28 citations
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December 2018 in “Plant, cell & environment/Plant, cell and environment” A protein called PLC2 is important for the growth and development of plant roots influenced by auxin.
19 citations
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May 2016 in “Biology Direct” A new method, iSiMPRe, effectively identifies key protein regions in cancer genes, highlighting potential drug targets.
7 citations
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October 2023 in “BMC Genomics” Noncoding RNAs help determine cashmere quality in goats.
2 citations
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July 2023 in “Plant Disease” Some maize lines resist stalk rot better due to specific genes and enzyme activities.
10 citations
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January 2019 in “Skin Research and Technology” Southern Chinese women with female pattern hair loss have less, thinner hair and smaller hair follicles.
66 citations
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June 2004 in “Development” FGF signaling is crucial for starting feather development in chicken embryos.
2 citations
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July 2021 in “Genes” A specific genetic change in the KRT71 gene causes a hair loss condition in Hereford cattle.
21 citations
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April 2014 in “PLoS ONE” A rare gene variant causes hair and nail issues in a family.
9 citations
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August 2020 in “Ecological indicators” Laser ablation ICP-MS is effective for tracking trace elements in polar bear hair over time.
September 2019 in “Journal of Investigative Dermatology” Specialized ribosomes affect aging in human skin cells.
April 2024 in “The Journal of urology/The journal of urology” SRD5A2 methylation in blood can predict how well someone will respond to finasteride treatment.
2 citations
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March 2007 in “The journal of investigative dermatology/Journal of investigative dermatology” A new type of hereditary hair loss in a Chinese family is linked to chromosome 2p25.1–2p23.2.
Skin cells can naturally limit the growth of cancerous changes by balancing cell renewal and differentiation.
September 2022 in “Research Square (Research Square)” Increasing Rps14 helps grow more inner ear cells and repair hearing cells in baby mice.
June 2003 in “Faculty Opinions – Post-Publication Peer Review of the Biomedical Literature” GLABRA2 represses root hair formation by inhibiting a specific gene.
421 citations
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September 2003 in “Development” Stem cell behavior varies with stimuli, and lineage changes can happen without affecting stem cell division.
1 citations
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January 2012 The CRABP I gene in cashmere goats is highly conserved but has unique features at specific amino sites.
19 citations
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May 2001 in “Endocrinology” Mrp3 may aid in wound healing and hair growth.
12 citations
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January 2015 in “Indian Journal of Dermatology, Venereology and Leprology” A mother and daughter with similar hair loss conditions and identical HLA types suggest a genetic link between the conditions.
10 citations
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December 2017 in “Physiological Reports” Hair follicle analysis can track body changes from high-intensity interval training.
November 2020 in “UNC Libraries” Seven new genetic risk areas for prostate cancer were found.
October 2023 in “Cell & bioscience” A special gene region controls the re-emergence of a primitive wool type in Merino sheep, improving their wool yield and adaptability.
July 2025 in “Journal of Investigative Dermatology” Scarring alopecia involves increased immune cells and specific gene changes near damaged hair follicles.
5 citations
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November 2005 Confocal Laser Scanning Microscopy is effective for tracking compounds in the skin.
2 citations
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July 2011 in “AFRICAN JOURNAL OF BIOTECHNOLOGY” Seven genetic variations in sheep's DSG4 gene are linked and affect wool traits.
December 2016 in “Chin J Anat Clin” Rat hair follicle stem cells can be effectively isolated and used for tissue engineering.
1 citations
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December 2024 in “BMC Genomics” Nuptial pads in Chinese brown frogs change seasonally due to specific gene activity.
January 2010 in “China Animal Husbandry & Veterinary Medicine” RORs may influence cashmere growth cycles.
13 citations
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February 2025 in “Nature Communications” A new neural network helps identify key regulators in cell changes, aiding in understanding diseases and finding new treatments.
August 2025 in “BMC Research Notes” iPSC lines from different tissues share a common miRNA profile, supporting their pluripotent nature.