| Literature DB >> 34070582 |
Mathilde Fénelon1,2, Sylvain Catros1,2, Christophe Meyer3,4, Jean-Christophe Fricain1,2, Laurent Obert3,5, Frédéric Auber3,6,7, Aurélien Louvrier4,8, Florelle Gindraux3,5.
Abstract
An important component of tissue engineering (TE) is the supporting matrix upon which cells and tissues grow, also known as the scaffold. Scaffolds must easily integrate with host tissue and provide an excellent environment for cell growth and differentiation. Human amniotic membrane (hAM) is considered as a surgical waste without ethical issue, so it is a highly abundant, cost-effective, and readily available biomaterial. It has biocompatibility, low immunogenicity, adequate mechanical properties (permeability, stability, elasticity, flexibility, resorbability), and good cell adhesion. It exerts anti-inflammatory, antifibrotic, and antimutagenic properties and pain-relieving effects. It is also a source of growth factors, cytokines, and hAM cells with stem cell properties. This important source for scaffolding material has been widely studied and used in various areas of tissue repair: corneal repair, chronic wound treatment, genital reconstruction, tendon repair, microvascular reconstruction, nerve repair, and intraoral reconstruction. Depending on the targeted application, hAM has been used as a simple scaffold or seeded with various types of cells that are able to grow and differentiate. Thus, this natural biomaterial offers a wide range of applications in TE applications. Here, we review hAM properties as a biocompatible and degradable scaffold. Its use strategies (i.e., alone or combined with cells, cell seeding) and its degradation rate are also presented.Entities:
Keywords: amniotic membrane; biological scaffold; cells; reconstruction; repair; tissue engineering
Year: 2021 PMID: 34070582 PMCID: PMC8227127 DOI: 10.3390/membranes11060387
Source DB: PubMed Journal: Membranes (Basel) ISSN: 2077-0375
Figure 1Human amniotic membrane properties as an ideal scaffold for tissue engineering.
Figure 2(A) Histological staining of fresh human amniotic membrane. hAEC: human amniotic epithelial cell, hAMSC: human amniotic mesenchymal stromal cell. (B) Representative structure of human amniotic membrane. The epithelial side, which consists of a monolayer of hAECs, and the mesenchymal layer, composed of hAMSC. A thick basement membrane separates both sides.
Figure 3Human amniotic membrane collection. (A) Placenta. (B) Amnion and chorion. (C) Amnion detached from the chorion.
Figure 4Human amniotic membrane formats. (A) Fresh. (B) Cryopreserved. (C) Lyophilized. (D) Decellularized and lyophilized [18].
Use of amniotic membrane as a scaffold for tissue engineering.
| Authors | Tissue Engineering Applications | Amniotic Membrane Formats | Modalities of Amniotic Membrane Usage | Cells Seeded on Amniotic Membrane | Sides of Cells Seeding | Assessment |
|---|---|---|---|---|---|---|
| Shortt et al., | Ocular surface | Cryopreserved or Decellularized + Cryopreserved | Single membrane | Human limbal epithelial stem cells | Basement membrane (?) | In vitro/Ex vivo |
| Zhang et al., 2013 | Ocular surface | Cryopreserved or De-epithelialized | Single membrane | Human limbal epithelial cells | Basement membrane | In vitro/Ex vivo |
| Che et al., 2019 | Ocular surface | De-epithelialized | Multilayer ultrathin amnion (3–4 layers) | Human corneal stromal cells | Basement membrane | In vitro/Ex vivo |
