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1.
Front Immunol ; 14: 1210098, 2023.
Artigo em Inglês | MEDLINE | ID: mdl-37426661

RESUMO

Introduction: Preformed antibodies against αGal in the human and the presence of αGal antigens on the tissue constituting the commercial bioprosthetic heart valves (BHVs, mainly bovine or porcine pericardium), lead to opsonization of the implanted BHV, leading to deterioration and calcification. Murine subcutaneous implantation of BHVs leaflets has been widely used for testing the efficacy of anti-calcification treatments. Unfortunately, commercial BHVs leaflets implanted into a murine model will not be able to elicit an αGal immune response because such antigen is expressed in the recipient and therefore immunologically tolerated. Methods: This study evaluates the calcium deposition on commercial BHV using a new humanized murine αGal knockout (KO) animal model. Furtherly, the anti-calcification efficacy of a polyphenol-based treatment was deeply investigated. By using CRISPR/Cas9 approach an αGal KO mouse was created and adopted for the evaluation of the calcific propensity of original and polyphenols treated BHV by subcutaneous implantation. The calcium quantification was carried out by plasma analysis; the immune response evaluation was performed by histology and immunological assays. Anti-αGal antibodies level in KO mice increases at least double after 2 months of implantation of original commercial BHV compared to WT mice, conversely, the polyphenols-based treatment seems to effectively mask the antigen to the KO mice's immune system. Results: Commercial leaflets explanted after 1 month from KO mice showed a four-time increased calcium deposition than what was observed on that explanted from WT. Polyphenol treatment prevents calcium deposition by over 99% in both KO and WT animals. The implantation of commercial BHV leaflets significantly stimulates the KO mouse immune system resulting in massive production of anti-Gal antibodies and the exacerbation of the αGal-related calcific effect if compared with the WT mouse. Discussion: The polyphenol-based treatment applied in this investigation showed an unexpected ability to inhibit the recognition of BHV xenoantigens by circulating antibodies almost completely preventing calcific depositions compared to the untreated counterpart.


Assuntos
Bioprótese , Calcinose , Animais , Suínos , Bovinos , Humanos , Camundongos , Camundongos Knockout , Formação de Anticorpos , Bioprótese/efeitos adversos , Cálcio , Antígenos , Valvas Cardíacas , Modelos Animais , Anticorpos
2.
Eur J Cardiothorac Surg ; 63(4)2023 04 03.
Artigo em Inglês | MEDLINE | ID: mdl-36548449

RESUMO

OBJECTIVES: The purpose of this study was to evaluate the impact of a polyphenols-based treatment on the extrinsic mechanisms responsible for early bioprosthetic heart valve (BHV) degeneration. Structural degeneration can be driven by both extrinsic and intrinsic mechanisms. While intrinsic mechanisms have been associated with inherent biocompatibility characteristics of the BHV, the extrinsic ones have been reported to involve external causes, such as chemical, mechanical and hydrodynamic, responsible to facilitate graft damage. METHODS: The chemical interaction and the stability degree between polyphenols and pericardial tissue were carefully evaluated. The detoxification of glutaraldehyde in commercial BHVs models and the protective effect from in vivo calcification were taken into relevant consideration. Finally, the hydrodynamic and biomechanical features of the polyphenols-treated pericardial tissue were deeply investigated by pulse duplicator and stress-strain analysis. RESULTS: The study demonstrated the durability of the polyphenols-based treatment on pericardial tissue and the stability of the bound polyphenols. The treatment improves glutaraldehyde stabilization's current degree, demonstrating a surprising in vivo anti-calcific effect. It is able to make the pericardial tissue more pliable while maintaining the correct hydrodynamic characteristics. CONCLUSIONS: The polyphenols treatment has proved to be a promising approach capable of acting simultaneously on several factors related to the premature degeneration of cardiac valve substitutes by extrinsic mechanisms.


