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Biology subjects

Abbondanzieri, E. A.

Publications and source records attributed to Abbondanzieri, E. A..

5 recordsLinked to original sources

Tunable light-focusing behavior of engineered bacterial microlenses with controllable shapes

Recently, engineered bacterial cells have been shown to behave as optically-active photonic devices comparable to industrially fabricated microlenses1. Bacterial cells can be encapsulated within a layer of polysilicate through surface display of the sea sponge enzyme silicatein, which mineralizes a polysilicate coating. The addition of this polysilicate layer significantly enhances the ability of these cells to guide, scatter, and focus light1. However, this previous technique was limited to creating rod-shaped microlenses, which are not ideal for all applications. Here we expand upon this technology by engineering the shapes of silicatein-displaying bacterial cells. Through the overexpression of the genes bolA2-5 and sulA6,7 or through the use of the drug A228,9, we are able to alter Escherichia coli cells from their characteristic rod-like shape to either spherical or filamentous forms. Round cells encapsulated in polysilicate were shown to scatter light more intensely and symmetrically than rod-shaped cells, while encapsulated filamentous cells were shown to guide light similarly to an optical fiber. This control over the size and shape of optically-active cells is a major advancement towards developing bio-engineered photonic devices such as nanophotonic waveguides, spherical microlens arrays, and advanced biosensors.

synthetic biology↗

Emergent Morphologies, Slow Dynamics, and Phase Behavior in Dps:DNA assemblies

The DNA-binding protein from starved cells (Dps) compacts bacterial DNA into stress-protective condensates, but the physical ingredients that are sufficient to produce the observed morphological and dynamical phenomenology remain unclear. Here we use Dps:DNA as the motivation for a broader soft-matter question: which properties govern the co-condensation of a semiflexible polymer with a binding co-solute, and how is the resulting condensate morphology selected? We combine coarse-grained Brownian dynamics (BD) simulations, in which DNA is a semiflexible bead-spring chain and Dps a spherical particle interacting through heterotypic attraction and homotypic repulsion, with a ternary Flory-Huggins free energy evolved under conserved Cahn-Hilliard-Cook dynamics. Both frameworks show that the condensate morphology is governed jointly by the heterotypic Dps:DNA attraction and by composition: attraction drives co-condensation, while at fixed attraction the relative abundance of the two species selects between extended, network-like structures and compact, droplet-like condensates. That two independent models, sampling different concentration regimes, both show composition-controlled morphology selection indicates it is a robust feature of the co-condensation thermodynamics. The simulations further reveal slow, heterogeneous dynamics: sub-diffusive Dps motion and a stretched-exponential collapse of chain dimensions, signatures of the dynamical arrest that accompanies compaction. The framework provides general, transferable principles for protein-nucleic-acid phase separation in soft and living matter.

biophysics↗

Genome-wide DNA bridging by H-NS reshapes the stationary phase nucleoid and transcriptional landscape

Bacterial nucleoid-associated proteins (NAPs) structure the chromosome and regulate gene expression, but how these two functions are related is unclear. H-NS is a well-studied NAP that acts as a global gene silencer capable of bridging and looping DNA in vitro. Here, using high-throughput chromosome conformation capture assays, we show that H-NS mediates genome-wide long-range DNA looping in the stationary-phase nucleoid of Escherichia coli. Chromatin immunoprecipitation assays demonstrate that high levels of H-NS are present at the base of DNA loops. Super-resolution imaging and single-particle tracking show that H-NS binds more tightly in stationary phase and compacts the nucleoid mesh. Transcriptomic analyses indicate H-NS represses gene expression more strongly in the looped nucleoid and enables higher expression of genes outside of H-NS-bound regions. Overall, our study demonstrates that H-NS bridges distal DNA regions along the genome upon nutrient limitation, causing reduced nucleoid accessibility, stronger transcriptional repression, and a shifted transcriptional landscape.

molecular biology↗

Dps binds and protects DNA in starved Escherichia coli with minimal effect on chromosome accessibility, dynamics and organisation

Dps is the most abundant nucleoid-associated protein in starved Escherichia coli with [~]180,000 copies per cell. Dps binds DNA and oxidises iron, facilitating survival in harsh environments. Dps-DNA complexes can form crystalline structures, leading to the proposed model that Dps reorganises the starved E. coli nucleoid into a compact liquid crystal, slowing chromosome dynamics and limiting access of other proteins to DNA. In this work, we directly tested this model using live-cell super-resolution microscopy and Hi-C analysis. We found that after 96 h of starvation, Dps compacts the nucleoid and increases short-range DNA-DNA interactions, but does not affect chromosome accessibility to large protein nanocages or small restriction enzymes. We also report that chromosome dynamics and organisation are primarily impacted by the bacterial growth phase; the effect of Dps is relatively minor. Our work clarifies the role of Dps in modulating nucleoid properties, and we propose an updated model for Dps-DNA interactions in which Dps binds, protects and compacts DNA largely without influencing chromosome access, dynamics and organisation. Additionally, this work provides a general framework for assessing the impact of nucleoid-associated proteins on key aspects of chromosome function in live cells. TOC O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=82 SRC="FIGDIR/small/673347v3_ufig1.gif" ALT="Figure 1"> View larger version (36K): org.highwire.dtl.DTLVardef@1385efforg.highwire.dtl.DTLVardef@1e4cb76org.highwire.dtl.DTLVardef@1e9e43dorg.highwire.dtl.DTLVardef@8768f4_HPS_FORMAT_FIGEXP M_FIG C_FIG

biophysics↗

Engineered bacteria that self-assemble ''bioglass'' polysilicate coatings display enhanced light focusing

Photonic devices are cutting-edge optical materials that produce narrow, intense beams of light, but their synthesis typically requires toxic, complex methodology. Here we employ a synthetic biology approach to produce environmentally-friendly, living microlenses with tunable structural properties. We engineered Escherichia coli bacteria to display the silica biomineralization enzyme silicatein from aquatic sea sponges. Our silicatein-expressing bacteria can self-assemble a shell of polysilicate "bioglass" around themselves. Remarkably, the polysilicate-encapsulated bacteria can focus light into intense nanojets that are nearly an order of magnitude brighter than unmodified bacteria. Polysilicate-encapsulated bacteria are metabolically active for up to four months, potentially allowing them to sense and respond to stimuli over time. Our data demonstrate that engineered bacterial particles have the potential to revolutionize the development of multiple optical and photonic technologies. Significance StatementIn this work, we apply the principles of synthetic biology to create living optical devices. Utilizing the ability of sea sponges to polymerize bioglass from silica precursors in the ocean water using only a single enzyme, silicatein, we have fused this same enzyme to the surface of Escherichia coli bacterial cells. The modified bacteria can polymerize a layer of bioglass at their surface. This bioglass shell allows the bacteria to act as engineered optical devices that are able to scatter high intensity, focused light while also surviving for several months, opening the door to a wide range of sense-and-respond applications. ClassificationBiological Sciences, Applied Biological Sciences

synthetic biology↗