A chronic wound model to investigate skin cellular senescence
暂无分享,去创建一个
J. Kirkland | D. Jurk | T. Tchkonia | J. Passos | Lilian S. Gomez | S. Wyles | B. Tekin | L. Prata | T. Pirtskhalava | A. Lagnado | C. Inman | P. Dashti
[1] A. Dopazo,et al. Senescence atlas reveals an aged-like inflamed niche that blunts muscle regeneration , 2022, Nature.
[2] G. Kuchel,et al. The heterogeneity of cellular senescence: insights at the single-cell level. , 2022, Trends in cell biology.
[3] M. Shvedova,et al. Elevated skin senescence in young mice causes delayed wound healing , 2022, GeroScience.
[4] G. Kuchel,et al. An inducible p21-Cre mouse model to monitor and manipulate p21-highly-expressing senescent cells in vivo , 2021, Nature Aging.
[5] G. Kuchel,et al. Strategies for targeting senescent cells in human disease , 2021, Nature Aging.
[6] Shane A. Evans,et al. Neutrophils induce paracrine telomere dysfunction and senescence in ROS‐dependent manner , 2021, The EMBO journal.
[7] J. Fenger,et al. Serum IL‐6 and MCP‐1 concentrations in dogs with lymphoma before and after doxorubicin treatment as a potential marker of cellular senescence , 2021, Veterinary medicine and science.
[8] M. Hardman,et al. Wound healing: cellular mechanisms and pathological outcomes , 2020, Open Biology.
[9] H. Wilkinson,et al. Wound senescence: A functional link between diabetes and ageing? , 2020, Experimental dermatology.
[10] P. Robson,et al. Transplanting cells from old but not young donors causes physical dysfunction in older recipients , 2020, Aging cell.
[11] M. Beekman,et al. Senescent human melanocytes drive skin ageing via paracrine telomere dysfunction , 2019, The EMBO journal.
[12] M. Martins-Green,et al. Protocol to Create Chronic Wounds in Diabetic Mice. , 2019, Journal of visualized experiments : JoVE.
[13] Shahrukh K Hashmi,et al. Senolytics decrease senescent cells in humans: Preliminary report from a clinical trial of Dasatinib plus Quercetin in individuals with diabetic kidney disease , 2019, EBioMedicine.
[14] M. Demaria,et al. Hallmarks of Cellular Senescence. , 2018, Trends in cell biology.
[15] D. Allison,et al. Senolytics Improve Physical Function and Increase Lifespan in Old Age , 2018, Nature Medicine.
[16] A. Trentin,et al. Skin wound healing in humans and mice: Challenges in translational research. , 2017, Journal of dermatological science.
[17] H. Horng,et al. WOUND HEALING , 1969, Journal of the Chinese Medical Association : JCMA.
[18] J. Kirkland,et al. Cellular Senescence: A Translational Perspective , 2017, EBioMedicine.
[19] R. Ceilley,et al. Chronic Wound Healing: A Review of Current Management and Treatments , 2017, Advances in Therapy.
[20] H. Sorg,et al. Skin Wound Healing: An Update on the Current Knowledge and Concepts , 2016, European Surgical Research.
[21] H. Coller,et al. Reactive oxygen species and bacterial biofilms in diabetic wound healing. , 2016, Physiological genomics.
[22] M. Martins-Green,et al. Protocol to Create Chronic Wounds in Diabetic Mice , 2016 .
[23] H. Abrahamse,et al. The Role of Matrix Metalloproteinases in Diabetic Wound Healing in relation to Photobiomodulation , 2016, Journal of diabetes research.
[24] M. Jensen,et al. Targeting senescent cells enhances adipogenesis and metabolic function in old age , 2015, eLife.
[25] M. Jensen,et al. JAK inhibition alleviates the cellular senescence-associated secretory phenotype and frailty in old age , 2015, Proceedings of the National Academy of Sciences.
[26] M. Frye,et al. Genetically Induced Cell Death in Bulge Stem Cells Reveals Their Redundancy for Hair and Epidermal Regeneration , 2014, Stem cells.
[27] J. Hoeijmakers,et al. An essential role for senescent cells in optimal wound healing through secretion of PDGF-AA. , 2014, Developmental cell.
[28] Paul Martin,et al. Clinical challenges of chronic wounds: searching for an optimal animal model to recapitulate their complexity , 2014, Disease Models & Mechanisms.
[29] Sashwati Roy,et al. Neutrophil activity in chronic venous leg ulcers—A target for therapy? , 2013, Wound repair and regeneration : official publication of the Wound Healing Society [and] the European Tissue Repair Society.