Assuntos
Bioprótese , Calcinose , Próteses Valvulares Cardíacas , Humanos , Glutaral , Valvas Cardíacas
3.
Cardiol Cardiovasc Med ; 6(5): 487-492, 2022.
Artigo em Inglês | MEDLINE | ID: mdl-36303878

RESUMO

Background: The incidence of infective endocarditis in patients with bioprosthetic heart valves is over 100 times that of the general population with S. aureus recognized as the causative organism in approximately 1/3 of cases. In this study, (1) the microbicidal and virucidal effect of a polyphenolic solution was carefully evaluated. The same solution was then adopted for the treatment of a commercial bioprosthetic heart valve model for (2) the assessment of inhibition of S. aureus adhesiveness. Methods: (1) the viability of 9 microorganisms strains (colony-forming units) and the infectivity degree of 3 viral strains (cellular infection capacity) were evaluated after suspension in the polyphenolic solution. (2) Leaflets from a treated and untreated commercial surgical valve model were incubated with a known concentration of S. aureus. After incubation, the leaflets were homogenized and placed in specific culture media to quantify the bacterial load. Results: (1) The polyphenolic solution proved to be effective in eliminating microorganisms strains guaranteeing the killing of at least 99.9%. The effectiveness is particularly relevant against M. chelonae (99.999%). (2) The polyphenol-based treatment resulted in the inhibition of the S. aureus adhesiveness by 96% concerning untreated samples. Conclusions: The data suggest an interesting protective effect against infections and bacterial adhesiveness by a polyphenolic-based solution. Further studies will plan to extend the panel of microorganisms for the evaluation of the anti-adhesive effect; however, the use of optimized polyphenolic blends could lead to the development of new treatments capable to make transcatheter-valve substitutes more resistant to infection.

4.
Life (Basel) ; 11(6)2021 Jun 09.
Artigo em Inglês | MEDLINE | ID: mdl-34207559

RESUMO

Alzheimer's disease is a neurodegenerative disorder whose pathological mechanisms, despite recent advances, are not fully understood. However, the deposition of beta amyloid -peptide and neuroinflammation, which is probably aggravated by dysbiotic microbiota, seem to play a key role. Anti-Gal are the most abundant xenoreactive natural antibodies. They are supposed to stem from immunization against the gut microbiota and have been implicated in the pathogenesis of several diseases, including multiple sclerosis. These antibodies target the alpha-Gal epitope, expressed on the terminal sugar units of glycoprotein or glycolipid of all mammals except apes, Old World monkeys and humans. The alpha-Gal is constitutively expressed in several bacteria constituting the brain microbiota, and alpha-Gal-like epitopes have been detected in gray matter, amyloid plaque, neurofibrillary tangles and corpora amylacea of the human brain, suggesting a potential link between anti-Gal and Alzheimer's disease etiopathogenesis. For the first time, our study searched for possible alterations of anti-Gal immunoglobulin levels in Alzheimer's disease patients. IgG and IgM blood levels were significantly lower, and IgA significantly higher in patients than in healthy subjects. These results suggest that such immunoglobulins might be implicated in Alzheimer's disease pathogenesis and open new scenarios in the research for new biomarkers and therapeutic strategies.

6.
Xenotransplantation ; 25(1)2018 01.
Artigo em Inglês | MEDLINE | ID: mdl-29057501

RESUMO

Xenogeneic decellularized heart valve scaffolds have the potential to overcome the limitations of existing bioprosthetic heart valves that have limited duration due to calcification and tissue degeneration phenomena. This article presents a review of 30 years of decellularization approaches adopted in cardiovascular tissue engineering, with a focus on the use, either individually or in combination, of different detergents. The safety and efficacy of cell-removal procedures are specifically reported and discussed, as well as the structure and biomechanics of the treated extracellular matrix (ECM). Detergent residues within the ECM, production of hyaluronan fragments, safe removal of cellular debris, and the persistence of the alpha-Gal epitope after the decellularization treatments are of particular interest as parameters for the identification of the best tissue for the manufacture of bioprostheses. Special attention has also been given to key factors that should be considered in the manufacture of the next generation of xenogeneic bioprostheses, where tissues must retain the ability to be remodeled and to grow in weight along with body reshaping.