| Bandeira et al., 2019 | Ocular surface | Cryopreserved + De-epithelialized | Single membrane/Cover | Human conjunctival epithelial cells | Basement membrane | Clinical study |
| Yang et al., 2006 | Skin | Cryopreserved + De-epithelialized | Single membrane/Cover | Human keratinocytes | Basement membrane | In vitro/Ex vivo + In vivo |
| Kim et al., 2008 | Skin | Cryopreserved + De-epithelialized | Single membrane/Cover | Rabbit bone marrow autologous or allologous MSC | Basement membrane | In vivo |
| Redondo et al., 2011 | Skin | Cryopreserved + De-epithelialized | Single membrane/Cover | Human melanocytes | Basement membrane | Clinical study |
| Tsai et al., 2007 | Vascular system | Cryopreserved + De-epithelialized sow amnion | Single membrane | Porcine vascular endothelial cells | Basement membrane | In vitro/Ex vivo |
| Niknejad et al., 2011 | Vascular system | Fresh or | Single membrane | Rat vascular endothelial cells | Epithelial | In vitro/Ex vivo |
| Lee et al., 2012 | Vascular system | Air-dried + | Tube of amnion | Porcine vascular endothelial cells | NS | In vitro/Ex vivo |
| Amensag et al., 2012 | Vascular system | Two cycles of freezing and thawing + Decellularized | Tube of | Human umbilical vein | Stromal | In vitro/Ex vivo |
| Amensag et al., 2017 | Vascular system | Two cycles of freezing and thawing + Decellularized | Tube of | Human vascular smooth muscle cells | NS | In vitro/Ex vivo + In vivo |
| Swim et al., 2018 | Vascular system | Decellularized + Lyophilized | Multilayer amnion/Cover | Human thymus-derived MSC | NS | In vitro/Ex vivo + In vivo |
| Sharifiaghdas et al., 2009 | Vaginal and bladder | Fresh + De-epithelialized | Single membrane | Human bladder smooth muscle cells | Basement membrane | In vitro/Ex vivo |
| Seyed-Forootan et al., 2018 | Vaginal and bladder | Fresh | Two layers of amnion/Cover | Autologous skin fibroblasts | NS | Clinical study |
| Sharifiaghdas et al., 2007 | Urethra | Fresh + De-epithelialized | Single membrane | Mouse urothelial cells | Basement membrane | In vitro/Ex vivo |
| Sartoneva et al., 2011 | Urethra | Fresh + De-epithelialized | Amnion attached to a membrane fixation device (cell crowns) | Human urothelial | NS | In vitro/Ex vivo |
| Jerman et al., 2014 | Urethra | Cryopreserved | Single membrane | Porcine urethral cells | Epithelial or Basement membrane or Stromal | In vitro/Ex vivo |
| Wang et al., 2014 | Urethra | De-epithelialized | Single membrane/Cover | Rabbit urethral epithelial cells | NS | In vitro/Ex vivo + In vivo |
| Chen et al., 2018 | Urethra | Decellularized + Lyophilized | Tube of amnion | Allogenic canine endothelial progenitor cells +/− bone marrow MSC | NS | In vitro/Ex vivo + In vivo |
| Jin et al., 2007 | Cartilage | Cryopreserved or Cryopreserved + De-epithelialized | Single membrane/Cover | Rabbit chondrocytes | Epithelial or Basement membrane or Stromal | In vitro/Ex vivo + In vivo |
| Díaz-Prado et al., 2010 | Cartilage | Cryopreserved or Cryopreserved + De-epithelialized | Single membrane | Human chondrocytes | Epithelial or Basement membrane or Stromal | In vitro/Ex vivo |
| Krishnamurithy et al., 2011 | Cartilage | Air-dried or | Single membrane | Rabbit chondrocytes | Basement membrane | In vitro/Ex vivo |
| Tan et al., 2011 | Cartilage | Air-dried or | Single membrane | Rabbit bone marrow MSC | NS | In vitro/Ex vivo |
| Garcia et al., 2015 | Cartilage | Fresh or cryopreserved or and cryopreserved | Single membrane/Cover | Sheep bone marrow MSC | Stromal | In vitro/Ex vivo + In vivo |
