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Diaz, M. L.

Publications and source records attributed to Diaz, M. L..

2 recordsLinked to original sources

Optimized AAV to express the unfolded protein response transcription factor XBP1s ameliorates Alzheimer's disease features in mouse models

Proteostasis impairment at the level of the endoplasmic reticulum (ER) is a salient feature of Alzheimers disease (AD). The unfolded protein response (UPR) is the main pathway to cope with ER stress, where the expression of the transcription factor X-Box binding protein 1 (XBP1) is central to establish repair programs. To artificially enforce the adaptive capacity of the UPR in the AD brain, we recently reported the protective effects of overexpressing active XBP1 in the brain using adeno-associated vectors (AAVs) of AD mice, in addition to aged animals. Here we have generated a next generation vector suitable for clinical testing by (i) expressing codon-optimized human XBP1s without artificial tags, (ii) the use of the synapsin promoter to restrict expression to neurons, and (iii) incorporating a novel variant of AAV2 (AAV-TT) with greater biodistribution (here termed Proteostaser-1). Treatment of 5xFAD mice with Proteostaser-1 improved spatial learning and synaptic plasticity, and reduced the deposition of amyloid plaques in the brain. Proteostaser-1 administration also improved cognition in a model of sporadic AD based on the intracerebral injection of amyloid {beta} oligomers. Our results further support the therapeutic potential of the UPR as a strategy to ameliorate AD features and sustain synaptic function.

cell biology↗

Molecular characteristics of phages located in Carbapenemase-Producing Escherichia coli clinical isolates: New Phage-Like Plasmids

Escherichia coli normally inhabits the gastrointestinal tract of humans and animals. Most E. coli bacteria do not cause problems, but the acquisition of different resistance and virulence genes encoded by mobile plasmids or phages by different bacterial isolates has been associated with the appearance of successful high-risk clones of multidrug-resistant (MDR) E. coli such as ST131 or ST405. In the present study, 50 temperate bacteriophages present in 21 clinical isolates of carbapenemase-producing E. coli of sequence types (STs) ST38, ST131, ST167, ST405 and ST410 were analysed. These phages were classified in the three families of the order Caudovirales: 24 within the family Siphoviridae, 23 in Myoviridae and 3 in Podoviridae. The size of the phages studied ranged from 11 to 95 Kb. Phylogenetic analysis of the terminase large subunit allowed us to classify these phages into different groups showing similarity with the phage sequences deposited in the Microbe Versus Phage (MVP) database and which belonged to clusters 229, 604, 2503 and 2725. On the other hand, bioinformatic study revealed that most of the identified proteins exerted a structural function (26.73%) but also functions involved in lysis/lysogeny (6.70%) or regulation (5.20%) among others. In addition, the ParA-ParB partitioning system and the type II toxin-antitoxin Phd-Doc system were also found in two of the phages studied, which could indicate the presence of plasmid-prophages. Host range testing revealed that two isolates were more susceptible to infection than the other isolates. IMPORTANCEEscherichia coli is one of the pathogens that causes most problems in human health, as it presents multiple resistances to different antibiotics. The study of bacteriophages located in different isolates of this species is important for the development of new anti-infective therapies. Currently, antibiotic resistance is a major problem, but more and more studies are pointing to experimental treatments with bacteriophages as a possible solution.

bioinformatics↗