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1.
Biochem Biophys Res Commun ; 478(3): 1043-8, 2016 09 23.
Article in English | MEDLINE | ID: mdl-27553274

ABSTRACT

Alpha-dystroglycanopathies are a heterogenic group of human rare diseases that have in common defects of α-dystroglycan O-glycosylation. These congenital disorders share common features as muscular dystrophy, malformations on central nervous system and more rarely altered ocular development, as well as mutations on a set of candidate genes involved on those syndromes. Severity of the syndromes is variable, appearing Walker-Warburg as the most severe where mutations at protein O-mannosyl transferases POMT1 and POMT2 genes are frequently described. When studying the lack of MmPomt1 in mouse embryonic development, as a murine model of Walker-Warburg syndrome, MmPomt1 null phenotype was lethal because Reitchert's membrane fails during embryonic development. Here, we report gene expression from Gallus gallus orthologous genes to human candidates on alpha-dystroglycanopathies POMT1, POMT2, POMGnT1, FKTN, FKRP and LARGE, making special emphasis in expression and localization of GgPomt1. Results obtained by quantitative RT-PCR, western-blot and immunochemistry revealed close gene expression patterns among human and chicken at key tissues affected during development when suffering an alpha-dystroglycanopathy, leading us to stand chicken as a useful animal model for molecular characterization of glycosyltransferases involved in the O-glycosylation of α-Dystroglycan and its role in embryonic development.


Subject(s)
Chickens/genetics , Dystroglycans/metabolism , Embryonic Development/genetics , Gene Expression Regulation, Developmental , Genetic Association Studies , Sequence Homology, Amino Acid , Animals , Humans , Immunohistochemistry , Spinal Cord/embryology , Spinal Cord/metabolism
2.
Chaos ; 19(3): 033139, 2009 Sep.
Article in English | MEDLINE | ID: mdl-19792019

ABSTRACT

We propose a new approach for synchronizing a population of synthetic genetic oscillators, which consists in the entrainment of a colony of repressilators by external modulation. We present a model where the repressilator dynamics is affected by periodic changes in temperature. We introduce an additional plasmid in the bacteria in order to correlate the temperature variations with the enhancement of the transcription rate of a certain gene. This can be done by introducing a promoter that is related to the heat shock response. This way, the expression of that gene results in a protein that enhances the overall oscillations. Numerical results show coherent oscillations of the population for a certain range of the external frequency, which is in turn related to the natural oscillation frequency of the modified repressilator. Finally we study the transient times related with the loss of synchronization and we discuss possible applications in biotechnology of large-scale production coupled to synchronization events induced by heat shock.


Subject(s)
Biological Clocks/genetics , Gene Expression Regulation/genetics , Genetic Variation/genetics , Genome, Bacterial/genetics , Models, Genetic , Nonlinear Dynamics , Oscillometry/methods , Algorithms , Computer Simulation , Temperature
3.
Genome Res ; 15(9): 1179-88, 2005 Sep.
Article in English | MEDLINE | ID: mdl-16140988

ABSTRACT

About 5% of the human genome consists of segmental duplications or low-copy repeats, which are large, highly homologous (>95%) fragments of sequence. It has been estimated that these segmental duplications emerged during the past approximately 35 million years (Myr) of human evolution and that they correlate with chromosomal rearrangements. Williams-Beuren syndrome (WBS) is a segmental aneusomy syndrome that is the result of a frequent de novo deletion at 7q11.23, mediated by large (approximately 400-kb) region-specific complex segmental duplications composed of different blocks. We have precisely defined the structure of the segmental duplications on human 7q11.23 and characterized the copy number and structure of the orthologous regions in other primates (macaque, orangutan, gorilla, and chimpanzee). Our data indicate a recent origin and rapid evolution of the 7q11.23 segmental duplications, starting before the diversification of hominoids (approximately 12-16 million years ago [Mya]), with species-specific duplications and intrachromosomal rearrangements that lead to significant differences among those genomes. Alu sequences are located at most edges of the large hominoid-specific segmental duplications, suggesting that they might have facilitated evolutionary rearrangements. We propose a mechanistic model based on Alu-mediated duplicated transposition along with nonallelic homologous recombination for the generation and local expansion of the segmental duplications. The extraordinary rate of evolutionary turnover of this region, rich in segmental duplications, results in important genomic variation among hominoid species, which could be of functional relevance and predispose to disease.


Subject(s)
Chromosomes, Human, Pair 7/genetics , Evolution, Molecular , Williams Syndrome/genetics , Alu Elements , Animals , Gene Dosage , Gene Duplication , Hominidae/genetics , Humans , In Situ Hybridization, Fluorescence , Models, Genetic , Molecular Sequence Data , Phylogeny , Primates/genetics , Pseudogenes , Selection, Genetic , Time Factors
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