Assuntos
Bioprótese/tendências , Próteses Valvulares Cardíacas/tendências , Pericárdio/cirurgia , Transplante Heterólogo , Animais , Detergentes/metabolismo , Matriz Extracelular/metabolismo , Humanos , Transplante Heterólogo/métodos
7.
Tissue Eng Part A ; 23(19-20): 1181-1195, 2017 10.
Artigo em Inglês | MEDLINE | ID: mdl-29053434

RESUMO

BACKGROUND: Glutaraldehyde (GLA) has been used to crosslink bioprosthetic heart valve (BHVs) tissues to enhance their stability, besides ensuring a satisfactory degree of immunological tolerance. Unfortunately, GLA fixation does not guarantee a complete tissue biocompatibility of BHVs in currently used devices. The interaction between preformed human anti-alpha-Gal antibody and alpha-Gal antigens promotes the calcification of GLA-treated alpha-Gal-positive tissue. Recently, an alarming correlation between the presence of the alpha-Gal epitope and a premature BHVs degeneracy was reported. This article presents the results of a novel treatment called FACTA, for the inactivation of the alpha-Gal epitopes in porcine aortic valve tissue and commercial BHVs. METHODS: Evaluation of the alpha-Gal epitope inactivation was performed through a patented ELISA test, confirmed by western blot, immunofluorescence, and immunohistochemical analyses. Investigations were also conducted to assess the in vitro propensity to trigger thrombosis, calcification, and worsening of FACTA-treated tissue. To explain the mechanism of action through which the FACTA treatment acts, a specific experimental model, based on the mass spectroscopy approach, was performed. RESULTS: The study confirms that GLA is able to ensure the inactivation of approximately half alpha-Gal epitopes originally present in both porcine aortic valve tissue and marketed BHVs. By subjecting tissues to the FACTA procedure, it was possible to obtain an alpha-Gal inactivation degree of about 95% alongside to a reduced propensity from 72.6% to 85.4% to the in vitro calcification for porcine aortic valve tissue and 80.5% for commercial treated BHVs. FACTA was effective in decreasing oxidative tissue damage and protecting collagen from degradation. Finally, FACTA could further mitigate or even abrogate the need for early anticoagulation therapies after BHV implantation. CONCLUSION: A novel treatment, called FACTA, is effective to produce biological tissues that are less susceptible to enzymatic and oxidative stress and structural degradation, calcification, and thrombus formation. FACTA-treated tissues display a clear improvement of their biocompatibility that is characterized by an almost complete inactivation of the alpha-Gal epitope. FACTA prevents the xenogeneic tissue antigens from reacting with the host immune system, ensuring an effective shield effect that makes the tissue surface less reactive and more biocompatible.


Assuntos
Bioprótese , Calcificação Fisiológica , Galactose/metabolismo , Técnicas de Inativação de Genes , Próteses Valvulares Cardíacas , Animais , Glutaral , Peroxidase do Rábano Silvestre/metabolismo , Humanos , Espectrometria de Massas , Oxirredução , Sus scrofa , Trombina/metabolismo
8.
Biomed Res Int ; 2017: 9274135, 2017.
Artigo em Inglês | MEDLINE | ID: mdl-28676861

RESUMO

The increasing urgency for replacement of pathological heart valves is a major stimulus for research on alternatives to glutaraldehyde-treated grafts. New xenogeneic acellular heart valve substitutes that can be repopulated by host cells are currently under investigation. Anionic surfactants, including bile acids, have been widely used to eliminate the resident cell components chiefly responsible for the immunogenicity of the tissue, even if detergent toxicity might present limitations to the survival and/or functional expression of the repopulating cells. To date, the determination of residual detergent has been carried out almost exclusively on the washings following cell removal procedures. Here, a novel HPLC-based procedure is proposed for the direct quantification of detergent (cholate, deoxycholate, and taurodeoxycholate) residues entrapped in the scaffold of decellularized porcine aortic and pulmonary valves. The method was demonstrated to be sensitive, reproducible, and extendable to different types of detergent. This assessment also revealed that cell-depleted heart valve scaffolds prepared according to procedures currently considered for clinical use might contain significant amount of surfactant.


Assuntos
Aorta/química , Bioprótese , Próteses Valvulares Cardíacas , Valvas Cardíacas , Tensoativos/química , Alicerces Teciduais/química , Animais , Suínos
9.
Int J Artif Organs ; 40(4): 142-149, 2017 May 09.
Artigo em Inglês | MEDLINE | ID: mdl-28362047

RESUMO

Several animal models are currently used for the surgical implantation of either biologic or biopolymeric scaffolds in order to provide in vivo assessment of tissue-engineered heart valves. The Vietnamese pig (VP) is herein proposed as a suitable recipient to test the function of novel bioengineered valve substitutes, in the reconstruction of the right ventricular outflow tract (RVOT). This review aims to provide a complete and exhaustive panel of physiological parameters and methodological information for preclinical studies of tissue-engineered heart valves in the VP animal model.


