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Baxter, K. J.

Publications and source records attributed to Baxter, K. J..

5 recordsLinked to original sources

Cross-scale Imaging of Live Botanical Specimens using Fourier Ptychographic Microscopy

Light microscopic imaging of botanical specimens is typically performed using diffraction-limited methods which can image either a small field of view (FOV) with a shallow depth of field (DOF) at high resolution, or a large FOV and large DOF at low resolution. As such, many of the important small features, such as cells in the root cap of Arabidopsis, chloroplasts in algae and leaf guard cells, cannot be resolved in high numbers for meaningful statistical interpretation of results. Fourier ptychographic microscopy (FPM) is an accessible low-cost solution for large format bioimaging which makes use of multiangle illumination and iterative phase retrieval to recover high-resolution estimates of sample phase and amplitude. To date much FPM research has focused on optimising hardware and image reconstruction techniques with biological and biomedical applications limited primarily to mammalian cell cultures and histological tissue sections. We have, for the first time, applied FPM for label-free imaging of these large, living botanical specimens to investigate cellular and sub-cellular structures over multiple length scales simultaneously, with the aim of resolving structures that cannot be seen with diffraction-limited methods over a large field of view. With our FPM system we demonstrate imaging of living samples mounted in water with a resolution of 615 nm over a 3.6 mm diagonal FOV, producing a 9-fold improvement in resolution compared to conventional brightfield imaging. This allows for individual root cap cells of Arabidopsis thaliana to be resolved within the context or larger root structures, individual chloroplasts identified in large section of Spirogyra varians, and high-resolution colour imaging of Tradescantia zebrina stomata and chloroplasts across large leaf sections.

plant biology↗

Extracting biological structure and heterogeneity from the nano to the macro scale

Fluorescence microscopy is an essential tool in biology. It has revealed great variability at multiple scales, in macromolecular complexes, cells, and organisms. Understanding this variability will reveal the mechanisms by which genetically or biochemically identical systems adopt different biological states. Achieving this requires the ability to extract both the underlying biological structure and how it varies across the population. Currently the field lacks general techniques to deal with arbitrary structures and different types of variability. Here we present SQUASSH, a new convolutional neural network-based approach to freely fit structural models to fluorescence microscopy data that simultaneously quantifies variability to reveal correlations, dynamics, and systematic distortions. SQUASSH is highly versatile: it accommodates diverse imaging modalities at length scales from nm to mm. This approach opens up applications such as imaging nanoscale macromolecular structures, revealing patterns in shape changes from organelle to tissue scale, and characterizing systems biology of dynamical processes.

cell biology↗

A simple silicone elastomer colonisation model highlights complexities of Candida albicans and Staphylococcus aureus interactions in biofilm formation.

Healthcare-associated infections (HAIs) significantly contribute to the burden of antimicrobial resistance (AMR). A major factor in HAIs is the colonisation of indwelling medical devices by biofilm-forming opportunistic pathogens such as Candida albicans and Staphylococcus aureus. These organisms frequently co-infect, resulting in synergistic interactions with enhanced virulence and resistance to treatment. C. albicans and S. aureus readily form dual-species biofilms on silicone elastomers, a commonly used medical device material, yet the colonisation phenotypes of these organisms on such surfaces remains poorly understood. We developed a simple, optically tractable model to mimic the colonisation of indwelling medical devices to investigate C. albicans and S. aureus biofilm formation. The system utilises discs of a silicone elastomer embedded in agar, reflecting device-associated conditions and enabling high-resolution imaging of biofilms formed by C. albicans and S. aureus co-culture. Initial results using the silicone elastomer colonisation model reveal robust biofilm formation. These biofilms exhibited morphological differences between dual species biofilms formed by S. aureus co-cultures with either yeast- or hyphal-form C. albicans, indicating the impact of differing C. albicans cell morphotypes in biofilm-associated medical device colonization on silicone elastomers. Quantification of biofilm formation by crystal violet staining provided further validation of the system. These findings underscore the importance of developing tools for biofilm study which more closely resemble the infectious microenvironment, with our work detailing such a system which can be employed in further study to improve strategies against device-related HAIs.

microbiology↗

Revealing the Ultrastructure of Live Candida albicans using Stimulated Emission Depletion Microscopy

Candida albicans, a commensal fungal pathogen, is a major cause of opportunistic infections in immunocompromised individuals. Understanding its cellular structures and pathogenic mechanisms is critical for developing targeted antifungal therapies. Stimulated emission depletion (STED) microscopy enables nanoscale visualization of cellular components, surpassing the diffraction limit of conventional light microscopy. In this study, we employed STED microscopy to investigate the ultrastructural organization of C. albicans in live specimens. We showed that dyes commonly used in STED microscopy of mammalian cells are ineffective for the study of C. albicans, and we showed the utility of Nile Red staining for visualising the organisation of dynamic cellular components, including tracking of lipid droplets, using time-lapse recording in experiments exceeding 12 hours. STED microscopy offered more than a two-fold improvement in resolution compared to confocal laser scanning microscopy applied to the same specimens with negligible photobleaching. This study demonstrates the utility of STED microscopy in advancing our understanding of C. albicans biology at the nanoscale, providing a platform for future investigations into fungal pathogenicity and antifungal development. GRAPHICAL ABSTRACT O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=137 SRC="FIGDIR/small/625149v1_ufig1.gif" ALT="Figure 1"> View larger version (31K): org.highwire.dtl.DTLVardef@d46837org.highwire.dtl.DTLVardef@105f661org.highwire.dtl.DTLVardef@728d11org.highwire.dtl.DTLVardef@8b65ae_HPS_FORMAT_FIGEXP M_FIG C_FIG We present an optimised fluorescence staining method for super-resolution live-cell imaging of Candida albicans, using Stimulated Emission Depletion (STED) microscopy to resolve and track sub-cellular structures. We compare the performance of conventional confocal laser scanning microscopy (CLSM) to STED imaging, providing a three-fold resolution improvement beyond the diffraction limit. Finally, we perform live cell tracking to visualise and quantify the trajectories of multiple sub-diffraction limit-sized objects over a period of 12 hours, demonstrating the potential for live-cell STED imaging of Candida to visualise key processes involved in pathogenesis, drug resistance and infection.

microbiology↗

Time-lapse mesoscopy of Candida albicans and Staphylococcus aureus dual-species biofilms reveals a structural role for the hyphae of C. albicans in biofilm formation

Polymicrobial infection with Candida albicans and Staphylococcus aureus may result in a concomitant increase in virulence and resistance to antimicrobial drugs. This enhanced pathogenicity phenotype is mediated by numerous factors including metabolic processes and direct interaction of S. aureus with C. albicans hyphae. The overall structure of biofilms is known to contribute to their recalcitrance to treatment, however the dynamics of direct interaction between species and how it contributes to pathogenicity is poorly understood. To address this, a novel time-lapse mesoscopic optical imaging method was developed to enable the formation of C. albicans/S. aureus whole dual-species biofilms to be followed. It was found that yeast-form or hyphal-form C. albicans in the biofilm founder-population profoundly affects the structure of the biofilm as it matures. Different sub-populations of C. albicans and S. aureus arise within each biofilm as a result of the different C. albicans morphotypes, resulting in distinct sub-regions. These data reveal that C. albicans cell morphology is pivotal in the development of global biofilm architecture and the emergence of colony macrostructures and may temporally influence synergy in infection.

microbiology↗