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O'Hara, K.

Publications and source records attributed to O'Hara, K..

5 recordsLinked to original sources

AAV gene therapy for Cockayne syndrome

Cockayne Syndrome (CS) is an autosomal recessive, progressive developmental and neurodegenerative disease. Approximately 30% of cases are caused by mutations in the ERCC8/CSA gene. Patients with CS present with cutaneous photosensitivity, growth failure, shorter life span and a progressive degeneration of the central nervous system. Loss of function mutations in CSA result in deficiencies in transcription-coupled nucleotide excision repair, regulation of RNA Pol II mediated transcription repair of oxidative DNA damage, and mitochondrial metabolism. Currently there are no available therapies for these patients. AAV gene therapy offers an opportunity to address this unmet need. We designed a new AAV vector encoding human CSA under a CBA promoter. We tested the therapeutic efficacy of this AAV9-CSA vector by neonatal ICV injection in the Csa-/-;Xpa-/- mouse model. Treatment with AAV9-CSA resulted in a significant increase in lifespan, and broad distribution of human CSA in the brain and heart. Despite clear therapeutic benefit, we also observed neuroradiological abnormalities, neuropathologic alterations including hypo-myelination, astrocytosis, microgliosis, and likely life limiting transcriptomic alterations in liver at endpoint. Nonetheless, the success of these experiments paves the way for the first in human clinical translation of a gene therapy for CS patients.

neuroscience↗

Evaluation of Aggregate Oral Fluid Sampling for Early Detection of African Swine Fever Virus Infection

African swine fever (ASF) is a highly infectious viral disease that poses significant threat to the United States and global pig industries. Given the lack of effective vaccines, control and prevention of the spread of African swine fever virus (ASFV) is dependent on enhanced surveillance and early disease detection. Commercial swine operations in the US are characterized by comparatively large number of pigs, and sampling individual pigs, which represents the main strategy for current ASF surveillance, is both costly and labor intensive. The major objective of this study was to estimate the diagnostic sensitivity of pen-based aggregate oral fluid testing for ASFV in infected pigs in a pen of 30 animals and evaluate its utility as a tool to support surveillance of ASF in the United States. The study was performed in three phases: (i) Virus (Ghana ASFV24) amplification in a target host species to generate the challenge inoculum, (ii) Titration of the inoculum (10% spleen homogenate) in target host species to determine the minimum dose inducing acute ASF in pigs with survival up to 5 - 6 days post-inoculation (dpi), and (iii) The main study involving 186 pigs consisting of 6 replicates of 30 pigs per pen and one seeder pig inoculated with the Ghana ASFV24 per pen. Daily sampling of aggregate oral fluids, uncoagulated blood, oropharyngeal swabs, fecal and water nipple swabs, and recording of rectal temperatures and clinical observations, was carried out. The seeder pigs were each inoculated intramuscularly with 0.5 ml of the 10% spleen homogenate which induced the desired clinical course of ASF in the pigs with survival of up to 6 dpi. ASFV DNA could be detected in the seeder pigs as early as 1 dpi and 2 dpi in the blood and oropharyngeal swabs, respectively. Transmission of ASFV from the seeder pigs to the contact pig population was detected via positive amplification of ASFV DNA in aggregate oral fluid samples at 3 days post-contact (dpc) in 4 out of 6 pens, and in all 6 pens at 4 dpc. Testing of oropharyngeal swabs and blood samples from individual pigs revealed variable number of ASFV positive pigs between 3 and 5 dpc, with detection of 100% positivity between 6 and 18 dpc, the study endpoint. These findings demonstrate the potential utility of aggregate oral fluid sampling for sensitive and early detection of ASFV incursion into naive swine herds. It also demonstrates that testing of environmental samples from the premises could further enhance overall ASF early detection and surveillance strategy. Author summaryEarly detection of ASFV in swine farms requires robust passive surveillance using sample types and sampling methods that allow sensitive and timely detection. Commercial swine operations in the US or North America are characterized by comparatively large number of pigs, and sampling individual pigs, which represents the current strategy for ASF surveillance, is both costly and labor-intensive. Oral fluid has been shown to be an acceptable sample type for detection of ASFV in individual infected pigs. For the first time on such a scale, we conducted a study enrolling 186 pigs, with daily sampling, in six experimental replicates at 3.2% pen prevalence using a highly virulent ASFV (Ghana ASFV24) to evaluate the utility of aggregate oral fluids for early detection of ASFV. Whole genome sequencing and characterization confirmed grouping of the virus with those in the p72 genotype II cluster. We demonstrate that intramuscular inoculation of the seeder pigs induces acute ASF and transmission to the contact pigs which is detectable in aggregate oral fluids as early as 3 - 4 dpc. We have shown that ASFV DNA detections in aggregate oral fluids correlate with the oropharyngeal swabs of individual pigs. In comparison, ASFV DNA in individual blood samples is detected 1-3 days later. The study demonstrates the potential utility of aggregate oral fluid sampling for enhanced surveillance of ASFV in large commercial swine operations.

microbiology↗

Real-time activity of dynorphin-expressing neurons in mouse central amygdala during alcohol drinking