[30] J. Campisi,et al. Cellular senescence and the senescent secretory phenotype: therapeutic opportunities. , 2013, The Journal of clinical investigation.
[31] S. Sood,et al. Cellular events and biomarkers of wound healing , 2012, Indian Journal of Plastic Surgery.
[32] M. Hermes-Lima,et al. Role of catalase on the hypoxia/reoxygenation stress in the hypoxia-tolerant Nile tilapia. , 2012, American journal of physiology. Regulatory, integrative and comparative physiology.
[33] N. LeBrasseur,et al. Clearance of p16Ink4a-positive senescent cells delays ageing-associated disorders , 2011, Nature.
[34] J. Campisi,et al. The senescence-associated secretory phenotype: the dark side of tumor suppression. , 2010, Annual review of pathology.
[35] Tomaz Velnar,et al. The Wound Healing Process: An Overview of the Cellular and Molecular Mechanisms , 2009, The Journal of international medical research.
[36] D. Peeper,et al. Senescence-messaging secretome: SMS-ing cellular stress , 2009, Nature Reviews Cancer.
[37] Judith Campisi,et al. Senescence-Associated Secretory Phenotypes Reveal Cell-Nonautonomous Functions of Oncogenic RAS and the p53 Tumor Suppressor , 2008, PLoS biology.
[38] S. Lowe,et al. Senescence of Activated Stellate Cells Limits Liver Fibrosis , 2008, Cell.
[39] Cuiping Zhang,et al. Therapeutic potential of stem cells in skin repair and regeneration. , 2008, Chinese journal of traumatology = Zhonghua chuang shang za zhi.
[40] Olivera Stojadinovic,et al. Molecular Markers in Patients with Chronic Wounds to Guide Surgical Debridement , 2007, Molecular medicine.
[41] J. Sedivy,et al. Cellular Senescence in Aging Primates , 2006, Science.
[42] Thiennu H. Vu,et al. Epidermal development and wound healing in matrix metalloproteinase 13-deficient mice. , 2006, The Journal of investigative dermatology.
[43] J. Campisi. Senescent Cells, Tumor Suppression, and Organismal Aging: Good Citizens, Bad Neighbors , 2005, Cell.
[44] F. de Longueville,et al. Repeated exposure of human skin fibroblasts to UVB at subcytotoxic level triggers premature senescence through the TGF-β1 signaling pathway , 2005, Journal of Cell Science.
[45] S. Werner,et al. Regulation of wound healing by growth factors and cytokines. , 2003, Physiological reviews.
[46] N. Gibran,et al. Retroviral delivery of dominant‐negative vascular endothelial growth factor receptor type 2 to murine wounds inhibits wound angiogenesis , 2002, Wound repair and regeneration : official publication of the Wound Healing Society [and] the European Tissue Repair Society.
[47] K. Harding,et al. Psychological Factors and Delayed Healing in Chronic Wounds , 2001, Psychosomatic medicine.
[48] J. Menzoian,et al. Fibroblasts cultured from venous ulcers display cellular characteristics of senescence. , 1998, Journal of vascular surgery.
[49] E. Fuchs,et al. Keratinocyte growth factor is required for hair development but not for wound healing. , 1996, Genes & development.
[50] C Roskelley,et al. A biomarker that identifies senescent human cells in culture and in aging skin in vivo. , 1995, Proceedings of the National Academy of Sciences of the United States of America.
[51] David C. Lee,et al. TGFα deficiency results in hair follicle and eye abnormalities in targeted and waved-1 mice , 1993, Cell.
[52] O. Smithies,et al. TGF alpha deficiency results in hair follicle and eye abnormalities in targeted and waved-1 mice. , 1993, Cell.
[53] A. Tappel,et al. Mechanism of selenium-glutathione peroxidase and its inhibition by mercaptocarboxylic acids and other mercaptans. , 1984, The Journal of biological chemistry.
[54] L. Kisbenedek,et al. Endoscopic control of post-adenomectomy bleedings. , 1982, European Urology.
[55] E. Margoliash,et al. Irreversible reaction of 3-amino-1:2:4-triazole and related inhibitors with the protein of catalase. , 1960, The Biochemical journal.
[56] • Epidermis,et al. WOUND healing. , 1959, The Medical journal of Australia.
[57] R. Feinstein,et al. Mechanism of inhibition of Catalase by 3-amino-1,2,4-triazole. , 1958, Archives of biochemistry and biophysics.