| Tsugawa et al., 2011 | Bone | Cryopreserved + De-epithelialized | Single membrane/Cover | Mouse bone marrow-derived osteoblast cells | Stromal | In vitro/Ex vivo + In vivo |
| Chen et al., 2012 | Bone | Decellularized + Dried | Single membrane | Human dental apical papilla cells | Basement membrane or Stromal | In vitro/Ex vivo |
| Semyari et al., 2015. | Bone | Fresh decellularized rabbit amnion | Single membrane/Cover | Rabbit adipose-derived MSC | NS | In vitro/Ex vivo + In vivo |
| Akazawa et al., 2016 | Bone | Cryopreserved + Decellularized | Single membrane/Cover | Human calvaria osteoblasts | NS | In vitro/Ex vivo + In vivo |
| Tang et al., 2017 | Bone | Fresh + De-epithelialized | Single membrane | Human umbilical vein endothelial cells | NS | In vitro/Ex vivo |
| Akhlaghi et al., 2019 | Bone | Decellularized + Lyophilized | Single membrane/Cover | Buccal fat pad-derived stem cells | NS | Clinical study |
| Ahn et al., 2006 | Oral mucosa | De-epithelialized + Lyophilized | Single membrane/Cover | Rabbit oral keratinocytes | Basement membrane | In vitro/Ex vivo + In vivo |
| Amemiya et al., 2010 | Oral mucosa | Cryopreserved + De-epithelialized | Single membrane/Cover | Human oral mucosal epithelial cells | Basement membrane | In vitro/Ex vivo + In vivo |
| Amemiya et al., 2009/2015 | Oral mucosa | Cryopreserved + De-epithelialized | Single membrane/Cover | Human oral mucosal epithelial cells | Basement membrane | Clinical study |
| Hsueh et al., 2016 | Oral mucosa | De-epithelialized + air dried | Single membrane | Human oral mucosal epithelial cells | Basement membrane | In vitro/Ex vivo |
| Amemiya et al., 2008 | Periodontal | Cryopreserved + De-epithelialized | Single membrane/Cover | Dog periodontal ligament cells | Basement membrane | In vivo |
| Iwasaki et al., 2013 | Periodontal | Decellularized + Cryopreserved | Single membrane/Cover | Human periodontal ligament stem cells | NS | In vitro/Ex vivo + In vivo |
| Amemiya et al., 2014 | Periodontal | De-epithelialized | Single membrane/Cover | Human periosteum derived stem cells | NS | In vitro/Ex vivo + In vivo |
| Wu et al., 2015 | Periodontal | De-epithelialized | Single membrane/Cover | Human adipose-derived MSC | Basement membrane | In vitro/Ex vivo + In vivo |
| Honjo et al., 2015 | Periodontal | Cryopreserved + De-epithelialized | Amnion placed on a cell culture insert | dental pulp-derived cell sheet | Basement membrane | In vitro/Ex vivo |
| Zhang et al., 2006 | Nerve | NS in the abstract/Not translated to English | A scroll/wrap of amnion | Autogenous Schwann cell | NS in the abstract/Not translated to English | In vivo |
| Li et al., 2013 | Nerve | Fresh | A scroll/wrap of amnion | Allogenic human umbilical cord MSC | NS | Clinical study |
| He et al., 2002 | Tendon | De-epithelialized + Cryopreserved | A scroll/wrap of amnion | Fetal rabbit skin fibroblasts | Attachment on ECM and proliferation on stromal layer | In vitro/Ex vivo + In vivo |
| Parveen et al., 2019 | Cardiac | Trypsinized + Cryopreserved | Single membrane | Human-induced | Basement membrane (?) | In vitro/Ex vivo |
ECM = Extracellular Matrix; MSC = Mesenchymal Stromal Cells; NS = Not Specified; ?: information assumed by the authors from article content; De-epithelialized = amnion without AEC; Decellularized = amnion without AEC and AMSC.
Clinical trials using human amniotic membrane cells and/or human amniotic membrane as a scaffold for tissue engineering purposes (https://clinicaltrials.gov (accessed on 7 October 2020)).