Alcohol use disorder (AUD) is a chronic disease that poses significant economic burden and health risks. It is pivotal to better understand brain mechanisms engaged by alcohol that promote misuse. The central amygdala (CeA) has emerged as a key mediator of excessive preclinical alcohol consumption. A dynorphin-expressing subpopulation within the CeA (CeADyn) has been implicated in excessive alcohol drinking, yet how cellular activity of CeADyn neurons relates to ongoing alcohol drinking is not well-understood. The current study interrogated the engagement of CeADyn neurons in male and female mice during voluntary alcohol consumption using fiber photometry and compared this cellular response with that of other solutions having similar motivational and/or taste characteristics. Activity of a calcium sensor, GCaMP7f, expressed in mouse CeADyn neurons was recorded and time-locked to bouts of drinking. Multilevel linear mixed modeling was applied to better resolve focal effects from complex data. These analyses revealed a relatively large increase in CeADyn neuron calcium transients after bouts of alcohol drinking compared to water or sucrose drinking, indicating these neurons are uniquely engaged during alcohol consumption. Drinking behavior unique to alcohol (i.e., longer bout durations) did not fully explain signal differences between alcohol and other solutions nor did the relatively increased alcohol response diminish over time. No other conditions or solutions tested reproduced the pronounced change in CeADyn activity associated with alcohol drinking. These findings, collectively, support the presence of a unique functional signature for alcohol in a cell population known to control excessive alcohol drinking. HighlightsO_LICentral amygdala dynorphin cells (CeADyn) are firmly implicated in alcohol misuse. C_LIO_LICeADyn neuron activity was higher when mice drank alcohol versus other solutions. C_LIO_LINeither how mice drank alcohol nor motivational states could explain this activity. C_LIO_LICeADyn neurons having uniquely high alcohol responses may underlie AUD development. C_LI

neuroscience↗

A fluorescently labelled quaternary ammonium compound (NBD-DDA) to study mode-of-action and resistance mechanisms in bacteria

Quaternary ammonium compounds (QACs) are widely used as active agents in disinfectants, antiseptics, and preservatives. Despite being in use since the 1940s, there remain multiple open questions regarding their detailed mode-of-action and the mechanisms, including phenotypic heterogeneity, that can make bacteria less susceptible to QACs. To facilitate mode-of-action studies, we synthesized a fluorescent analogue of the quaternary ammonium compound benzalkonium chloride, namely N-dodecyl-N,N-dimethyl-[2-[(4-nitro-2,1,3-benzoxadiazol-7-yl)amino]ethyl]azanium-iodide (NBD-DDA). NBD-DDA is readily detected by flow cytometry and fluorescence microscopy with standard GFP/FITC-settings, making it suitable for molecular and single-cell studies. NBD-DDA was then used to investigate resistance mechanisms which can be heterogeneous among individual bacterial cells. Our results reveal that the antimicrobial activity of NBD-DDA against E. coli, S. aureus and P. aeruginosa is comparable to that of benzalkonium chloride (BAC), a widely used QAC. Characteristic time-kill kinetics and increased tolerance of a BAC tolerant E. coli strain against NBD-DDA suggest that the mode of action of NBD-DDA is similar to that of BAC. Leveraging these findings and NBD-DDAs fluorescent properties, we show that reduced cellular adsorption is responsible for the evolved BAC tolerance in the BAC tolerant E. coli strain. As revealed by confocal laser scanning microscopy (CLSM), NBD-DDA is preferentially localized in the cell envelope of E. coli, which is a primary target of BAC and other QACs. Overall, NBD-DDAs antimicrobial activity, its fluorescent properties, and its ease of detection render it a powerful tool to study the mode-of-action and the resistance mechanisms of QACs in bacteria.

microbiology↗

Evolutionary relationships and range evolution of greenhood orchids (subtribe Pterostylidinae): insights from plastid phylogenomics

Australia harbours a rich and highly endemic orchid flora with over 90% of native species found nowhere else. However, little is known about the assembly and evolution of Australias orchid flora. Here, we used a phylogenomic approach to infer evolutionary relationships, divergence times, and range evolution in Pterostylidinae (Orchidoideae), the second largest subtribe in the Australian orchid flora, comprising the genera Pterostylis and Achlydosa. Phylogenetic analysis of 75 plastid genes provided well-resolved and supported phylogenies. Intrageneric relationships in Pterostylis were clarified and monophyly of eight of ten sections supported. Achlydosa was found to not form part of Pterostylidinae and instead merits recognition at subtribal level, as Achlydosinae. Pterostylidinae were inferred to have originated in temperate eastern Australia in the early Oligocene, coinciding with the complete separation of Australia from Antarctica and the onset of the Antarctic Circumpolar Current, which led to profound changes in the worlds climate. Divergence of all major lineages occurred during the Miocene, accompanied by increased aridification and seasonality of the Australian continent, resulting in strong vegetational changes from rainforest to more open sclerophyllous vegetation. The majority of extant species were inferred to have originated in the Quaternary, from the Pleistocene onwards. The rapid climatic oscillations during the Pleistocene may have acted as important driver of speciation in Pterostylidinae. The subtribe underwent lineage diversification mainly within its ancestral range, in temperate eastern Australia. Long-distance dispersals to southwest Australia commenced from the late Miocene onwards, after the establishment of the Nullarbor Plain, which constitutes a strong edaphic barrier to mesic plants. Range expansions from the mesic into the arid zone of eastern Australia (Eremaean region) commenced from the early Pleistocene onwards. Extant distributions of Pterostylidinae in other Australasian regions, such as New Zealand and New Caledonia, are of more recent origin, resulting from long-distance dispersals from the Pliocene onwards. Temperate eastern Australia was identified as key source area for dispersals to other Australasian regions.

evolutionary biology↗