| Literature DB >> 34499229 |
Omar Uribe-Juárez1, Rafael Godínez2, Juan Morales-Corona3, Myrian Velasco4, Roberto Olayo-Valles3, M C Acosta-García5, E J Alvarado2, Luis Miguel-Alavez5, Oscar-J Carrillo-González2, María G Flores-Sánchez6, Roberto Olayo3.
Abstract
Cardiovascular diseases are the leading cause of death in the world, cell therapies have been shown to recover cardiac function in animal models. Biomaterials used as scaffolds can solve some of the problems that cell therapies currently have, plasma polymerized pyrrole (PPPy) is a biomaterial that has been shown to promote cell adhesion and survival. The present research aimed to study PPPy nanoparticles (PPPyN) interaction with adult rat ventricular cardiomyocytes (ARVC), to explore whether PPPyN could be employed as a nanoscaffold and develop cardiac microtissues. PPPyN with a mean diameter of 330 nm were obtained, the infrared spectrum showed that some pyrrole rings are fragmented and that some fragments of the ring can be dehydrogenated during plasma synthesis, it also showed the presence of amino groups in the structure of PPPyN. PPPyN had a significant impact on the ARVC´s shape, delaying dedifferentiation, necrosis, and apoptosis processes, moreover, the cardiomyocytes formed cell aggregates up to 1.12 mm2 with some aligned cardiomyocytes and generated fibers on its surface similar to cardiac extracellular matrix. PPPyN served as a scaffold for adult ARVC. Our results indicate that PPPyN-scaffold is a biomaterial that could have potential application in cardiac cell therapy (CCT).Entities:
Mesh:
Substances:
Year: 2021 PMID: 34499229 PMCID: PMC8429391 DOI: 10.1007/s10856-021-06595-7
Source DB: PubMed Journal: J Mater Sci Mater Med ISSN: 0957-4530 Impact factor: 3.896
Fig. 1a PPPyN (red circle) synthesis in the plasma reactor, b SEM image of PPPyN, c infrared spectrum of PPPyN, and d PPPyN size distribution
Fig. 2ARVC 1 day of culture a optical microscopy b SEM image
Fig. 3a ARVC at 7th day of culture. b ARVC shape ratio (RL:W) histogram and boxplot
Fig. 4Cardiomyocytes with PPPyN a 1 day of culture. b 8 days of culture. c 15 days of culture. d 30 days of culture
Fig. 5SEM images of ARVC cultured with PPPyN after 30 days of culture. a ARVC with PPPyN on its surface. b Group of aligned ARVC
Fig. 6ARVC cultured with PPPyN after 30 days of culture. a SEM image of fragmented cellular aggregates, b ARVC shape ratio (RL:W) histogram and boxplot
Fig. 7a ARVC shape ratio (RL:W) boxplots, control and PPPyN groups. b Boxplots after Box–Cox transformation
Fig. 8a ARVC with fibers on its surface. b ARVC surface close-up