| Conditions | Clinical Trials Id | Phase | Tissue Engineering Product Evaluated | Status | Sponsor | Results/Status or Remarks |
|---|---|---|---|---|---|---|
| OCULAR SURFACE DISEASE | NCT00348114 | 2 | Amnion + ex vivo expanded limbal epithelial stem cells | Suspended | Singapore National Eye Centre | Estimated Enrolment: 8 participants |
| LIMBAL STEM CELL DEFICIENCY | NCT00736307 | 1 | Amnion + cultured limbal epithelial stem cells | Completed | Royan Institute, Tehran, Iran | Enrolment: 10 participants |
| UNILATERALLIMBAL STEM CELL INSUFFICIENCY | NCT01377311 | 1 | Amnion + cultured limbal stem cells | Terminated | National Taiwan University Hospital | Enrolment: 0 participants |
| LIMBAL INSUFFICIENCY | NCT00491959 | 1 | Amnion + oral mucosal epithelial cells | Terminated (Due to unstable cell sheet quality, the technique was not tested on patients) | National Taiwan University Hospital | Enrolment: 0 participants |
| SYMBLEPHARON | NCT00799526 | 1 | Amnion + ex vivo cultivated autologous conjunctival epithelial cells | Unknown | Federal University of São Paulo | Estimated Enrolment: 10 participants |
| EYE INJURY | NCT01123044 | 3 | Amnion + autologous limbal epithelial cells | Unknown | Ministry of Health, Malaysia | Enrolment: 42 participants |
| EPIDERMOLYSIS BULLOSA WITH MITTEN HANDS | NCT01908088 | 1 | Amnion + autologous fibroblasts | Completed | Royan Institute | Enrolment: 6 participants |
| CORNEAL DISEASE | NCT02148016 | 1 | Autologous limbal stem cell + amnion as a protective contact lens | Unknown | Sun Yat-sen University | Estimated Enrolment: 30 participants |
| LIMBUS CORNEAE INSUFFICIENCY SYNDROME | NCT01562002 | 1 | Amnion + allogenic bone marrow MSC versus amnion + allogenic limbal stem cells | Completed | Instituto Universitario de Oftalmobiología Aplicada (Institute of Applied Ophthalmobiology)—IOBA | Enrolment: 27 participants |
| OCULAR SURFACE RECONSTRUCTION | NCT01341223 | Observational | Amnion as a carrier for ex vivo cell culture | Unknown | National Taiwan University Hospital | Estimated Enrolment: 50 participants |
| LIMBAL STEM CELL DEFICIENCY | NCT03226015 | Observational | Amnion + autologous oral mucosa | Completed | Klinikum Chemnitz gGmbH | Enrolment: 27 participants |
| LIMBAL STEM CELL DEFICIENCY | NCT01619189 | 2 | Amnion + allogeneic or autologous limbal epithelial stem cells | Completed | CHNO des quinze-vingtsParis, France | Enrollment: 14 participants |
| LIMBAL STEM CELL DEFICIENCY | NCT02579993 | Interventional | Amnion + in vitro expanded limbal stem cells | Terminated | Instituto de Oftalmologia Conde de Valenciana | Enrolment: 10 participants |
| LIMBAL STEM CELL DEFICIENCY | NCT02592330 | 1 | Amnion + expanded autologous limbal epithelial cells | Recruiting | Massachusetts Eye and Ear Infirmary | Estimated Enrollment: 17 participants |
| WOUNDS | NCT02314416 | 4 | Amniotic stem cells + collagen matrix | Withdrawn | Augusta University | Enrolment: 0 participant |
| ASHERMAN’S SYNDROME | NCT03223454 | 1 | Amnion + AEC | Unknown | The Second Affiliated Hospital of Chongqing Medical University | Estimated Enrolment: 50 participants |
| ENDOMETRIUM INFERTILE PATIENTS | NCT04676269 | 1 | Amnion + autologous endometrium cells or allogenic AEC or both type of cells | Recruiting | Indonesia University | Estimated Enrolment: 40 participants |
| ANTERIOR CRUCIATE LIGAMENT RUPTURE | NCT03294759 | Interventional | Amnion collagen matrix wrap + bone MSC | Active, not recruiting | Andrews Research & Education Foundation | Actual Enrolment: 40 participants |
| ANTERIOR CRUCIATE LIGAMENT RUPTURE | NCT03294720 | Interventional | Amnion collagen matrix wrap + bone MSC | Active, not recruiting | Andrews Research & Education Foundation | Actual Enrolment: 10 participants |
| NONUNION FRACTURE | NCT03031509 | 1 | AEC | Not yet recruiting | Shanghai East Hospital | Estimated Enrollment: 36 participants |
MSC = Mesenchymal Stromal Cells; AEC = Amniotic epithelial cells.