Centro Andaluz de Biología del Desarrollo (CABD)
Centro de investigación
Imperial College London
Londres, Reino UnidoPublicaciones en colaboración con investigadores/as de Imperial College London (18)
2023
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Topologically associating domain boundaries are required for normal genome function
Communications Biology, Vol. 6, Núm. 1
2021
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Guidelines for the use and interpretation of assays for monitoring autophagy (4th edition)1
Autophagy, Vol. 17, Núm. 1, pp. 1-382
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R-loops and regulatory changes in chronologically ageing fission yeast cells drive non-random patterns of genome rearrangements
PLoS Genetics, Vol. 17, Núm. 8
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miR-21 mimic blocks obesity in mice: A novel therapeutic option
Molecular Therapy - Nucleic Acids, Vol. 26, pp. 401-416
2018
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Amphioxus functional genomics and the origins of vertebrate gene regulation
Nature, Vol. 564, Núm. 7734, pp. 64-70
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RNA sequencing and prediction tools for circular RNAs analysis
Advances in Experimental Medicine and Biology (Springer New York LLC), pp. 17-33
2016
2014
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Pancreatic islet enhancer clusters enriched in type 2 diabetes risk-associated variants
Nature Genetics, Vol. 46, Núm. 2, pp. 136-143
2012
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Guidelines for the use and interpretation of assays for monitoring autophagy
Autophagy, Vol. 8, Núm. 4, pp. 445-544
2006
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The RNA binding protein Zfp36l1 is required for normal vascularisation and post-transcriptionally regulates VEGF expression
Developmental Dynamics, Vol. 235, Núm. 11, pp. 3144-3155
2004
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Myf5 expression in satellite cells and spindles in adult muscle is controlled by separate genetic elements
Developmental Biology, Vol. 273, Núm. 2, pp. 454-465
2003
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The single tryptophan of the PsbQ protein of photosystem II is at the end of a 4-α-helical bundle domain
European Journal of Biochemistry, Vol. 270, Núm. 19, pp. 3916-3927
2000
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Retargeting of adenoviral vectors to neurons using the H(c) fragment of tetanus toxin
Gene Therapy, Vol. 7, Núm. 18, pp. 1584-1592
1999
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Non-viral neuronal gene delivery mediated by the H(C) fragment of tetanus toxin
European Journal of Biochemistry, Vol. 259, Núm. 3, pp. 762-769
1995
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Friedreich's ataxia: A defect in signal transduction?
Human Molecular Genetics, Vol. 4, Núm. 8, pp. 1411-1419
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Physical evidence for the position of the Friedreich's ataxia locus FRDA proximal to D9S5
Cytogenetics and Cell Genetics, Vol. 71, Núm. 3, pp. 214-216
1993
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Genetic recombination events which position the Friedreich ataxia locus proximal to the D9S15/D9S5 linkage group on chromosome 9q
American Journal of Human Genetics, Vol. 52, Núm. 1, pp. 99-109