Skin 约19条结果 (0.40秒)

期刊论文
The effect of vitamin K on the wound healing process in rat skin achieved by common wound dressing agents
Osman, Shokhan; Amin, Zahra Abdulqader Department of Pharmacognosy, College of Pharmacy, Hawler Medical University, Erbil, Iraq Zanco Journal of Medical Sciences (Zanco J Med Sci) 2020

摘要:Background and objective: Vitamin K is a fat-soluble vitamin that plays an important role in the coagulation pathways of living organisms. A popular application of vitamin K has been used to help in the extravascular removal of blood from the skin. The aim of the present study was to test the wound healing effect of vitamin K and some common wound dressing agents available in Erbil city clinical settings such; the moist exposed burn ointment (MEBO) and the Cica silver spray to test their combination with vitamin K injections. Methods: Six groups of albino rats were used (6 rats in each group). Group M received Mebo ointment, Group Creceived Cica silver spray, Group K received Vitamin K injection, Group MK received Mebo ointment+vitamin K injection.Group CK received Cica silver spray +vitamin K Group, and Group N received no- treatment. The duration of the experiments was as 7, 14, and 21 days post wound surgery.The percentage of wound contraction was measured, and the blood serum was collected to test the level of transforming growth factor β (TGFβ) and platelet-derived growth factor (PDGF). Results: Data presented in our study showed that the best wound contraction percentage(99%) was obtained by the MK treated rats compared to the control group. Similar results were obtained fromTGFβ and PDGF data in which MK group showed a significant increase in the levels of these growth factors. Conclusion: The wound healing process is supposed to be due to an increase of TGFβ, PDGF, and enhanced fibroblast proliferation and neovascularization of tissues.

期刊论文
The effect of moist and moist exposed dressings on healing and barrier function restoration of partial thickness wounds
Atiyeh, BS; Al-Amm, CA; El-Musa, KA; Sawwaf, A; Dham, R Division of Plastic and Reconstructive Surgery, American University of Beirut, Beirut, Lebanon; Drug Research Center, Dubai, UAE European Journal of Plastic Surgery 2003

摘要:Improved healing of full- and partial-thickness cutaneous wounds in wet and moist environments is due primarily to retention of biological fluids over the wound preventing desiccation of denuded dermis or deeper tissues. This also allows faster and unimpeded migration of keratinocytes over the wound surface and enables the naturally occurring cytokines and growth factors to exert their beneficial effect on wound contracture and reepithelialization. Despite all these documented benefits creating and maintaining a sealed moist environment over large surface areas such as large skin graft donor sites or extensive burns is technically difficult if not impossible. The preliminary investigation carried out between 1999 and 2000 studied the healing of a split-thickness skin graft (STSG) following application of moist exposed burn ointment (MEBO). This compound provides a moist environment without the need of an overlying occlusive dressing, and compares favorably with Sofra-Tulle semi-open dressing. Healing of STSG donor sites was then evaluated from January to September 2001 in a prospective study comparing the effect of Tegaderm, a semipermeable membrane occlusive dressing, and MEBO, two different types of moist dressings. Wound healing was evaluated by measuring transepidermal water loss (TEWL), and scar quality was assessed by two independent observers using a visual analogue scale. Faster healing was observed clinically with MEBO application. Physiological healing as determined by TEWL measurements occurred at an extremely significant earlier stage for MEBO, and this was associated with better scar quality demonstrating a positive relationship between function and cosmetic appearance. Moreover, simple ointment application was definitely more practical than application of the occlusive self-adhesive membrane.

期刊论文
Prevention and treatment for radiation-induced skin injury during radiotherapy
Wang, Yimin; Tu, Wenling; Tang, Yiting; Zhang, Shuyu School of Radiation Medicine and Protection and State Key Lab of Radiation Medicine and Radioprotection, Soochow University, Suzhou, 215123, China; The Second Affiliated Hospital of Chengdu Medical College, China National Nuclear Corporation 416 Hospital, Chengdu, 610051, China; West China School of Basic Medical Sciences & Forensic Medicine, Sichuan University, Chengdu, 610041, China Radiation Medicine and Protection 2020

摘要:The skin tissue has the largest area in the human body and functions as both a barrier and a defender. As such, it tends to be the first tissue to be damaged. Advances in medical technology provide prospects as well as side effects, for example, radiation therapy for cancer. With increasing cancer morbidity and radiation widely applied for cancer therapy, radiation-induced skin injury (RSI) has become a serious concern. In recent decades, research efforts have focused on the mechanisms underlying RSI. This review summarizes the mainstream opinions on these mechanisms, including the pathological, molecular biological, and cytobiological alterations. Radiation-induced reactive oxygen species (ROS), cytokines and involved signaling pathways are evaluated. Other relevant aspects include radiation-induced skin fibrosis (RSF) and radiation-related skin cell senescence. Moreover, we review strategies for the prevention and treatment in clinical and pre-clinical studies to support the treatment of RSI during radiotherapy. The prevention strategies include dose control, pre-irradiation instructions, and RSI assessments, while the main treatments include physical therapy, external-use dressings or creams, biological therapy and surgical reconstruction.

