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1.
J. venom. anim. toxins incl. trop. dis ; 25: e20190027, 2019. tab, graf, ilus
Article in English | LILACS, VETINDEX | ID: biblio-1040382

ABSTRACT

Bone tissue repair remains a challenge in tissue engineering. Currently, new materials are being applied and often integrated with live cells and biological scaffolds. The fibrin biopolymer (FBP) proposed in this study has hemostatic, sealant, adhesive, scaffolding and drug-delivery properties. The regenerative potential of an association of FBP, biphasic calcium phosphate (BCP) and mesenchymal stem cells (MSCs) was evaluated in defects of rat femurs. Methods: Adult male Wistar rats were submitted to a 5-mm defect in the femur. This was filled with the following materials and/or associations: BPC; FBP and BCP; FBP and MSCs; and BCP, FBP and MSCs. Bone defect without filling was defined as the control group. Thirty and sixty days after the procedure, animals were euthanatized and subjected to computed tomography, scanning electron microscopy and qualitative and quantitative histological analysis. Results: It was shown that FBP is a suitable scaffold for bone defects due to the formation of a stable clot that facilitates the handling and optimizes the surgical procedures, allowing also cell adhesion and proliferation. The association between the materials was biocompatible. Progressive deposition of bone matrix was higher in the group treated with FBP and MSCs. Differentiation of mesenchymal stem cells into osteogenic lineage was not necessary to stimulate bone formation. Conclusions: FBP proved to be an excellent scaffold candidate for bone repair therapies due to application ease and biocompatibility with synthetic calcium-based materials. The satisfactory results obtained by the association of FBP with MSCs may provide a more effective and less costly new approach for bone tissue engineering.(AU)


Subject(s)
Animals , Rats , Biopolymers , Bone Matrix , Fibrin , Mesenchymal Stem Cells , Biological Products
2.
Coluna/Columna ; 9(2): 193-198, abr.-jun. 2010. ilus
Article in Portuguese | LILACS | ID: lil-557028

ABSTRACT

Foi demonstrado recentemente que o complexo de histocompatibilidade principal de classe I (MHC I), expresso no sistema nervoso central (SNC), não funciona somente como molécula com papel imunológico, mas também como parte de um mecanismo envolvido na plasticidade sináptica. A expressão de MHC I interfere na intensidade e seletividade da retração de sinapses em contato com neurônios que sofreram lesão e também influencia a reatividade das células gliais próximas a esses neurônios. A intensidade do rearranjo sináptico e resposta glial após lesão, ligadas à expressão de MHC I no SNC, repercute em diferenças na capacidade regenerativa e recuperação funcional em linhagens de camundongos isogênicos. Dessa forma, os novos aspectos sobre a função do MHC I no SNC direcionam futuras pesquisas no sentido de buscar o envolvimento do MHC I em doenças neurológicas e também o desenvolvimento de novas estratégias terapêuticas.


It has been recently demonstrated that the major histocompatibility complex of class I (MHC I) expressed in the central nervous system (CNS) does not only function as a molecule of the immune system, but also plays a role in the synaptic plasticity. The expression of MHC I influences the intensity and selectivity of elimination of synapses apposed to neurons that were subjected to lesion, besides influencing the reactivity of neighboring glial cells. MHC I expression and the degree of synaptic rearrangement and glial response after injury correlate with differences in the regenerative potential and functional recovery of isogenic mice strains. In this way, the new aspects regarding MHC I functions in the CNS may guide further studies aiming at searching the involvement of MCH I in neurologic disorders, as well as the development of new therapeutic strategies.


El complejo mayor de histocompatibilidad de clase I (MHC I), expresado en el sistema nervioso central (SNC), no sólo funciona como una molécula con función inmunológica, sino que es crucial para las respuestas del tejido nervioso en casos de lesiones. El MHC I está involucrado con los procesos de plasticidad sináptica y las células gliales en el microambiente de la médula espinal después de realizada axotomía periférica. La expresión de MHC I interfiere con la intensidad y la forma en que se producen la contracción y la eliminación de sinapsis con relación a las neuronas, cuyos axones se han comprometido, y también influye en la reactividad de las células gliales, cerca de estas neuronas. La intensidad de estos cambios, que responden a la expresión de MHC I en el SNC, implica diferencias en la capacidad de regeneración axonal de las células dañadas por axotomía, por lo que el nivel de expresión de las moléculas MHC I se relaciona con el proceso de regeneración de los axones y, en consecuencia, con la recuperación funcional. Por consiguiente, estos nuevos aspectos sobre la función del MHC I en el SNC orientan nuevas investigaciones con miras a entender el papel del MHC I en las enfermedades neurológicas y a desarrollar nuevas estrategias terapéuticas.


Subject(s)
Axons , Axotomy , Major Histocompatibility Complex , Neuronal Plasticity , Spinal Cord , Synapses
3.
Braz. j. morphol. sci ; 21(3): 125-130, Jul.-Sept. 2004. ilus, mapas, tab, graf
Article in English | LILACS | ID: lil-406366

ABSTRACT

Although the role of many small proteoglycans in regeneration of the nervous system has been established, little is known about the involvement of large proteoglycans. In this study, we evaluated the effects of aggrecan, a high molecular mass proteoglycan, on Schwann cells in vitro and investigated its effects on axonal regeneration after sciatic nerve tubulization. The number of regenerated axons and their morphometrical parameters were determined in vivo. Aggrecan increased the number and viability of Schwann cells in vitro. Similarly, the number of regenerated fibers increased significantly when aggrecan was applied in vivo, but there were no alterations in the morphometrical parameters. These results indicate that aggrecan contributes to the regeneration of peripheral axons and has a positive effect on the Schwann cells.


Subject(s)
Animals , Rats , Cell Culture Techniques , Cells/cytology , Extracellular Matrix , Glycosaminoglycans , In Vitro Techniques , Proteoglycans , Nerve Regeneration/physiology , Schwann Cells , Birds , Rats, Wistar , Wounds and Injuries
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