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2.
Biomaterials ; 77: 320-35, 2016 Jan.
Article in English | MEDLINE | ID: mdl-26618750

ABSTRACT

The currently available surgical options to repair the diaphragm are associated with significant risks of defect recurrence, lack of growth potential and restored functionality. A tissue engineered diaphragm has the potential to improve surgical outcomes for patients with congenital or acquired disorders. Here we show that decellularized diaphragmatic tissue reseeded with bone marrow mesenchymal stromal cells (BM-MSCs) facilitates in situ regeneration of functional tissue. A novel bioreactor, using simultaneous perfusion and agitation, was used to rapidly decellularize rat diaphragms. The scaffolds retained architecture and mechanical properties and supported cell adhesion, proliferation and differentiation. Biocompatibility was further confirmed in vitro and in vivo. We replaced 80% of the left hemidiaphragm with reseeded diaphragmatic scaffolds. After three weeks, transplanted animals gained 32% weight, showed myography, spirometry parameters, and histological evaluations similar to native rats. In conclusion, our study suggested that reseeded decellularized diaphragmatic tissue appears to be a promising option for patients in need of diaphragmatic reconstruction.


Subject(s)
Diaphragm/transplantation , Mesenchymal Stem Cell Transplantation/methods , Tissue Engineering/methods , Tissue Scaffolds , Absorbable Implants , Allografts , Animals , Bioreactors , Cell Adhesion , Cell Differentiation , Diaphragm/blood supply , Diaphragm/diagnostic imaging , Diaphragm/immunology , Electromyography , Graft Survival , Hernias, Diaphragmatic, Congenital , Macrophages/immunology , Male , Neovascularization, Physiologic , Radiography , Rats , Rats, Inbred Lew , Tissue Engineering/instrumentation , Transplantation, Heterotopic , Transplants/blood supply , Transplants/immunology , Transplants/physiology , Wound Healing
3.
Respiration ; 90(6): 481-92, 2015.
Article in English | MEDLINE | ID: mdl-26613253

ABSTRACT

BACKGROUND: Acute respiratory distress syndrome (ARDS) is a devastating disorder. Despite enormous efforts in clinical research, effective treatment options are lacking, and mortality rates remain unacceptably high. OBJECTIVES: A male patient with severe ARDS showed no clinical improvement with conventional therapies. Hence, an emergent experimental intervention was performed. METHODS: We performed intratracheal administration of autologous peripheral blood-derived mononuclear cells (PBMCs) and erythropoietin (EPO). RESULTS: We found that after 2 days of initial PBMC/EPO application, lung function improved and extracorporeal membrane oxygenation (ECMO) support was reduced. Bronchoscopy and serum inflammatory markers revealed reduced inflammation. Additionally, serum concentration of miR-449a, b, c and miR-34a, a transient upregulation of E-cadherin and associated chromatin marks in PBMCs indicated airway epithelial differentiation. Extracellular vesicles from PBMCs demonstrated anti-inflammatory capacity in a TNF-α-mediated nuclear factor-x03BA;B in vitro assay. Despite improving respiratory function, the patient died of multisystem organ failure on day 38 of ECMO treatment. CONCLUSIONS: This case report provides initial encouraging evidence to use locally instilled PBMC/EPO for treatment of severe refractory ARDS. The observed clinical improvement may partially be due to the anti-inflammatory effects of PBMC/EPO to promote tissue regeneration. Further studies are needed for more in-depth understanding of the underlying mechanisms of in vivo regeneration.


Subject(s)
Leukocytes, Mononuclear/transplantation , Respiratory Distress Syndrome/therapy , Cadherins/blood , Cytokines/blood , Down-Regulation , Erythropoietin/administration & dosage , Extracorporeal Membrane Oxygenation , Fatal Outcome , Humans , Male , MicroRNAs/blood , Multiple Organ Failure/etiology , Snail Family Transcription Factors , Transcription Factors/blood , Transplantation, Autologous , Up-Regulation , Young Adult
4.
PLoS One ; 10(3): e0120176, 2015.
Article in English | MEDLINE | ID: mdl-25763592