期刊论文
New from old: recycling differentiated cells into regenerative cells using traditional Chinese medicine? A tribute to Professor Rongxiang Xu
Péault, B. Department of Orthopaedic Surgery, Orthopaedic Hospital Research Center, UCLA, Los Angeles, CA, United States Frontiers in Bioengineering and Biotechnology 2024

摘要:New hopes in cell therapies have steadily arisen with ongoing progress in stem cell research, and innumerable conditions could be now treated and cured, from musculoskeletal injuries to diabetes to cardiac failure, to cite but a few, with the appropriate stem cells available. Arguably, the ideal therapeutic stem cells are those that naturally heal, repair, and replenish the target tissue in life, and research from the last decades has uncovered the presence of such committed, specialized stem cells in most organs. However, these cell lineage-specific regenerative cells are rare, difficult to identify and purify, and virtually impossible to culture for amplification as functionally intact, undifferentiated units. For this reason, and with the notable exception of hematopoietic stem cells, these are not presently amenable to clinical utilization.From the 1980's, Prof. Rongxiang Xu developed the theory that some of the pluripotent stem cells that build the embryo in early development also establish through adult life a minor subset of cells which, although seemingly terminally differentiated, retain strong multi-lineage developmental potential. He called these "potential regenerative cells" (PRCs), proposing these can be recruited into tissue repair and regeneration when no other progenitor cells are available (1). Although this hypothesis could not be fully tested experimentally at the time, it later turned out as strikingly visionary: on the one hand, it was demonstrated that mature cells can be reprogrammed into stem cells in culture, a discovery rewarded by attribution of the Nobel Prize in Medicine or Physiology in 2012 (2). Hence, transition from a functional, specialized cell back into a naïve, unbiased stem cell is, biologically, feasible and might explain the persistence of Rongxiang Xu's PRCs in adult organs. Another example in support of PRC existence refers to mesenchymal stem cells. MSCs are multipotent cells that can differentiate in culture into bone, cartilage, fat, tendon, muscle, and indirectly support, via growth factor secretion, the regeneration of multiple other tissues (3). This extraordinary potential has stimulated the use of MSCs in over 2000 clinical trials in attempts to treat multiple conditions in cardiology, orthopaedics, cancerology, nephrology, and many other specialties including medical immunology, since MSCs are also immunosuppressive (see clinicaltrials.gov). Despite such a popularity, progress in MSC science has long been hindered by the unknown identity of native, tissueresident mesenchymal stem cells, since these cells appear and expand in extended cultures of total, unselected cell populations dissociated from bone marrow, adipose tissue, umbilical cord, or other organs. Put in other words, MSCs are normally produced in vitro from elusive, rare ancestor cells that have long resisted description. This changed when multicolour, stringent flow cytometry cell sorting and sensitive differentiation assays were used for MSC prospective identification. In full support of the PRC concept proposed by Rongxiang Xu, innate tissue resident mesenchymal stem cells turned out to be differentiated perivascular cells of documented function. Pericytes, which enwrap capillaries and microvessels, regulate blood pressure and control angiogenesis. Equivalent cells populate the tunica adventitia at the periphery of larger blood vessels. Both purified pericytes and adventicytes give rise to bona fide mesenchymal stem cells when cultured in vitro (4,5). The use of transgenic reporter mice, in which cell lineages can be tracked dynamically, has confirmed the progenitor cell potential of perivascular cells in vivo (6). In aggregate, all these results have confirmed that differentiated cells can be reprogrammed into regenerative cells in culture and in the living organism, thus supporting Dr Xu's hypothesis on the existence of PRCs in adult organs.Professor Rongxiang Xu contributed to the development of formulations, mostly inspired by traditional Chinese medicine, for stem cell (PRC) stimulation in situ and in culture. Such a supplement, for instance, named GIC, was claimed to regenerate the gastrointestinal mucosa, as well as nerves, in culture. More recently, the LifeRegen Inc. company developed a line of products inspired by Dr Xu's research and patents were issued for a proprietary blend of natural ingredients produced via an original manufacturing process. All LifeRegen protocols rely on the infusion of combined black sesame oil, skullcap root, and beeswax. These products are considered GRAS (generally recognized as safe) by the FDA, and represent a scientific breakthrough merging ancient Chinese medicine recipes and Rongxiang Xu's groundbreaking results that are, moreover, being supported and extended by ongoing current research. More precisely, GI Balance and Juvenate Skincare are LifeRegen's proprietary formulations developed to nurture and renew the gut lining and create a cellular, rejuvenation promoting protective barrier for the skin, respectively.The insightful Prof. Rongxiang Xu predicted that some of the cells that constitute developed organs retain stem potential, and hence can be qualified as "potentially regenerative cells", and devised formulations that can stimulate such cells into tissue regeneration. He left us a rich legacy of centers at prestigious institutions, such as the Rongxiang Xu Center for Regenerative Therapeutics at Beth Israel Deaconess Medical Center in Boston, the Rongxiang Xu Center for Regenerative Life Science at the University of Southern California, and the Rongxiang Xu College of Health and Human Services at Cal state LA.The LifeRegen company has resumed and considerably amplified and diversified Dr Xu's approach to regenerative medicine, and is now sponsoring clinical studies for the GI Balance supplement that in previous published research enabled regeneration and rejuvenation of the entire gut mucosa within 6 months. In a more fundamental investigation perspective, PRCs have been prospectively identified and characterized in depth, for instance as pericytes and other perivascular elements, and can be purified to homogeneity and in large numbers from multiple organs (3). This opens unforeseen possibilities in regenerative medicine research whereby such well-characterized potential regenerative cells can be selected from the bone marrow, pancreas, skin, adipose tissue and other organs and treated with natural supplements for enhanced proliferation, migration, and differentiation. Such protocols should be initialized in culture and further developed in vivo by transplantation into relevant animal hosts. In perspective are novel biomolecular manoeuvres to drive the improved healing and replenishment of, for instance but not exclusively, cardiovascular, musculoskeletal, and epithelial tissues.

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