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Low-Beer, T.

Publications and source records attributed to Low-Beer, T..

2 recordsLinked to original sources

Mouse Models Uniformly Featuring Human-like Lesions Harboring Drug-tolerant Mycobacterium tuberculosis

Mouse models have been key to studies of tuberculosis pathogenesis and drug efficacy, but many, such as those employing BALB/c mice, fail to reproduce the full range of heterogenous microniches observed in well-structured human lesions, which feature hypoxic caseous cores of necrotic debris surrounded by infected foamy macrophages. The granuloma presents a variety of environments differing in levels of oxygen, ions, nutrients, and intra versus extracellular residence, which determine the physiological state of the infecting bacillus and its susceptibility to immune or drug control. Recently, alternative mouse strains such as C3HeB/FeJ have allowed the study of infection and treatment in the context of these varied environments but exhibit substantial inconsistency in development of human-like lesions, both within and between individual mice. Building on the observation that inducible nitric oxide synthase (Nos2)-deficient mice consistently develop hypoxic necrotic lesions, we have established two simplified models with infection by the aerosol route. The first uses the slightly attenuated M. tuberculosis R1Rv strain, which produces a progressive infection that is contained at a high stable burden by an adaptive immune response. In the second model, vaccination with the attenuated {Delta}RD1, pantothenate auxotroph mc2 6230 protects from an otherwise lethal infection with virulent M. tuberculosis Erdman. This model reflects most contemporary tuberculosis infections, which take place in the context of a pre-existing immune response from vaccination. Both variations uniformly develop well-structured hypoxic necrotic lesions harboring drug tolerant bacteria. These refined models will be useful in studies of M. tuberculosis infection and treatment.

microbiology↗

Direct from the Seed: An Atomic-Resolution Protein Structure by Ab Initio MicroED

While purifying the seed protein crambin, we discovered that needles of pure protein nanocrystals formed spontaneously during the drying of a simple ethanolic purification drop. Contrary to traditional crystallography, these needles diffracted poorly using X-rays yet proved to be exceptionally well-suited for microcrystal electron diffraction (MicroED). By merging data from 58 such nanocrystals, we obtained diffraction to 0.85 [A] resolution with an overall correlation coefficient of over 99% and solved the structure ab initio using a five-residue helical fragment to initiate density modification. The resulting map was of exceptional quality, enabling fully automated model building and resolving individual hydrogen atoms. This work represents the highest-resolution protein structure (0.85 [A]) determined from spontaneously formed protein nanocrystals and is the first ab initio structure of crambin solved by electron diffraction. