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Jimenez, D. A.

Publications and source records attributed to Jimenez, D. A..

4 recordsLinked to original sources

An Intronic SINE at Pou5f1 Links Hormone Signaling to Blastocyst Hatching

Before implantation, mammalian embryos must escape from the zona pellucida, a protective glycoprotein coat that surrounds the blastocyst. This process, known as hatching, is essential for uterine attachment and has been viewed largely as a mechanical consequence of blastocyst expansion and zona weakening. Whether hatching is actively timed by embryo-intrinsic gene regulation remains unclear. Here we show that timely hatching of mouse embryos requires signal-responsive repression of Pou5f1/OCT4 in the trophectoderm by a single intronic B2 short interspersed nuclear element. Deleting this element preserves blastocyst formation and stem-cell competence, but disrupts trophectodermal OCT4 repression, delays zona escape, causes hatching-uterine receptivity mismatch, perturbs implantation-site organization and reduces peri-implantation fitness. CRISPR activation screening, siRNA and pharmacological perturbation, and defined progesterone/estradiol/EGF culture conditions identify an ESRRA-linked endocrine/growth-factor response that requires the B2 element to consolidate trophectoderm maturation. Comparative analyses further show that young intronic SINEs are enriched in developmental gene programs, whereas human POU5F1 intronic Alu elements exhibit genetic constraint and repressive potential. These findings identify intronic SINEs as molecular entry points that couple extracellular cues to lineage-restricted transcriptional control and morphogenic transition.

developmental biology↗

Portable transcranial therapeutic ultrasound enhances targeted gene delivery for Parkinson's disease: from rodent models to non-human primates

Gene therapy for neurodegenerative diseases faces significant challenges due to the blood-brain barrier (BBB), which limits drug delivery to the central nervous system (CNS). While clinical trials for Parkinsons disease (PD) have progressed, administration of vectors expressing enzymatic or neurotrophic factor transgenes have required extensive optimization of the delivery method to achieve potentially therapeutic levels of transgene expression. Focused ultrasound (FUS) combined with microbubbles has emerged as a promising non-invasive strategy to transiently open the BBB for targeted gene delivery via viral nanocarriers including recombinant adeno-associated viruses (AAVs). However, key factors influencing FUS-mediated AAV delivery, including dose distribution and therapeutic efficacy, remain underexplored in non-human primates (NHPs). Here, we evaluated the feasibility of AAV9-CAG-GFP delivery using two portable therapeutic ultrasound modalities: ultrasound-guided, spherically-focused FUS (USgFUS) and a novel low-frequency linear array configuration for imaging and therapy called theranostic ultrasound (ThUS). In mice, FUS-sonicated regions exhibited a 25-fold increase in AAV9 biodistribution compared to systemic injection alone. Extending this approach to NHPs, we observed up to a 200-fold increase in AAV9 DNA in treated brain regions, including PD-relevant structures. In assessing the translational therapeutic potential of this technique, ThUS-mediated AAV9-hSyn-hNTRN (human neurturin) delivery in a toxin mouse model of PD facilitated the rescue of up to 80% and 75% of degenerated dopaminergic neurons in the substantia nigra and striatum, respectively. These findings demonstrate that portable ultrasound technologies can non-invasively enhance AAV9 delivery to targeted brain regions in both mice and NHPs relative to what can be achieved with intravenous (IV) delivery of the same capsid alone. With further development, these approaches may offer a clinically viable, non-invasive alternative for gene therapy in neurodegenerative diseases. One sentence summaryBBB opening with portable therapeutic ultrasound non-invasively increased viral gene delivery to the brain after systemic AAV vector administration in mice and rhesus macaques.

bioengineering↗

Characterization of Microbubble Cavitation in Theranostic Ultrasound-mediated Blood-Brain Barrier Opening and Gene Delivery

RationaleThe characterization of microbubble activity has proven critical in assessing the safety and efficacy of ultrasound-mediated blood-brain barrier (BBB) opening and drug and gene delivery. In this study, we build upon our previous work on theranostic ultrasound (ThUS)-mediated BBB opening (ThUS-BBBO) and conduct for the first time a comprehensive characterization of the role of microbubble cavitation in ThUS-BBBO, as well as its impact on gene delivery with adeno-associated viruses (AAV). MethodsA repurposed imaging phased array was used throughout the study to generate focused transmits and record microbubble activity through high-resolution power cavitation imaging (PCI). The cavitation of microbubbles under ThUS pulses was first characterized in flow phantom using pulse lengths ranging from 1.5 to 20 cycles and under varying microbubble flow rates using a separate single-element transducer a passive cavitation detector (PCD). A comprehensive in vivo study in mice was then conducted to characterize the in vivo microbubble activity under ThUS and correlate the resulting cavitation with AAV-mediated transgene delivery and expression. The transcranial microbubble activity was first detected in two mice using a PCD, to confirm the findings of the flow phantom study. Next, three mouse studies were conducted to evaluate the relationship between cavitation and AAV delivery; one with three different microbubble size distributions using polydisperse and size-isolated microbubbles, one with variable burst length and burst repetition frequency, and one with different AAV serotypes and injection doses. Electronic beam steering was used to induce bilateral BBB opening with 1.5 cycle on the left and 10 cycles on the right hemisphere. Cavitation dose was correlated with BBB opening volume, AAV transgene expression was evaluated with immunofluorescence staining and histological safety was assessed with T2* imaging and Hematoxylin and Eosin staining. ResultsFrequency domain analysis in the phantoms revealed a broadband-cavitation dominance at the shorter pulse lengths, while harmonic cavitation components are significantly increased for longer pulses. The PCD was better at detecting higher frequency harmonics, while the signal received by the theranostic array was more broadband dominated. Analysis of signals in the time domain showed that the longer pulses induce higher microbubble collapse compared to short pulses. In the transcranial in vivo experiments, the PCD was able to detect increased harmonic cavitation for 10-cycle pulses. The microbubble study showed that 3-5 m microbubbles resulted in the largest cavitation doses, BBBO volumes and AAV transgene expression compared to the smaller microbubble sizes. The burst sequence study revealed that the sequences with shorter bursts and faster burst repetition frequencies induce larger BBBO volumes and AAV transduction due to faster microbubble replenishment in the focal volume. Increased erythrocyte extravasation was observed on the hemisphere sonicated with 10-cycle pulses. Transgene expression was also increased with injection dose, without notable side effects during the three-week survival period. Finally, AAV9 was shown to be the serotype with the highest transduction efficiency compared to AAV2 and AAV5 at the same injected dose. ConclusionsThis is the first comprehensive study into the microbubble cavitation under theranostic ultrasound. The phantom and in vivo studies show that the mechanism of ThUS-BBBO is mainly transient cavitation dominant, as microbubble collapse increases with pulse length despite the increased harmonic frequency response. Increased cavitation dose resulted in larger BBBO volumes and transgene expression in vivo. While ThUS induced microhemorrhage for most of the studied conditions, it did not have an impact on the survival and behavior of the mice.

bioengineering↗

PMS2 has both pro-mutagenic and anti-mutagenic effects on repeat instability in the Repeat Expansion Diseases

Expansion of a disease-specific tandem repeat is responsible for >45 Repeat Expansion Diseases (REDs). The expansion mutation in each of these diseases has different pathological consequences and most are currently incurable. If the underlying mechanism of mutation is shared, a strategy that slows repeat expansion in one RED may be applicable to multiple REDs. However, the fact that PMS2, a component of the MutL mismatch repair complex, promotes expansion in some models and protects against it in others suggests that the expansion mechanisms may differ. We show here using mouse models of two REDs caused by different repeats that PMS2 has similar effects in both models, with the loss of PMS2 resulting in an increase in expansions in some tissues and a loss of expansion in others. This is consistent with a protective effect of PMS2 in the first case and a role in promoting expansion in the second. Furthermore, we show in mouse embryonic stem cells that lower levels of PMS2 promote expansion while higher levels protect against it, with the ability to promote expansion depending on the PMS2 nuclease domain. Our findings lend support to the hypothesis that REDs share a common expansion mechanism and provide insights into the processes involved. Significance statementCollectively the Repeat Expansion Diseases (REDs) represent a significant health burden. Since the consequences of the expansion mutation differ across diseases, therapeutic approaches that block the underlying mutation are appealing, particularly if the mechanism is shared. However, the conflicting effects of PMS2 loss in different RED models challenges this idea. Here we show using two different RED models that these disparate effects can be reconciled into a single model of repeat expansion, thus increasing confidence that the REDs do all share a common mutational mechanism.

genetics↗