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1.
Biomédica (Bogotá) ; 38(3): 388-397, jul.-set. 2018. graf
Article in English | LILACS | ID: biblio-973992

ABSTRACT

Abstract Introduction: Cerebral ischemia is the third cause of death risk in Colombia and the first cause of physical disability worldwide. Different studies on the silencing of the cyclin-dependent kinase 5 (CDK5) have shown that reducing its activity is beneficial in ischemic contexts. However, its effect on neural cell production after cerebral ischemia has not been well studied yet. Objective: To evaluate CDK5 silencing on the production of neurons and astrocytes after a focal cerebral ischemia in rats. Materials and methods: We used 40 eight-week-old male Wistar rats. Both sham and ischemia groups were transduced at CA1 hippocampal region with an adeno-associated viral vector using a noninterfering (shSCRmiR) and an interfering sequence for CDK5 (shCDK5miR). We injected 50 mg/kg of bromodeoxyuridine intraperitoneally from hour 24 to day 7 post-ischemia. We assessed the neurological abilities during the next 15 days and we measured the immunoreactivity of bromodeoxyuridine (BrdU), doublecortin (DCX), NeuN, and glial fibrillary acid protein (GFAP) from day 15 to day 30 post-ischemia. Results: Our findings showed that CDK5miR-treated ischemic animals improved their neurological score and presented increased BrdU+ cells 15 days after ischemia, which correlated with higher DCX and lower GFAP fluorescence intensities, and, although mature neurons populations did not change, GFAP immunoreactivity was still significantly reduced at 30 days post-ischemia in comparison with untreated ischemic groups. Conclusion: CDK5miR therapy generated the neurological recovery of ischemic rats associated with the induction of immature neurons proliferation and the reduction of GFAP reactivity at short and longterm post-ischemia.


Resumen Introducción. La isquemia cerebral es la tercera causa de riesgo de muerte en Colombia y la primera causa de discapacidad física en el mundo. En diversos estudios en los que se silenció la cinasa 5 dependiente de la ciclina (CDK5) se ha demostrado que la reducción de su actividad es beneficiosa frente a la isquemia. Sin embargo, su efecto sobre la neurogénesis después de la isquemia no se ha dilucidado suficientemente. Objetivo. Evaluar el silenciamiento de la CDK5 en la neurogénesis y la gliogénesis después de la isquemia cerebral focal en ratas. Materiales y métodos. Se usaron 40 machos de rata Wistar de ocho semanas de edad. Los grupos de control y los isquémicos sometidos a transducción en la región del hipocampo CA1, se inyectaron intraperitonealmente por estereotaxia con 50 mg/kg de bromodesoxiuridina (BrdU) a partir de las 24 horas y hasta el día 7 después de la isquemia, con un vector viral asociado a adenovirus usando una secuencia no interferente (SCRmiR) y una interferente (CDK5miR). Se evaluó la capacidad neurológica durante los quince días siguientes y se detectó la capacidad de inmunorreacción para la BrdU, la proteína doblecortina (DCX), los núcleos neuronales (NeuN), y la proteína fibrilar acídica de la glía (Glial Fibrillary Acidic Protein, GFAP) a los 15 y 30 días de la isquemia. Resultados. Los animales isquémicos tratados con CDK5miR mejoraron su puntuación neurológica y presentaron un incremento de la BrdU+ a los 15 días de la isquemia, lo cual se correlacionó con una mayor intensidad de la DCX+ y una menor de la GFAP+. No hubo modificación de los NeuN+, pero sí una reducción significativa de la GFAP+ a los 30 días de la isquemia en los animales tratados comparados con los animales isquémicos no tratados. Conclusión. La terapia con CDK5miR generó la recuperación neurológica de ratas isquémicas asociada con la inducción de la neurogénesis y el control de la capacidad de reacción de la proteína GFAP a corto y largo plazo después de la isquemia.


Subject(s)
Animals , Male , Rats , Genetic Therapy , Brain Ischemia/therapy , Neuroglia/physiology , RNA, Small Interfering/therapeutic use , RNA Interference , Cyclin-Dependent Kinase 5/antagonists & inhibitors , Neurogenesis/genetics , Molecular Targeted Therapy , Genetic Vectors/therapeutic use , Biomarkers , Genetic Therapy/methods , Brain Ischemia/genetics , Brain Ischemia/pathology , Astrocytes/pathology , Carotid Stenosis , Rats, Wistar , Dependovirus/genetics , RNA, Small Interfering/administration & dosage , DNA Replication , Drug Evaluation , Cyclin-Dependent Kinase 5/genetics , Molecular Targeted Therapy/methods , Doublecortin Protein , Ligation , Neurons/pathology
2.
Clinics ; 73(supl.1): e476s, 2018. graf
Article in English | LILACS | ID: biblio-952839