Assuntos
Próteses Valvulares Cardíacas , Engenharia Tecidual , Aloenxertos , Animais , Valva Aórtica/cirurgia , Ecocardiografia , Regeneração Tecidual Guiada , Modelos Animais , Desenho de Prótese , Suínos
10.
Biomed Mater ; 12(1): 015021, 2017 02 03.
Artigo em Inglês | MEDLINE | ID: mdl-28157718

RESUMO

Notwithstanding their wide exploitation, biological prosthetic heart valves are characterized by limited durability (10-15 years). The treatment of biological tissues with chemical crosslinking agents such as glutaraldehyde accounts for the enhanced risk of structural deterioration associated with the early failure of bioprosthetic valves. To overcome the shortcomings of the currently available solutions, adoption of decellularized biological tissues of animal origin has emerged as a promising approach. The present study aims to assess in vitro cardiovascular scaffolds composed of bovine pericardium decellularized with the novel TRITDOC (TRIton-X100 and TauroDeOxyCholic acid) procedure. The effects of the treatment have been assessed by means of histological, biomolecular, cellular, biochemical and biomechanical analyses. The TRITDOC procedure grants the complete decellularization of bovine pericardial scaffolds while preserving the extracellular matrix architecture and the biomechanical properties. With a dedicated ELISA test, the TRITDOC procedure has been proven to ensure the complete removal of the alphaGal antigen, responsible for hyperacute rejection and for long-term deterioration of xenogenic biomaterials. Static seeding of the acellular pericardial patches with human adipose-derived stem cells resulted in an evenly repopulated scaffold without signs of calcification. The in vitro cyto-/immuno-compatibility response of the TRITDOC-bovine pericardium was compared with glutaraldehyde-treated xenogenic pericardium collected from two bioprosthetic devices currently used in clinical practice: PERIMOUNT MAGNA and TRIFECTATM. TRITDOC-bovine pericardium exhibited lower complement activation, lower cytotoxicity and a lower tendency to secrete pro-inflammatory cytokines compared to the tested commercial bioprostheses. Therefore, TRITDOC-decellularized pericardium could be considered as possible candidate material for the production of prosthetic heart valves.


Assuntos
Materiais Biocompatíveis , Bioprótese , Próteses Valvulares Cardíacas , Pericárdio , Animais , Fenômenos Biomecânicos , Bovinos , Células Cultivadas , Ativação do Complemento , Reagentes de Ligações Cruzadas , Glutaral , Humanos , Técnicas In Vitro , Mediadores da Inflamação/metabolismo , Teste de Materiais , Octoxinol , Pericárdio/citologia , Ácido Taurodesoxicólico , Engenharia Tecidual , Alicerces Teciduais , Células U937
11.
Heart Vessels ; 31(11): 1862-1873, 2016 Nov.
Artigo em Inglês | MEDLINE | ID: mdl-27115146

RESUMO

Decellularized porcine aortic valve conduits (AVCs) implanted in a Vietnamese Pig (VP) experimental animal model were matched against decellularized and then cryopreserved AVCs to assess the effect of cryopreservation on graft hemodynamic performance and propensity to in vivo repopulation by host's cells. VPs (n = 12) underwent right ventricular outflow tract substitution using AVC allografts and were studied for 15-month follow-up. VPs were randomized into two groups, receiving AVCs treated with decellularization alone (D; n = 6) or decellularization/cryopreservation (DC; n = 6), respectively. Serial echocardiography was carried out to follow up hemodynamic function. All explanted AVCs were processed for light and electron microscopy. No signs of dilatation, progressive stenosis, regurgitation, and macroscopic calcification were echocardiographically observed in both D and DC groups. Explanted D grafts exhibited near-normal features, whereas the presence of calcification, inflammatory infiltrates, and disarray of elastic lamellae occurred in some DC grafts. In the unaltered regions of AVCs from both groups, almost complete re-endothelialization was observed for both valve cusps and aorta walls. In addition, side-by-side repopulation by recipient's fibroblasts, myofibroblasts, and smooth muscle cells was paralleled by ongoing tissue remodeling, as revealed by the ultrastructural identification of typical canals of collagen fibrillogenesis and elastogenesis-related features. Incipient neo-vascularization and re-innervation of medial and adventitial tunicae of grafted aortic walls were also detected for both D and DC groups. Cryopreservation did not affect post-implantation AVC hemodynamic behavior and was topically propensive to cell repopulation and tissue renewal, although graft deterioration including calcification was present in several areas. Thus, these preliminary data provide essential information on feasibility of decellularization and cryopreservation coupling in the perspective of treatment optimization and subsequent clinical trials using similarly treated human allografts as innovative heart valve substitutes.