ABSTRACT

Generation of new cardiomyocytes is critical for cardiac repair following myocardial injury, but which kind of stimuli is most important for cardiomyocyte regeneration is still unclear. Here we explore if apoptotic stimuli, manifested through caspase activation, influences cardiac progenitor up-regulation and cardiomyocyte differentiation. Using mouse embryonic stem cells as a cellular model, we show that sublethal activation of caspases increases the yield of cardiomyocytes while concurrently promoting the proliferation and differentiation of c-Kit+/α-actininlow cardiac progenitor cells. A broad-spectrum caspase inhibitor blocked these effects. In addition, the caspase inhibitor reversed the mRNA expression of genes expressed in cardiomyocytes and their precursors. Our study demonstrates that sublethal caspase-activation has an important role in cardiomyocyte differentiation and may have significant implications for promoting cardiac regeneration after myocardial injury involving exogenous or endogenous cell sources.


Subject(s)
Caspase 3/metabolism , Caspase 9/metabolism , Cell Differentiation , Embryonic Stem Cells/metabolism , Myocytes, Cardiac/metabolism , Actinin/metabolism , Animals , Apoptosis , Cell Line , Cell Membrane/metabolism , Mice , Mitochondria/metabolism , Proto-Oncogene Proteins c-kit/metabolism
5.
Nat Protoc ; 9(9): 2164-79, 2014 Sep.
Article in English | MEDLINE | ID: mdl-25122525

ABSTRACT

Tissue-engineered tracheal transplants have been successfully performed clinically. However, before becoming a routine clinical procedure, further preclinical studies are necessary to determine the underlying mechanisms of in situ tissue regeneration. Here we describe a protocol using a tissue engineering strategy and orthotopic transplantation of either natural decellularized donor tracheae or artificial electrospun nanofiber scaffolds into a rat model. The protocol includes details regarding how to assess the scaffolds' biomechanical properties and cell viability before implantation. It is a reliable and reproducible model that can be used to investigate the crucial aspects and pathways of in situ tracheal tissue restoration and regeneration. The model can be established in <6 months, and it may also provide a means to investigate cell-surface interactions, cell differentiation and stem cell fate.


Subject(s)
Guided Tissue Regeneration/methods , Tissue Engineering/methods , Tissue Scaffolds/chemistry , Trachea/physiology , Animals , Biomechanical Phenomena , Colorimetry , Nanofibers/therapeutic use , Rats , Trachea/transplantation
6.
Biomaterials ; 35(20): 5307-5315, 2014 Jul.
Article in English | MEDLINE | ID: mdl-24703872

ABSTRACT

The development of tracheal scaffolds fabricated based on electrospinning technique by applying different ratios of polyethylene terephthalate (PET) and polyurethane (PU) is introduced here. Prior to clinical implantation, evaluations of biomechanical and morphological properties, as well as biocompatibility and cell adhesion verifications are required and extensively performed on each scaffold type. However, the need for bioreactors and large cell numbers may delay the verification process during the early assessment phase. Hence, we investigated the feasibility of performing biocompatibility verification using static instead of dynamic culture. We performed bioreactor seeding on 3-dimensional (3-D) tracheal scaffolds (PET/PU and PET) and correlated the quantitative and qualitative results with 2-dimensional (2-D) sheets seeded under static conditions. We found that an 8-fold reduction for 2-D static seeding density can essentially provide validation on the qualitative and quantitative evaluations for 3-D scaffolds. In vitro studies revealed that there was notably better cell attachment on PET sheets/scaffolds than with the polyblend. However, the in vivo outcomes of cell seeded PET/PU and PET scaffolds in an orthotopic transplantation model in rodents were similar. They showed that both the scaffold types satisfied biocompatibility requirements and integrated well with the adjacent tissue without any observation of necrosis within 30 days of implantation.


Subject(s)
Biocompatible Materials/chemistry , Polymers/chemistry , Tissue Scaffolds/chemistry , Trachea , Animals , Bioreactors , Cell Adhesion , Cell Count , Male , Mesenchymal Stem Cells/cytology , Microscopy, Electron, Scanning , Polyethylene Terephthalates/chemistry , Polyurethanes/chemistry , Rats , Rats, Sprague-Dawley , Tissue Engineering/methods
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