ABSTRACT

Gene therapy has been evaluated for the treatment of prostate cancer and includes the application of adenoviral vectors encoding a suicide gene or oncolytic adenoviruses that may be armed with a functional transgene. In parallel, versions of adenoviral vector expressing the p53 gene (Ad-p53) have been tested as treatments for head and neck squamous cell carcinoma and non-small cell lung cancer. Although Ad-p53 gene therapy has yielded some interesting results when applied to prostate cancer, it has not been widely explored, perhaps due to current limitations of the approach. To achieve better functionality, improvements in the gene transfer system and the therapeutic regimen may be required. We have developed adenoviral vectors whose transgene expression is controlled by a p53-responsive promoter, which creates a positive feedback mechanism when used to drive the expression of p53. Together with improvements that permit efficient transduction, this new approach was more effective than the use of traditional versions of Ad-p53 in killing prostate cancer cell lines and inhibiting tumor progression. Even so, gene therapy is not expected to replace traditional chemotherapy but should complement the standard of care. In fact, chemotherapy has been shown to assist in viral transduction and transgene expression. The cooperation between gene therapy and chemotherapy is expected to effectively kill tumor cells while permitting the use of reduced chemotherapy drug concentrations and, thus, lowering side effects. Therefore, the combination of gene therapy and chemotherapy may prove essential for the success of both approaches.


Subject(s)
Humans , Male , Prostatic Neoplasms/therapy , Genetic Therapy/methods , Adenoviridae/genetics , Carcinoma, Non-Small-Cell Lung/genetics , Genetic Vectors/therapeutic use , Lung Neoplasms/genetics , Prostatic Neoplasms/genetics , Prostatic Neoplasms/immunology , Tumor Suppressor Protein p53/biosynthesis , Prostate-Specific Antigen/genetics , Genes, Transgenic, Suicide , Neoplasm Proteins/genetics
3.
Einstein (Säo Paulo) ; 15(3): 369-375, July-Sept. 2017. tab, graf
Article in English | LILACS | ID: biblio-891391

ABSTRACT

ABSTRACT The ability to make site-specific modifications to the human genome has been an objective in medicine since the recognition of the gene as the basic unit of heredity. Thus, gene therapy is understood as the ability of genetic improvement through the correction of altered (mutated) genes or site-specific modifications that target therapeutic treatment. This therapy became possible through the advances of genetics and bioengineering that enabled manipulating vectors for delivery of extrachromosomal material to target cells. One of the main focuses of this technique is the optimization of delivery vehicles (vectors) that are mostly plasmids, nanostructured or viruses. The viruses are more often investigated due to their excellence of invading cells and inserting their genetic material. However, there is great concern regarding exacerbated immune responses and genome manipulation, especially in germ line cells. In vivo studies in in somatic cell showed satisfactory results with approved protocols in clinical trials. These trials have been conducted in the United States, Europe, Australia and China. Recent biotechnological advances, such as induced pluripotent stem cells in patients with liver diseases, chimeric antigen receptor T-cell immunotherapy, and genomic editing by CRISPR/Cas9, are addressed in this review.


RESUMO A habilidade de fazer modificações pontuais no genoma humano tem sido o objetivo da medicina desde o conhecimento do DNA como unidade básica da hereditariedade. Entende-se terapia gênica como a capacidade do melhoramento genético por meio da correção de genes alterados (mutados) ou modificações sítio-específicas, que tenham como alvo o tratamento terapêutico. Este tipo de procedimento tornou-se possível por conta dos avanços da genética e da bioengenharia, que permitiram a manipulação de vetores para a entrega do material extracromossomal em células-alvo. Um dos principais focos desta técnica é a otimização dos veículos de entrega (vetores) que, em sua maioria, são plasmídeos, nanoestruturados ou vírus − sendo estes últimos os mais estudados, devido à sua excelência em invadir as células e inserir seu material genético. No entanto, existe grande preocupação referente às respostas imunes exacerbadas e à manipulação do genoma, principalmente em linhagens germinativas. Estudos em células somáticas in vivo apresentaram resultados satisfatórios, e já existem protocolos aprovados para uso clínico. Os principais trials têm sido conduzidos nos Estados Unidos, Europa, Austrália e China. Recentes avanços biotecnológicos empregados para o aprimoramento da terapia gênica, como células-tronco pluripotentes induzidas em pacientes portadores de doenças hepáticas, imunoterapia com células T do receptor do antígeno quimera e edição genômica pelos sistema CRISPR/Cas9, são abordados nesta revisão.


Subject(s)
Humans , Animals , Genetic Therapy/methods , CRISPR-Cas Systems/genetics , Gene Editing/methods , Receptors, Antigen, T-Cell/genetics , Genetic Therapy/trends , Genetic Vectors/genetics , Genetic Vectors/therapeutic use
4.
Braz. j. med. biol. res ; 44(11): 1097-1104, Nov. 2011. ilus
Article in English | LILACS | ID: lil-604280

ABSTRACT

Gene therapy is an alternative treatment for genetic lung disease, especially monogenic disorders such as cystic fibrosis. Cystic fibrosis is a severe autosomal recessive disease affecting one in 2500 live births in the white population, caused by mutation of the cystic fibrosis transmembrane conductance regulator (CFTR). The disease is classically characterized by pancreatic enzyme insufficiency, an increased concentration of chloride in sweat, and varying severity of chronic obstructive lung disease. Currently, the greatest challenge for gene therapy is finding an ideal vector to deliver the transgene (CFTR) to the affected organ (lung). Adeno-associated virus is the most promising viral vector system for the treatment of respiratory disease because it has natural tropism for airway epithelial cells and does not cause any human disease. This review focuses on the basic properties of adeno-associated virus and its use as a vector for cystic fibrosis gene therapy.