Assuntos
Aorta/transplante , Valva Aórtica/transplante , Bioprótese , Implante de Prótese Vascular/instrumentação , Prótese Vascular , Criopreservação , Implante de Prótese de Valva Cardíaca/instrumentação , Próteses Valvulares Cardíacas , Aloenxertos , Animais , Aorta/fisiopatologia , Aorta/ultraestrutura , Valva Aórtica/fisiopatologia , Valva Aórtica/ultraestrutura , Implante de Prótese Vascular/efeitos adversos , Proliferação de Células , Ecocardiografia , Sobrevivência de Enxerto , Implante de Prótese de Valva Cardíaca/efeitos adversos , Hemodinâmica , Microscopia Eletrônica de Transmissão , Modelos Animais , Complicações Pós-Operatórias/patologia , Complicações Pós-Operatórias/fisiopatologia , Suínos , Fatores de Tempo
12.
PLoS One ; 9(6): e99593, 2014.
Artigo em Inglês | MEDLINE | ID: mdl-24940754

RESUMO

Tissue-engineered heart valves are proposed as novel viable replacements granting longer durability and growth potential. However, they require extensive in vitro cell-conditioning in bioreactor before implantation. Here, the propensity of non-preconditioned decellularized heart valves to spontaneous in body self-regeneration was investigated in a large animal model. Decellularized porcine aortic valves were evaluated for right ventricular outflow tract (RVOT) reconstruction in Vietnamese Pigs (n = 11) with 6 (n = 5) and 15 (n = 6) follow-up months. Repositioned native valves (n = 2 for each time) were considered as control. Tissue and cell components from explanted valves were investigated by histology, immunohistochemistry, electron microscopy, and gene expression. Most substitutes constantly demonstrated in vivo adequate hemodynamic performances and ex vivo progressive repopulation during the 15 implantation months without signs of calcifications, fibrosis and/or thrombosis, as revealed by histological, immunohistochemical, ultrastructural, metabolic and transcriptomic profiles. Colonizing cells displayed native-like phenotypes and actively synthesized novel extracellular matrix elements, as collagen and elastin fibers. New mature blood vessels, i.e. capillaries and vasa vasorum, were identified in repopulated valves especially in the medial and adventitial tunicae of regenerated arterial walls. Such findings correlated to the up-regulated vascular gene transcription. Neoinnervation hallmarks were appreciated at histological and ultrastructural levels. Macrophage populations with reparative M2 phenotype were highly represented in repopulated valves. Indeed, no aspects of adverse/immune reaction were revealed in immunohistochemical and transcriptomic patterns. Among differentiated elements, several cells were identified expressing typical stem cell markers of embryonic, hematopoietic, neural and mesenchymal lineages in significantly higher number and specific topographic distribution in respect to control valves. Following the longest follow-up ever realized in preclinical models, non-preconditioned decellularized allogeneic valves offer suitable microenvironment for in vivo cell homing and tissue remodeling. Manufactured with simple, timesaving and cost-effective procedures, these promising valve replacements hold promise to become an effective alternative, especially for pediatric patients.


Assuntos
Implante de Prótese de Valva Cardíaca , Próteses Valvulares Cardíacas , Regeneração/fisiologia , Aloenxertos/ultraestrutura , Animais , Forma Celular , Sobrevivência Celular , Células Cultivadas , Perfilação da Expressão Gênica , Imuno-Histoquímica , Imunofenotipagem , Sus scrofa , Transplante Homólogo
13.
PLoS One ; 9(4): e89755, 2014.
Artigo em Inglês | MEDLINE | ID: mdl-24699212

