December 2024 in “Journal of Cosmetic Dermatology” In this study, researchers performed the first integrated transcriptomic and proteomic analysis of scalp biopsies from male androgenetic alopecia patients, finding a significant association between PPAR signaling pathways and AGA, with ME1 identified as a key regulator in this process.
1 citations
,
August 2023 in “Journal of cutaneous pathology” This case report describes an 8 cm giant pilomatricoma on a 67-year-old man's scalp, revealing distinct transcriptional patterns related to hair follicle factors and keratin through spatial gene expression analysis.
September 2022 in “bioRxiv (Cold Spring Harbor Laboratory)” This study found that hair follicles and urine cell pellets from noninvasive samples may be the most promising for transcriptomic analyses due to their consistent quality and applicability to disease-relevant research.
March 2025 in “Animal Bioscience” In this study, researchers conducted a whole-transcriptome analysis of Dazu Black Goats and Inner Mongolia Cashmere Goats to explore differences in hair follicle development and melanin production, revealing variations in hair characteristics and 640 differentially expressed RNAs that could inform goat breeding and textile applications.
9 citations
,
December 2023 in “BMC Genomics” This study examined noninvasive tissue samples, including buccal swabs, hair follicles, saliva, and urine cell pellets, and found hair follicles and urine cell pellets promising for transcriptomic and clinical analyses due to their sample quality and performance in disease-relevant applications.
2 citations
,
April 2022 in “Genes” This study identifies a polygenic basis for atypical recurrent flank alopecia in Cesky Fousek dogs through genome-wide association analysis and gene expression profiling, highlighting several metabolic pathways involved in the condition.
173 citations
,
August 2015 in “Developmental cell” This study characterizes gene expression patterns in embryonic hair follicle progenitors and their niche, identifying signaling pathways like axon guidance that may drive cellular rearrangements for hair follicle formation.
15 citations
,
March 2022 in “Frontiers in Bioengineering and Biotechnology” This study found that fucoidan significantly inhibited lung cancer cell phenotypes while sparing normal cells and altered gene expression, suggesting its potential for lung cancer therapy.
23 citations
,
August 2017 in “Genome” This study identified several genes and signaling pathways, such as Wnt and MAPK, involved in fur development in Chinchilla rex rabbits, providing insights into skin and hair follicle growth.
July 2022 in “The journal of investigative dermatology/Journal of investigative dermatology” In this study, researchers created a comprehensive transcriptome map of human hair follicle compartments, identifying compartment-specific genes and providing a resource for potential therapeutic interventions.
10 citations
,
December 2017 in “Physiological Reports” In this study, hair follicle transcriptomic responses to a 10-day HIIT program revealed both existing and new biomarkers, such as certain miRNAs, offering a potentially effective way to monitor cellular and molecular HIIT adaptations.
This study identified the combination of NCBP3, SDHA, and PTPRA as stable reference genes for normalizing gene expression in goat skin tissue research.
1 citations
,
May 2025 in “Scientific Reports” In this study, researchers analyzed skin tissues from two types of Jinlan Cashmere Goats and identified crucial non-coding RNA mechanisms potentially impacting cashmere yield, revealing significant DE lncRNAs, mRNA expressions, and pathways relevant to cashmere quality improvement.
August 2026 in “Animal Genetics” In this study, researchers analyzed hair follicle development in Yongqing Rex rabbits, finding dynamic changes in fur thickness, coat density, and hair structure across 1 to 6 months, along with fluctuations in follicle density and gene expression linked to hair growth and quality.
February 2021 in “Journal of Investigative Dermatology” This study found that specific junctional proteins are significantly downregulated in balding regions of the scalp in men with androgenetic alopecia, suggesting disrupted cell communication may play a role in hair loss.
16 citations
,
December 2020 in “PloS one” In this study, WNT10A was identified as a key gene in the development and maturation of skin hair follicles in fetal Inner Mongolian cashmere goats.
1 citations
,
November 2022 in “Frontiers in medicine” This study found differences in melanin content and gene expression in skin under black and white hair of giant pandas, providing a basis for further research on hair color distribution and skin diseases.
March 2026 in “Zenodo (CERN European Organization for Nuclear Research)” This study found that the combination of lithium and zinc demonstrated significant transcriptomic rescue in three datasets, with consistent results across methodologies, suggesting its potential targeting of DP-specific pathways.
March 2026 in “Zenodo (CERN European Organization for Nuclear Research)” This study found that the combination of lithium and zinc produced a statistically significant transcriptomic rescue across three datasets, with the strongest signal observed in a DP-enriched model, suggesting potential efficacy in targeting DP-specific pathways.
April 2024 in “Human genomics” This study identified MPB susceptibility genes and potential drug candidates that may help uncover molecular mechanisms and address male-pattern baldness.
November 2023 in “Journal of animal science/Journal of animal science ... and ASAS reference compendium” This study investigated differences in gene expression in the mammary glands of SLICK and wild-type Holstein cattle, finding limited differences overall but identifying enriched pathways related to arachidonic acid metabolism and oxytocin production, which merit further exploration.
1 citations
,
August 2019 in “Research Square (Research Square)” In this study, researchers found that the cashmere hair growth cycle is divided into three periods and key genes like KAP and KRTAP are positively correlated with these cycles in cashmere goats.
August 2024 in “STAR Protocols” This study details a step-by-step protocol for preparing mammalian skin samples, including hair follicles, for spatial transcriptomics to overcome challenges inherent in applying this technique to the skin.
April 2026 in “BMC Genomics” This study identified key molecular differences between Long and Short hair type cashmere goats, suggesting hair type differentiation is linked to structural assembly and follicle remodeling.
May 2020 in “Research Square (Research Square)” This study discovered that key genes like KAP3-1 and KRTAPs are closely linked to the growth cycle of cashmere in Inner Mongolian goats, identifying March as the primary cycle's onset.
21 citations
,
August 2024 in “Journal of Animal Science and Biotechnology/Journal of animal science and biotechnology” This paper reviews the advancements and applications of single-cell transcriptomics in animal research, highlighting its potential to enhance understanding of animal nutrition, health, genetics, and disease models.
10 citations
,
May 2025 in “Cell Biomaterials” This perspective highlights how advancements in single-cell sequencing and digital pathology can help understand the complex mechanisms of immune responses, fibrosis, and tissue remodeling related to medical implants, aiming to address the challenges of implant-related tissue reactions reported in this study.
July 2022 in “Journal of Investigative Dermatology” This study found that decreased TRPS1 expression in balding dermal papilla cells may impair their signaling ability, contributing to hair follicle miniaturization in androgenic alopecia.
26 citations
,
May 2020 in “JCI Insight” In this study, single-cell sequencing revealed clonal expansions of CD4+ and CD8+ T cells in murine and human alopecia areata, supporting the development of predictive models for human disease.
3 citations
,
September 2024 This study developed 3DEEP, a tissue clearing and spatial transcriptomic method, to map hair follicle development in a single time point from a 12-hour-old mouse, detailing molecular stages, signaling dynamics, and structural changes within developing follicles.