Subject(s)
Humans , Adenoviruses, Human , Cystic Fibrosis Transmembrane Conductance Regulator/genetics , Cystic Fibrosis/therapy , Genetic Therapy/methods , Genetic Vectors/therapeutic use , Adenoviruses, Human/classification , Gene Transfer Techniques
5.
Article in English | IMSEAR | ID: sea-51815

ABSTRACT

Genes are specific sequences of bases that encode instructions to make proteins. When genes are altered so that encoded proteins are unable to carry out their normal functions, genetic disorders can result. Gene therapy is designed to introduce genetic material into cells to compensate for abnormal genes or to make a beneficial protein. This article reviews the fundamentals in gene therapy and its various modes of administration with an insight into the role of gene therapy in Periodontics and future percepts and the technical and ethical issues of using gene therapy.


Subject(s)
Genetic Therapy/methods , Gene Transfer Techniques , Genetic Diseases, Inborn/therapy , Genetic Vectors/therapeutic use , Humans , Periodontal Diseases/therapy
6.
Cir. & cir ; 74(6): 483-493, nov.-dic. 2006. tab, ilus
Article in Spanish | LILACS | ID: lil-571234

ABSTRACT

La terapia con genes postula el uso terapéutico del DNA como una nueva alternativa de la biomedicina para el tratamiento de las enfermedades humanas. Todas las proteínas están codificadas en el DNA, y muchas enfermedades resultan de: a) la ausencia o expresión aberrante de uno o más genes; b) la ausencia de formas funcionales; c) alteraciones en su proceso de regulación, transporte o degradación. Por lo tanto, tales enfermedades pueden ser potencialmente tratadas, restableciendo la expresión de la proteína involucrada en las células afectadas. Sin embargo, para lograr una transferencia exitosa del material genético al sitio blanco y evitar la destrucción del DNA o del vehículo seleccionado antes de llegar al sitio de interés, se han desarrollado varios sistemas virales. Entre los virus más conocidos están: el virus del herpes simple, adenovirus tipo 5, virus adenoasociado y algunos retrovirus complejos (lentivirus). En este artículo se exponen las características biológicas, la manipulación genética y propiedades de los adenovirus, así como su empleo en la medicina actual como vectores para transferir genes y su potencial implicación en la terapia génica.


Gene therapy is based on the use of DNA as a therapeutic material as an alternative therapeutic tool for treatment of human diseases. All proteins are codified into the DNA and several diseases result from the absence or aberrant expression of one or related genes, absence of expression of functional proteins, and alterations for regulation process in transport and degradation mechanisms. In this regard, several diseases could be potentially treated through the expression of the normal form of the involved protein. However, the main objective is to achieve a successful genetic material delivery into the target site and avoid the destruction of DNA or the selected vehicle before arrival at the final destination. Several efficient viral gene transfer systems have been developed. Viral-mediated gene delivery for experimental models has been designed from herpes virus (HV), adenovirus (adenovirous), adeno-associated virus (AAV) and retroviruses (lentiviral vectors). In this review we will discuss the specific biological and cloning properties of adenoviral vectors as a gene transfer tool and potential medical implications for gene therapy.


Subject(s)
Humans , Male , Female , Genetic Diseases, Inborn/therapy , Mastadenovirus/genetics , Genetic Vectors/genetics , Gene Expression Regulation, Viral , Genetic Therapy , Genome, Viral , Mastadenovirus/physiology , Mastadenovirus/ultrastructure , Uterine Cervical Neoplasms/therapy , Transcription, Genetic , Transduction, Genetic , Virus Replication , Genetic Vectors/therapeutic use
7.
J. bras. med ; 81(5/6): 17-22, nov.-dez. 2001. tab, graf
Article in Portuguese | LILACS | ID: lil-304988

ABSTRACT

A doença de Tay-Sachs apresenta uma freqüência elevada em determinados grupos étnicos, sobretudo nos judeus ashkenazi. É uma desordem neurodegenerativa, presente principalmente em crianças, decorrente de uma atividade deficiente da enzima lisossomal hexosaminidase A, acarretando um acúmulo intracelular de substratos e um progressivo déficit neurológico. O tratamento é discutível, entretanto, resultados promissores têm sido obtidos com a utilização da NB-DNJ e, principalmente, com a terapia genética


Subject(s)
Humans , beta-N-Acetylhexosaminidases , Tay-Sachs Disease/epidemiology , Tay-Sachs Disease/ethnology , Tay-Sachs Disease/therapy , Lysosomal Storage Diseases/physiopathology , Glycosphingolipids , Genetic Testing , Bone Marrow Transplantation/rehabilitation , Genetic Vectors/therapeutic use
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