RESUMO

BACKGROUND: Despite the economic and medical importance of the pig, knowledge about its genome organization, gene expression regulation, and molecular mechanisms involved in physiological processes is far from that achieved for mouse and rat, the two most used model organisms in biomedical research. MicroRNAs (miRNAs) are a wide class of molecules that exert a recognized role in gene expression modulation, but only 280 miRNAs in pig have been characterized to date. RESULTS: We applied a novel computational approach to predict species-specific and conserved miRNAs in the pig genome, which were then subjected to experimental validation. We experimentally identified candidate miRNAs sequences grouped in high-confidence (424) and medium-confidence (353) miRNAs according to RNA-seq results. A group of miRNAs was also validated by PCR experiments. We established the subtle variability in expression of isomiRs and miRNA-miRNA star couples supporting a biological function for these molecules. Finally, miRNA and mRNA expression profiles produced from the same sample of 20 different tissue of the animal were combined, using a correlation threshold to filter miRNA-target predictions, to identify tissue-specific regulatory networks. CONCLUSIONS: Our data represent a significant progress in the current understanding of miRNAome in pig. The identification of miRNAs, their target mRNAs, and the construction of regulatory circuits will provide new insights into the complex biological networks in several tissues of this important animal model.


Assuntos
Biomarcadores/análise , Perfilação da Expressão Gênica , Redes Reguladoras de Genes , MicroRNAs/genética , RNA Mensageiro/genética , Animais , Pareamento de Bases , Sequência de Bases , Biologia Computacional , Sequenciamento de Nucleotídeos em Larga Escala , Camundongos , Dados de Sequência Molecular , Especificidade de Órgãos , Ratos , Reação em Cadeia da Polimerase em Tempo Real , Reação em Cadeia da Polimerase Via Transcriptase Reversa , Suínos
14.
Xenotransplantation ; 20(4): 252-61, 2013.
Artigo em Inglês | MEDLINE | ID: mdl-23865597

RESUMO

BACKGROUND: Glutaraldehyde fixation does not guarantee complete tissue biocompatibility in current clinical bioprosthetic heart valves (BHVs). Particularly, circulating anti-αGal human antibodies increase significantly from just 10 days after a BHV implantation. The inactivation of such epitope should be mandatory to meet the requirements for a perspectively safe clinical application; nevertheless, its quantitative assessment in commercially available BHVs has never been carried out. METHODS: In this investigation, seven different models of BHVs were tested. The number of epitopes was determined with reference to a standard αGal source by an ELISA test. The presence of xenoantigen was subsequently confirmed by immunofluorescence analysis. Porcine tissue, knockout for the αGal epitopes, was used as negative control. RESULTS: Epic™ valve was the only model among those tested, in which the αGal antigen appeared to be completely shielded. Composite Trifecta™ valve exhibited conflicting results: cusps of bovine pericardial tissue were devoid of reactive αGal epitopes, while the stent cover strip of porcine pericardium still maintained 30% of active antigens originally present in native tissue. All other tested BHVs express an αGal amount not significantly different from that exhibited by porcine Mosaic(®) valve (5.2 ± 0.6 × 10(10) each 10 mg of tissue). CONCLUSIONS: For the first time, the quantitative evaluation of the αGal epitope in heart valve bioprostheses, already in clinical practice for about 40 yrs, was finally determined. Such quantification might provide indications of biocompatibility relevant for the selection of bioprosthetic devices and an increase in the confidence of the patient. It might become a major quality control tool in the production and redirection of future investigation in the quest for αGal-free long-lasting substitutes.


Assuntos
Epitopos/imunologia , Galactosiltransferases/imunologia , Glutaral/farmacologia , Próteses Valvulares Cardíacas , Valvas Cardíacas/efeitos dos fármacos , Valvas Cardíacas/imunologia , Transplante Heterólogo/métodos , Animais , Anticorpos Anti-Idiotípicos/imunologia , Antígenos/imunologia , Bovinos , Ensaio de Imunoadsorção Enzimática/métodos , Epitopos/genética , Galactosiltransferases/genética , Técnicas de Inativação de Genes , Rejeição de Enxerto/imunologia , Humanos , Masculino , Teste de Materiais , Modelos Animais , Suínos
15.
J Cardiovasc Transl Res ; 6(4): 660-1, 2013 Aug.
Artigo em Inglês | MEDLINE | ID: mdl-23765554

RESUMO

Tissue engineering of heart valves investigates the possibility to create a fully compatible and biomimetic graft able to provide host cell repopulation like the native living valve. Decellularized aortic and pulmonary valves and synthetic polymers have been used to promote the creation of a native-like scaffold suitable to be colonized by cells either in vitro, in dynamic bioreactors or in vivo using different animal models. The herein presented research provides the intra-operative protocol and details of surgical technique. Porcine aortic valve conduits were decellularized and implanted in the right ventricular outflow tract of Vietnamese pigs.


