Search bioRxiv⌕ Search

Biology subjects

Nguyen, C. D.

Publications and source records attributed to Nguyen, C. D..

6 recordsLinked to original sources

Streptococcus pneumoniae vaccine serotype persistence following 13-valent pneumococcal conjugate vaccine introduction in Mongolia: investigating changes in epidemiology, immunology and virulence

BackgroundStreptococcus pneumoniae is a leading cause of pneumonia globally. Vaccine serotypes can persist despite pneumococcal conjugate vaccine (PCV) introduction. To examine serotype persistence, we leveraged 6,545 nasopharyngeal swabs collected from children hospitalised with pneumonia before and after PCV13 introduction in Mongolia and undertook molecular, epidemiological and experimental analyses. MethodsSerotype, genetic lineage and antimicrobial resistance genes were inferred from DNA microarray. Patients carrying lineages that were predominant pre- and post-PCV introduction were examined for differences in disease severity. We also compared the pre- and post-PCV lineages by bacterial adhesion to hydrocarbon (BATH) and enzyme-linked immunosorbent (ELISA) assays. Capsule gene expression was measured by quantitative reverse transcription polymerase chain reaction (qRT-PCR), capsule thickness by transmission electron microscopy, and virulence using an infant mouse model. FindingsChanges in lineage composition were observed within serotypes 6A, 6B, 14, 19F and 23F over the six-year surveillance period. Children carrying pre-PCV lineages were more likely to have severe pneumonia than those carrying post-PCV lineages (serotypes 6B, 14 and 19F). Pre-PCV lineages were more likely to be multi-drug resistant than post-PCV lineages (serotypes 6A, 6B and 23F). For serotype 6B the post-PCV lineage had higher cell surface hydrophobicity, lower IgG, lower expression of capsule genes and evidence of thinner capsule than the pre-PCV lineage. Notably, the post-PCV 6B lineage was also less virulent in mice than the pre-PCV 6B lineage. InterpretationDespite persistence of vaccine serotypes in highly vaccinated populations, vaccination may select for lineages with differences in capsule and antibody binding and that are less virulent. When evaluating the true value of vaccination, it is important to consider factors beyond serotype alone. FundingNational Health and Medical Research Council, Murdoch Childrens Research Institute, GAVI, the Vaccine Alliance.

microbiology↗

Programmable epigenome editing by transient delivery of CRISPR epigenome editor ribonucleoproteins

Programmable epigenome editors modify gene expression in mammalian cells by altering the local chromatin environment at target loci without inducing DNA breaks. However, the large size of CRISPR-based epigenome editors poses a challenge to their broad use in biomedical research and as future therapies. Here, we present Robust ENveloped Delivery of Epigenome-editor Ribonucleoproteins (RENDER) for transiently delivering programmable epigenetic repressors (CRISPRi, DNMT3A-3L-dCas9, CRISPRoff) and activator (TET1-dCas9) as ribonucleoprotein complexes into human cells to modulate gene expression. After rational engineering, we show that RENDER induces durable epigenetic silencing of endogenous genes across various human cell types, including primary T cells. Additionally, we apply RENDER to epigenetically repress endogenous genes in human stem cell-derived neurons, including the reduction of the neurodegenerative disease associated V337M-mutated Tau protein. Together, our RENDER platform advances the delivery of CRISPR-based epigenome editors into human cells, broadening the use of epigenome editing in fundamental research and therapeutic applications.

genetics↗

CRISPRoff epigenetic editing for programmable gene silencing in human cells without DNA breaks

The advent of CRISPR-based technologies has enabled the rapid advancement of programmable gene manipulation in cells, tissues, and whole organisms. An emerging platform for targeted gene perturbation is epigenetic editing, the direct editing of chemical modifications on DNA and histones that ultimately results in repression or activation of the targeted gene. In contrast to CRISPR nucleases, epigenetic editors modulate gene expression without inducing DNA breaks or altering the genomic sequence of host cells. Recently, we developed the CRISPRoff epigenetic editing technology that simultaneously establishes DNA methylation and repressive histone modifications at targeted gene promoters. Transient expression of CRISPRoff and the accompanying single guide RNAs in mammalian cells results in transcriptional repression of targeted genes that is memorized heritably by cells through cell division and differentiation. Here, we describe our protocol for the delivery of CRISPRoff through plasmid DNA transfection, as well as the delivery of CRISPRoff mRNA, into transformed human cell lines and primary immune cells. We also provide guidance on evaluating target gene silencing and highlight key considerations when utilizing CRISPRoff for gene perturbations. Our protocols are broadly applicable to other CRISPR-based epigenetic editing technologies, as programmable genome manipulation tools continue to evolve rapidly.

synthetic biology↗

Multi-spectral photoacoustic imaging combined with acoustic radiation force impulse imaging for applications in tissue engineering

