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1.
Acta bioquím. clín. latinoam ; 47(2): 399-406, abr.-jun. 2013. ilus, graf, tab
Article in Spanish | LILACS | ID: lil-694562

ABSTRACT

Las nanopartículas magnéticas (MNP) complejadas con vectores génicos pueden, en presencia de un campo magnético externo, amplificar sustancialmente la eficiencia de la transferencia génica. Esta técnica, denominada magnetofección, es de gran interés en el campo de la terapia génica. En este estudio se caracterizó la mejora de transferencia génica en células gliales B92 utilizando complejos constituidos por diferentes proporciones de MNP asociadas a dos vectores adenovirales, a saber: los complejos entre las MNP denominadas PEI-Mag2 asociadas al adenovector RAd-GFP que expresa la proteína fluorescente verde GFP o al adenovector RAd-DsRed que expresa la proteína fluorescente roja DsRed2. Se demostró que para ambos vectores, a medida que la relación MNP/partícula viral física (PVF) va aumentando, la amplificación de la transfección también aumenta hasta que se llega a una relación MNP/PVF a partir de la cual el factor de amplificación alcanza un plateau. Se determinó que para el complejo PEI-Mag2/RAd-GFP la relación a partir de la cual se alcanza el plateau es de aproximadamente 0,5 fg Fe/PVF mientras que para el complejo PEI-Mag2/RAd-DsRed, esta relación corresponde a aproximadamente 71 fg Fe/PVF. Se concluye que los dos complejos magnéticos estudiados representan promisorias herramientas para mejorar la eficiencia en la terapia génica en células cerebrales.


It is known that certain types of magnetic nanoparticles (MNPs) complexed to gene vectors can, in the presence of an external magnetic field, greatly enhance gene transfer into cells. This technique, called magnetofection, is of great relevance to gene therapy. In the present study the ability of MNP/adenovector complexes to enhance gene transfer to B92 glial cells was assessed. Two complexes were assessed, namely PEI-Mag2/RAd-GFP and PEI-Mag2/RAd-DsRed, which are constituted by the MNP PEI-Mag2 complexed to the adenovector RAd-GFP (expressing the green fluorescent protein GFP) and RAd-DsRed (expressing the red fluorescent protein DsRed2), respectively. It was shown that for both vectors, an increase in the ratio MNP/PVP (physical viral particle) is paralleled by an increase in transduction efficiency, up to a certain threshold value at which an efficiency plateau is reached. This threshold value was 0.5 fg Fe/PVP for the RAd-GFP complex and about 71 fg Fe/PVP for the RAd-DsRed complex. It can be concluded that both magnetic complexes assessed in this study represent promising tools for enhancing the efficiency of gene therapy in brain cells.


As nanopartículas magnéticas (MNPs) complexadas com vetores de genes podem, em presença de um campo magnético externo, aumentar consideravelmente a eficiência da transferência gênica. Esta técnica, chamada magnetofecção, é de grande relevância para a terapia genética. No presente estudo, foi caracterizada a melhoria de transferência de genes em células gliais B92 utilizando complexos constituídos por diferentes proporções de MNP associadas a dois vetores adenovirais, a saber: os complexos entre as MNP denominadas PEI-Mag2 associadas ao adenovetor RAd-GFP que expressa a proteína fluorescente verde GFP ou ao adenovetor RAd-DsRed que expressa a proteína fluorescente vermelha DsRed2. Foi demonstrado que para ambos os vetores, enquanto a relação MNP/partícula viral física (PVF) vai aumentando, a amplificação da transfecção também aumenta até que se chega a uma relação MNP/PVF a partir da qual o fator de amplificação alcança um limiar. Determinou-se que para o complexo PEI-Mag2/RAd-GFP a relação a partir da qual se atinge o limiar é de aproximadamente 0,5 fg Fe/PVF ao passo que para o complexo PEI-Mag2/RAd-DsRed, esta relação corresponde a aproximadamente 71 fg Fe/PVF. Conclui-se que os dois complexos magnéticos estudados representam promissoras ferramentas para melhorar a eficiência na terapia de genes em células cerebrais.


Subject(s)
Animals , Rats , Glioma/cerebrospinal fluid , Magnetite Nanoparticles , Neoplasms/cerebrospinal fluid , Gene Transfer Techniques , Nervous System , Neuroglia
2.
Biol. Res ; 45(2): 135-138, 2012. tab
Article in English | LILACS | ID: lil-648572

ABSTRACT

High-grade gliomas are highly vascularized tumors. Neo-angiogenesis plays a key role in tumor growth and resistance to therapy. A cerebrospinal fluid (CSF) sample could be a useful way to obtain pro-angiogenic predictive or prognostic markers at different stages of the disease. As a first step we looked for pro-angiogenic activity in the CSF of patients with high-grade gliomas. We performed the chicken embryo chorio-allantoic membrane (CAM) assay to study the angiogenic potential of the cerebrospinal fluid (CSF), obtained either by lumbar puncture (LP) or craniotomy from six patients with high-grade brain tumors (three glioblastoma (WHO grade IV), one anaplastic oligodendroglioma (WHO grade III), two anaplastic ganglioglioma (WHO grade III)), and four healthy controls. Significantly increased neo-angiogenesis was observed on the surface of the growing CAM in the 6 patients with high-grade gliomas compared to controls (3.69 ± 1.23 versus 2.16 ± 0.97 capillaries per area (mean ± SD), p<0.005). There was no statistical difference related to the hystological grade of the tumor (WHO grade III or IV), previous treatment (radio-chemotherapy plus temozolomide, temozolomide alone or no treatment), or the site of CSF sample (surgery or lumbar puncture). Our results suggest a pro-angiogenic potential in the CSF of patients with high-grade gliomas.


Subject(s)
Adult , Animals , Chick Embryo , Humans , Male , Middle Aged , Brain Neoplasms/cerebrospinal fluid , Chorioallantoic Membrane/blood supply , Glioma/cerebrospinal fluid , Neovascularization, Pathologic/etiology , Brain Neoplasms/blood supply , Case-Control Studies , Craniotomy , Cerebrospinal Fluid/physiology , Glioma/blood supply , Neoplasm Staging , Predictive Value of Tests , Prognosis
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