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      Dramatic improvement in the mechanical properties of polydopamine/polyacrylamide hydrogel mediated human amniotic membrane

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      a , b , b , a , a , a , c , d , , a ,
      RSC Advances
      The Royal Society of Chemistry

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          Abstract

          Human amniotic membrane (hAM) is a promising material for tissue engineering due to several benefits, including desirable biocompatibility, stem cell source, antibacterial activity, etc. However, because of its low elasticity, the clinical application of hAM is severely restricted. To solve this issue, we employed polydopamine/polyacrylamide (PDA/PAM) hydrogels to toughen hAM. The test results indicated that the PDA/PAM hydrogel can enhance the toughness of hAM dramatically due to the formation of abundant chemical bonds and the strong mechanical properties of the hydrogel itself. Compared to pure hAM, the break elongation and tensile strength of PDA/PAM-toughened hAM rose by 154.15 and 492.31%, respectively. And most importantly, the fracture toughness was almost 15 times higher than untreated hAM. In addition, the cytotoxicity of the PDA/PAM-coated hAM was not detected due to the superior biocompatibility of the chemicals used in the study. Treating hAM with adhesive hydrogels to increase its mechanical characteristics will further promote the application of hAM as a tissue engineering material.

          Abstract

          Dramatically improved mechanical properties of human amniotic membrane modified by PDA/PAM hydrogel due to the strong interface bonding.

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          Author and article information

          Journal
          RSC Adv
          RSC Adv
          RA
          RSCACL
          RSC Advances
          The Royal Society of Chemistry
          2046-2069
          25 January 2023
          24 January 2023
          25 January 2023
          : 13
          : 6
          : 3635-3642
          Affiliations
          [a ] Changsha Hospital for Maternal and Child Health Care Affiliated to Hunan Normal University Changsha 410083 China zhmao48@ 123456163.com
          [b ] Powder Metallurgy Research Institute, Central South University Changsha 410083 China
          [c ] Research Institute of Aerospace Technology, Central South University Changsha 410083 China
          [d ] Department of Pathology, Xiangya Hospital, Central South University Changsha 410083 China wj020501@ 123456163.com
          Author information
          https://orcid.org/0000-0002-2066-1530
          https://orcid.org/0000-0003-2304-1895
          Article
          d2ra07622e
          10.1039/d2ra07622e
          9875367
          36756590
          455183e6-4aad-4a7e-96c5-2faae09120ae
          This journal is © The Royal Society of Chemistry
          History
          : 30 November 2022
          : 17 January 2023
          Page count
          Pages: 8
          Funding
          Funded by: Health Commission of Hunan Province, doi 10.13039/100017695;
          Award ID: 202202054141
          Categories
          Chemistry
          Custom metadata
          Paginated Article

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