92 citations
,
January 2012 in “International Journal of Biological Sciences” The document introduced a new naming system for keratin-associated proteins to improve clarity and communication across species.
Gene editing holds promise for skin treatments but needs careful safety and ethical consideration.
4 citations
,
April 2023 in “bioRxiv (Cold Spring Harbor Laboratory)” The improved genome of the African spiny mouse helps study its tissue regeneration.
July 2023 in “Institutional Repositories DataBase (IRDB)” December 2025 in “Pharmaceutics” Personalized skin rejuvenation using genomics shows promise but needs more research.
May 2021 in “FEBS open bio”
74 citations
,
October 1998 in “Journal of biological chemistry/The Journal of biological chemistry” The 190-kbp domain contains all human type I hair keratin genes, showing their organization and evolution.
8 citations
,
March 2004 in “Mammalian genome” KAP genes are crucial for hair development and show both shared and unique traits in humans, chimpanzees, and baboons.
28 citations
,
July 1993 in “The journal of investigative dermatology/Journal of investigative dermatology” 46 citations
,
August 2020 in “International Journal of Genomics” Identifying specific genes helps improve goat breeding for better traits like growth and milk production.
117 citations
,
August 1999 in “Nature Genetics” July 2025 in “Genome biology” HT-scCAT-seq helps understand gene regulation in embryonic skin development.
149 citations
,
August 2022 in “Biochemistry (Moscow)” CRISPR-Cas9 allows precise DNA editing but raises ethical concerns about modifying human embryos.
February 2015 in “Oxford University Press eBooks” 32 citations
,
April 2024 in “Nature Biotechnology”
2 citations
,
April 2020 in “bioRxiv (Cold Spring Harbor Laboratory)” MendelVar is a tool that helps identify important genes by combining GWAS data with Mendelian disease information.
November 2020 in “Zenodo (CERN European Organization for Nuclear Research)”
4 citations
,
May 2017 in “Data in Brief” Five molecular elements identified as potential future targets for hair loss therapy.
The atlas maps maize peptides, showing complex regulation and varied roles across tissues and stages.
23 citations
,
October 1996 in “Dermatologic clinics” Genes affect cytokine production, which can influence chronic diseases, and certain interventions may help prevent related molecular damage.
2 citations
,
January 2010
June 2020 in “Journal of genetic medicine” The document's conclusion cannot be provided because the document is not accessible or understandable.
October 2022 in “Amplla Editora eBooks” The document's conclusion cannot be provided because the content is not available for analysis.
110 citations
,
February 2024 in “Journal of Chemical Information and Modeling” PandaOmics uses AI to find new disease treatment targets and biomarkers.
2 citations
,
October 2015 in “Human Gene Therapy” The congress highlighted new gene therapy techniques and cell transplantation methods for treating diseases.
1 citations
,
July 2022 in “bioRxiv (Cold Spring Harbor Laboratory)” Keratin gene expression helps understand different types of skin cells and their development, and should be used carefully as biological markers.
July 2024 in “Frontiers in Microbiology” Data-driven methods can help understand microbiota's role in diseases and develop personalized treatments.
77 citations
,
March 2000 in “Journal of Investigative Dermatology” The research identified six functional hair keratin genes and four pseudogenes, providing insights into hair formation and gene organization.
5 citations
,
June 2024 in “Phenomics”