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71.
Summary Amantadine, like amphetamine, exerts a depletory effect upon noradrenaline containing vesicles of the adrenal medulla. The microtubular system seems to play a role in the releasing process.The authors want to thank Dr. Diaz-Flores Feo for his help and advice in the accomplishment of this study. 相似文献
72.
Abd El-Aziz MM Barragan I O'Driscoll CA Goodstadt L Prigmore E Borrego S Mena M Pieras JI El-Ashry MF Safieh LA Shah A Cheetham ME Carter NP Chakarova C Ponting CP Bhattacharya SS Antinolo G 《Nature genetics》2008,40(11):1285-1287
Using a positional cloning approach supported by comparative genomics, we have identified a previously unreported gene, EYS, at the RP25 locus on chromosome 6q12 commonly mutated in autosomal recessive retinitis pigmentosa. Spanning over 2 Mb, this is the largest eye-specific gene identified so far. EYS is independently disrupted in four other mammalian lineages, including that of rodents, but is well conserved from Drosophila to man and is likely to have a role in the modeling of retinal architecture. 相似文献
73.
Shaw-Smith C Pittman AM Willatt L Martin H Rickman L Gribble S Curley R Cumming S Dunn C Kalaitzopoulos D Porter K Prigmore E Krepischi-Santos AC Varela MC Koiffmann CP Lees AJ Rosenberg C Firth HV de Silva R Carter NP 《Nature genetics》2006,38(9):1032-1037
Recently, the application of array-based comparative genomic hybridization (array CGH) has improved rates of detection of chromosomal imbalances in individuals with mental retardation and dysmorphic features. Here, we describe three individuals with learning disability and a heterozygous deletion at chromosome 17q21.3, detected in each case by array CGH. FISH analysis demonstrated that the deletions occurred as de novo events in each individual and were between 500 kb and 650 kb in size. A recently described 900-kb inversion that suppresses recombination between ancestral H1 and H2 haplotypes encompasses the deletion. We show that, in each trio, the parent of origin of the deleted chromosome 17 carries at least one H2 chromosome. This region of 17q21.3 shows complex genomic architecture with well-described low-copy repeats (LCRs). The orientation of LCRs flanking the deleted segment in inversion heterozygotes is likely to facilitate the generation of this microdeletion by means of non-allelic homologous recombination. 相似文献
74.
75.
M Montagner E Enzo M Forcato F Zanconato A Parenti E Rampazzo G Basso G Leo A Rosato S Bicciato M Cordenonsi S Piccolo 《Nature》2012,487(7407):380-384
The molecular determinants of malignant cell behaviours in breast cancer remain only partially understood. Here we show that SHARP1 (also known as BHLHE41 or DEC2) is a crucial regulator of the invasive and metastatic phenotype in triple-negative breast cancer (TNBC), one of the most aggressive types of breast cancer. SHARP1 is regulated by the p63 metastasis suppressor and inhibits TNBC aggressiveness through inhibition of hypoxia-inducible factor 1α (HIF-1α) and HIF-2α (HIFs). SHARP1 opposes HIF-dependent TNBC cell migration in vitro, and invasive or metastatic behaviours in vivo. SHARP1 is required, and sufficient, to limit expression of HIF-target genes. In primary TNBC, endogenous SHARP1 levels are inversely correlated with those of HIF targets. Mechanistically, SHARP1 binds to HIFs and promotes HIF proteasomal degradation by serving as the HIF-presenting factor to the proteasome. This process is independent of pVHL (von Hippel-Lindau tumour suppressor), hypoxia and the ubiquitination machinery. SHARP1 therefore determines the intrinsic instability of HIF proteins to act in parallel to, and cooperate with, oxygen levels. This work sheds light on the mechanisms and pathways by which TNBC acquires invasiveness and metastatic propensity. 相似文献
76.
Alexander Panchenko Elena Aleksandrova Emil Roduner 《复旦学报(自然科学版)》2005,44(5):719-720
1 Introduction The long termstability of the membraneis ani mportant factor li mitingthe fuel cell lifeti me .During ex-tended use the membrane degrades , probably via reaction with hydroxyl and superoxide radicals which areregular intermediates of the oxygenreduction at the cathode .Only extremely stable membranes can withstandthe aggressive chemical and physical environment in an operating fuel cell . Within a given set of operatingconditions,intrinsic chemical and mechanical properties of t… 相似文献
77.
Yusa K Rashid ST Strick-Marchand H Varela I Liu PQ Paschon DE Miranda E Ordóñez A Hannan NR Rouhani FJ Darche S Alexander G Marciniak SJ Fusaki N Hasegawa M Holmes MC Di Santo JP Lomas DA Bradley A Vallier L 《Nature》2011,478(7369):391-394
Human induced pluripotent stem cells (iPSCs) represent a unique opportunity for regenerative medicine because they offer the prospect of generating unlimited quantities of cells for autologous transplantation, with potential application in treatments for a broad range of disorders. However, the use of human iPSCs in the context of genetically inherited human disease will require the correction of disease-causing mutations in a manner that is fully compatible with clinical applications. The methods currently available, such as homologous recombination, lack the necessary efficiency and also leave residual sequences in the targeted genome. Therefore, the development of new approaches to edit the mammalian genome is a prerequisite to delivering the clinical promise of human iPSCs. Here we show that a combination of zinc finger nucleases (ZFNs) and piggyBac technology in human iPSCs can achieve biallelic correction of a point mutation (Glu342Lys) in the α(1)-antitrypsin (A1AT, also known as SERPINA1) gene that is responsible for α(1)-antitrypsin deficiency. Genetic correction of human iPSCs restored the structure and function of A1AT in subsequently derived liver cells in vitro and in vivo. This approach is significantly more efficient than any other gene-targeting technology that is currently available and crucially prevents contamination of the host genome with residual non-human sequences. Our results provide the first proof of principle, to our knowledge, for the potential of combining human iPSCs with genetic correction to generate clinically relevant cells for autologous cell-based therapies. 相似文献
78.
Role of YAP/TAZ in mechanotransduction 总被引:3,自引:0,他引:3
Dupont S Morsut L Aragona M Enzo E Giulitti S Cordenonsi M Zanconato F Le Digabel J Forcato M Bicciato S Elvassore N Piccolo S 《Nature》2011,474(7350):179-183
79.
The human APOBEC3G (apolipoprotein B messenger-RNA-editing enzyme, catalytic polypeptide-like 3G) protein is a single-strand DNA deaminase that inhibits the replication of human immunodeficiency virus-1 (HIV-1), other retroviruses and retrotransposons. APOBEC3G anti-viral activity is circumvented by most retroelements, such as through degradation by HIV-1 Vif. APOBEC3G is a member of a family of polynucleotide cytosine deaminases, several of which also target distinct physiological substrates. For instance, APOBEC1 edits APOB mRNA and AID deaminates antibody gene DNA. Although structures of other family members exist, none of these proteins has elicited polynucleotide cytosine deaminase or anti-viral activity. Here we report a solution structure of the human APOBEC3G catalytic domain. Five alpha-helices, including two that form the zinc-coordinating active site, are arranged over a hydrophobic platform consisting of five beta-strands. NMR DNA titration experiments, computational modelling, phylogenetic conservation and Escherichia coli-based activity assays combine to suggest a DNA-binding model in which a brim of positively charged residues positions the target cytosine for catalysis. The structure of the APOBEC3G catalytic domain will help us to understand functions of other family members and interactions that occur with pathogenic proteins such as HIV-1 Vif. 相似文献