Tissue engineering is a dynamic field focusing on the creation of advanced scaffolds for tissue and organ regeneration. These scaffolds are customized to their specific applications and are often designed to be complex, large structures to mimic tissues and organs. This study addresses the critical challenge of effectively characterizing these thick, optically opaque scaffolds that traditional imaging methods fail to fully image due to their optical limitations. We introduce a novel multi-modal imaging approach combining ultrasound, photoacoustic, and acoustic radiation force impulse imaging. This combination leverages its acoustic-based detection to overcome the limitations posed by optical imaging techniques. Ultrasound imaging is employed to monitor the scaffold structure, photoacoustic imaging is employed to monitor cell proliferation, and acoustic radiation force impulse imaging is employed to evaluate the homogeneity of scaffold stiffness. We applied this integrated imaging system to analyze melanoma cell growth within silk fibroin protein scaffolds with varying pore sizes and therefore stiffness over different cell incubation periods. Among various materials, silk fibroin was chosen for its unique combination of features including biocompatibility, tunable mechanical properties, and structural porosity which supports extensive cell proliferation. The results provide a detailed mesoscale view of the scaffolds internal structure, including cell penetration depth and biomechanical properties. Our findings demonstrate that the developed multimodal imaging technique offers comprehensive insights into the physical and biological dynamics of tissue-engineered scaffolds. As the field of tissue engineering continues to advance, the importance of non-ionizing and non-invasive imaging systems becomes increasingly evident, and by facilitating a deeper understanding and better characterization of scaffold architectures, such imaging systems are pivotal in driving the success of future tissue-engineering solutions.

bioengineering↗

Optimization of Shoot Regeneration and Application of CRISPR/Cas9 Gene Editing to Cultivated Strawberry

Efficient methods of plant transformation and tissue culture are essential to CRISPR/Cas-based gene editing of crops, but neither is well established in cultivated octoploid strawberry (F xananassa). In the present study, a method for shoot regeneration was established and optimized for two strawberry cultivars commercially grown in Florida, Sweet Sensation(R) Florida 127 FL127) and Florida Brilliance (FB). Runner segments at the tip, node, and petiole obtained from greenhouse-grown plants were used as explants for comparisons of shoot regeneration rate. FL127 showed the highest frequency of shoot regeneration to a basal Murashige and Skoog media (MS) containing 1 mg{middle dot}L-1 of TDZ, 0.05 mg{middle dot}L-1 of BA, and 0.05 mg{middle dot}L-1 of 2,4-D, while FB showed the best response to a lower concentration of BA (0.01 mg{middle dot}L-1) in the same media type. The average conversion frequencies of somatic embryos into shoot regenerations from the runner tips (RT) were 42.8% in FL127 and 56.9% in FB, respectively, with RT being the most prolific in shoot generation for both cultivars. Using these optimized tissue conditions, Agrobacterium-mediated CRISPR/Cas9 gene editing was conducted to evaluate the efficiency of transformation and knockout mutations in the phytoene desaturase (FaPDS) gene of FL127. A total of 234 explants treated with Agrobacterium resulted in an 80.3% regeneration efficiency, with 13.3% of regenerated plants exhibiting partial or complete albino phenotypes. Amplicon sequencing of edited progeny revealed substitutions, insertions, and deletions at the gRNA target sites or flanking regions of all FaPDS homoeologous copies. Our results provide effective methods of tissue culture and transformation for the efficient application of CRISPR-mediated gene editing in cultivated strawberry.

plant biology↗

Synergism and antagonism of bacterial-viral co-infection in the upper respiratory tract

Streptococcus pneumoniae (the pneumococcus) is a leading cause of pneumonia in children under five years old. Co-infection by pneumococci and respiratory viruses enhances disease severity. Little is known about pneumococcal co-infections with Respiratory Syncytial Virus (RSV). Here, we developed a novel infant mouse model of co-infection using Pneumonia Virus of Mice (PVM), a murine analogue of RSV, to examine the dynamics of co-infection in the upper respiratory tract, an anatomical niche that is essential for host-to-host transmission and progression to disease. Coinfection increased damage to the nasal tissue and increased production of the chemokine CCL3. Pneumococcal nasopharyngeal density and shedding in nasal secretions were increased by co-infection. In contrast, co-infection reduced PVM loads in the nasopharynx, an effect that was independent of pneumococcal strain and the order of infection. We showed this antagonistic effect was abrogated using a pneumococcal mutant deficient in capsule production and incapable of nasopharyngeal carriage. The pneumococcal-mediated reduction in PVM loads was caused by accelerated viral clearance from the nasopharynx. Although these synergistic and antagonistic effects occurred with both wild-type pneumococcal strains used in this study, the magnitude of the effects was strain dependent. Lastly, we showed that pneumococci can also antagonize influenza virus. Taken together, our study has uncovered multiple novel facets of bacterial-viral co-infection. Our findings have important public health implications, including for bacterial and viral vaccination strategies in young children.

microbiology↗