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      Healing effect of acellular fish skin with plasma rich in growth factor on full‐thickness skin defects

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          Abstract

          Acellular skin as a scaffold has a good potential to regenerate or repair damaged tissues. Growth factors such as Plasma Rich in Growth Factor (PRGF) as a rich source of active proteins can accelerate tissue regeneration. In this study, an acellular scaffold derived from fish skin with growth factors was used to repair full‐thickness skin defects in a rat model. Cellular results demonstrated that epithelial cells adhere well to acellular scaffolds. The results of animal studies showed that the groups treated with acellular scaffold and growth factor have a high ability to close and heal wounds on the 28th day after surgery. Histological and staining results showed that in the treated groups with scaffold and growth factor, an epidermal layer was formed with some skin appendages similar to normal skin. Overall, such scaffolds with biological agents can cause an acceptable synergistic effect on skin regeneration and wound healing.

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          Most cited references56

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          Decellularization of tissues and organs.

          Decellularized tissues and organs have been successfully used in a variety of tissue engineering/regenerative medicine applications, and the decellularization methods used vary as widely as the tissues and organs of interest. The efficiency of cell removal from a tissue is dependent on the origin of the tissue and the specific physical, chemical, and enzymatic methods that are used. Each of these treatments affect the biochemical composition, tissue ultrastructure, and mechanical behavior of the remaining extracellular matrix (ECM) scaffold, which in turn, affect the host response to the material. Herein, the most commonly used decellularization methods are described, and consideration give to the effects of these methods upon the biologic scaffold material.
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            Regenerative medicine: Current therapies and future directions.

            Organ and tissue loss through disease and injury motivate the development of therapies that can regenerate tissues and decrease reliance on transplantations. Regenerative medicine, an interdisciplinary field that applies engineering and life science principles to promote regeneration, can potentially restore diseased and injured tissues and whole organs. Since the inception of the field several decades ago, a number of regenerative medicine therapies, including those designed for wound healing and orthopedics applications, have received Food and Drug Administration (FDA) approval and are now commercially available. These therapies and other regenerative medicine approaches currently being studied in preclinical and clinical settings will be covered in this review. Specifically, developments in fabricating sophisticated grafts and tissue mimics and technologies for integrating grafts with host vasculature will be discussed. Enhancing the intrinsic regenerative capacity of the host by altering its environment, whether with cell injections or immune modulation, will be addressed, as well as methods for exploiting recently developed cell sources. Finally, we propose directions for current and future regenerative medicine therapies.
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              The potential impact of the preparation rich in growth factors (PRGF) in different medical fields.

              Platelet-rich preparations constitute a relatively new biotechnology for the stimulation and acceleration of tissue healing and bone regeneration. The versatility and biocompatibility of this approach has stimulated its therapeutic use in numerous medical and scientific fields including dentistry, oral implantology, orthopaedics, ulcer treatment, tissue engineering among others. Here we discuss the important progress that has been accomplished in the field of platelet-rich preparations in the last few years. Some of the most interesting therapeutic applications of this technology are discussed as are some of the limitations, future challenges and directions in the field.
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                Author and article information

                Contributors
                kia_esm@yahoo.com
                saeed.heidari@sbmu.ac.ir
                Journal
                Int Wound J
                Int Wound J
                10.1111/(ISSN)1742-481X
                IWJ
                International Wound Journal
                Blackwell Publishing Ltd (Oxford, UK )
                1742-4801
                1742-481X
                19 April 2022
                December 2022
                : 19
                : 8 ( doiID: 10.1111/iwj.v19.8 )
                : 2154-2162
                Affiliations
                [ 1 ] Tissue Engineering Group, Department of Biomedical Engineering, Tonekabon Branch Islamic Azad University Tonekabon Iran
                [ 2 ] Medical Nanotechnology Research Center Shahid Beheshti University of Medical Sciences Tehran Iran
                [ 3 ] Department of Tissue Engineering and Applied Cell Science, School of Advanced Technologies in Medicine Shahid Beheshti University of Medical Sciences Tehran Iran
                [ 4 ] Proteomics Research Center Shahid Beheshti University of Medical Sciences Tehran Iran
                Author notes
                [*] [* ] Correspondence

                Esmaeil Biazar, Tissue Engineering Group, Department of Biomedical Engineering, Tonekabon Branch, Islamic Azad University, Tonekabon, Iran.

                Email: kia_esm@ 123456yahoo.com

                Saeed Heidari Keshel, Medical Nanotechnology Research Center, Shahid Beheshti University of Medical Sciences, Tehran, Iran.

                Email: saeed.heidari@ 123456sbmu.ac.ir

                Article
                IWJ13821
                10.1111/iwj.13821
                9705163
                35441469
                f785fa0b-a319-4858-ba63-ed0a7b05916e
                © 2022 The Authors. International Wound Journal published by Medicalhelplines.com Inc (3M) and John Wiley & Sons Ltd.

                This is an open access article under the terms of the http://creativecommons.org/licenses/by-nc/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited and is not used for commercial purposes.

                History
                : 07 April 2022
                : 14 February 2022
                : 07 April 2022
                Page count
                Figures: 6, Tables: 2, Pages: 9, Words: 5683
                Categories
                Original Article
                Original Articles
                Custom metadata
                2.0
                December 2022
                Converter:WILEY_ML3GV2_TO_JATSPMC version:6.2.1 mode:remove_FC converted:28.11.2022

                Emergency medicine & Trauma
                acellular fish skin,animal study,full‐thickness skin defects,growth factor,wound healing

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