improve cashmere quality and yield.
12 citations
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August 2020 in “Frontiers in Genetics” This study suggests that the long noncoding RNA H19 helps dermal papilla cells maintain their hair follicle-inducing ability by activating the Wnt signaling pathway, potentially offering a therapeutic target for androgenetic alopecia.