Assuntos
Valva Aórtica/cirurgia , Bioprótese , Implante de Prótese de Valva Cardíaca/instrumentação , Próteses Valvulares Cardíacas , Valva Pulmonar/cirurgia , Engenharia Tecidual , Animais , Reatores Biológicos , Células Cultivadas , Modelos Animais , Desenho de Prótese , Suínos , Engenharia Tecidual/métodos , Alicerces Teciduais
16.
Xenotransplantation ; 19(4): 215-20, 2012.
Artigo em Inglês | MEDLINE | ID: mdl-22909134

RESUMO

Xenogeneic tissues are currently employed in clinical practice to create biological substitutes (bioprosthetic heart valves) and in the repair of various damaged tissues (pericardium, gastric-mucosa, nerves, cartilage). Many studies have shown that xenogeneic tissues express superficial epitopes as alpha-Gal, capable of triggering hyperacute and acute vascular rejection phenomena. Currently, no tissue treatment has proven able to completely mask or inactivate such epitopes. In fact, neither glutaraldehyde fixation nor decellularisation procedures ensure a definitive solution because of the persistence of reactive xenoantigen residues. The ability to ascertain alpha-Gal epitope removal from a xenogeneic tissue is closely related to the possibility of its quantitative determination. In the past, detection of the alpha-Gal epitope relied on the use of alpha-Gal reactive isolectin molecules and was limited to isolated cells. Recently, the quantitative evaluation of this antigen has been carried out in whole connective tissue through the use of the monoclonal antibody M86. This article provides an overview of the implications of the alpha-Gal epitope in the current clinical scenario and a definitive comparison between the reliability and specificity of isolectines vs. M86 in alpha-Gal determination.


Assuntos
Antígenos Heterófilos/análise , Transplante Heterólogo/imunologia , Trissacarídeos/análise , Animais , Anticorpos Monoclonais , Bioprótese , Epitopos/análise , Rejeição de Enxerto/imunologia , Rejeição de Enxerto/prevenção & controle , Humanos , Lectinas , Engenharia Tecidual , Alicerces Teciduais , Transplante Heterólogo/efeitos adversos
17.
Artif Organs ; 36(6): E138-50, 2012 Jun.
Artigo em Inglês | MEDLINE | ID: mdl-22512408

RESUMO

This study features the longest experimental follow-up for decellularized heart valves implanted in an animal model. Porcine aortic heart valves were decellularized according to a disclosed standardized method in which TRITON X-100 and sodium cholate (TRICOL) are used in succession, followed by a further treatment with the endonuclease Benzonase to completely remove the nucleic acid remnants. Experimental animals (n = 17), represented by Vietnamese pigs (VPs), received a decellularized aortic allograft as a substitute for the replacement of their right ventricular outflow tract. The surgical implantation of the TRICOL-treated aortic valve conduit was successful in 11 VPs, while perioperative or postoperative complications occurred in the remaining six animals. In the sham-operated group (n = 4), the native pulmonary root was excised and immediately reimplanted orthotopically in the same animal. Echocardiography demonstrated a satisfactory hemodynamic performance of the TRICOL-treated valves during follow-up as well as the absence of relevant leaflet alterations concerning thickness and motility or valve insufficiency. At explantation, macroscopic inspection of tissue-engineered heart valve conduits did not evidence calcifications and showed a decreased wall thickness, comparable to that of the reimplanted native pulmonary roots. Noteworthy, extended functional performance, recovery of DNA content, and active extracellular matrix precursor incorporation are apparently compatible with the properties of a living self-supporting substitute.


Assuntos
Bioprótese , Implante de Prótese de Valva Cardíaca , Próteses Valvulares Cardíacas , Valvas Cardíacas/fisiologia , Valvas Cardíacas/cirurgia , Engenharia Tecidual , Animais , Detergentes/química , Ecocardiografia , Feminino , Seguimentos , Glicosaminoglicanos/metabolismo , Valvas Cardíacas/ultraestrutura , Masculino , Octoxinol/química , Cuidados Pós-Operatórios , Colato de Sódio/química , Suínos , Engenharia Tecidual/métodos
18.
Biochem Res Int ; 2012: 979351, 2012.
Artigo em Inglês | MEDLINE | ID: mdl-22461983

RESUMO

Cardiac valves are dynamic structures, exhibiting a highly specialized architecture consisting of cells and extracellular matrix with a relevant proteoglycan and glycosaminoglycan content, collagen and elastic fibers. Biological valve substitutes are obtained from xenogenic cardiac and pericardial tissues. To overcome the limits of such non viable substitutes, tissue engineering approaches emerged to create cell repopulated decellularized scaffolds. This study was performed to determine the glycosaminoglycans content, distribution, and disaccharides composition in porcine aortic and pulmonary valves and in pericardium before and after a detergent-based decellularization procedure. The fine structural characteristics of galactosaminoglycans chondroitin sulfate and dermatan sulfate were examined by FACE. Furthermore, the mechanical properties of decellularized pericardium and its propensity to be repopulated by in vitro seeded fibroblasts were investigated. Results show that galactosaminoglycans and hyaluronan are differently distributed between pericardium and valves and within heart valves themselves before and after decellularization. The distribution of glycosaminoglycans is also dependent from the vascular district and topographic localization. The decellularization protocol adopted resulted in a relevant but not selective depletion of galactosaminoglycans. As a whole, data suggest that both decellularized porcine heart valves and bovine pericardium represent promising materials bearing the potential for future development of tissue engineered heart valve scaffolds.

19.
Tissue Eng Part A ; 18(7-8): 725-36, 2012 Apr.
Artigo em Inglês | MEDLINE | ID: mdl-22011064

RESUMO

Scaffolds for tissue engineering must be designed to direct desired events such as cell attachment, growth, and differentiation. The incorporation of extracellular matrix-derived peptides into biomaterials has been proposed to mimic biochemical signals. In this study, three synthetic fragments of fibronectin, vitronectin, and stromal-derived factor-1 were investigated for the first time as potential adhesive sequences for cardiomyocytes (CMs) compared to smooth muscle cells. CMs are responsive to all peptides to differing degrees, demonstrating the existence of diverse adhesion mechanisms. The pretreatment of nontissue culture well surfaces with the (Arginine-Glycine-Aspartic Acid) RGD sequence anticipated the appearance of CMs' contractility compared to the control (fibronectin-coated well) and doubled the length of cell viability. Future prospects are the inclusion of these sequences into biomaterial formulation with the improvement in cell adhesion that could play an important role in cell retention during dynamic cell seeding.


Assuntos
Materiais Biomiméticos/farmacologia , Adesão Celular/efeitos dos fármacos , Miócitos Cardíacos/citologia , Miócitos Cardíacos/efeitos dos fármacos , Peptídeos/farmacologia , Engenharia Tecidual/métodos , Animais , Células Cultivadas , Imuno-Histoquímica , Ratos , Ratos Endogâmicos F344
20.
Eur J Cardiothorac Surg ; 39(4): 523-31, 2011 Apr.
Artigo em Inglês | MEDLINE | ID: mdl-21163670

RESUMO

The development of viable and functional tissue-engineered heart valves (TEHVs) is a challenge that, for almost two decades, the scientific community has been committed to face to create life-lasting prosthetic devices for treating heart valve diseases. One of the main drawbacks of tissue-based commercial substitutes, xenografts and homografts, is their lack of viability, and hence failure to grow, repair, and remodel. In adults, the average bioprostheses life span is around 13 years, followed by structural valve degeneration, such as calcification; in pediatric, mechanical valves are commonly used instead of biological substitutes, as in young patients, the mobilization of calcium, due to bone remodeling, accelerates the calcification process. Moreover, neither mechanical nor bioprostheses are able to follow children's body growth. Cell seeding and repopulation of acellular heart valve scaffolds, biological and polymeric, appears as a promising way to create a living valve. Biomechanical stimuli have significant impact on cell behavior including in vitro differentiation, and physiological hemodynamic conditioning has been found to promote new tissue development. These concepts have led scientists to design bioreactors to mimic the in vivo environment of heart valves. Many different types of somatic and stem cells have been tested for colonizing both the surface and the core of the valve matrix but controversial results have been achieved so far.


Assuntos
Reatores Biológicos , Próteses Valvulares Cardíacas/tendências , Valvas Cardíacas , Desenho de Prótese/tendências , Engenharia Tecidual/tendências , Alicerces Teciduais , Bioprótese/tendências , Humanos
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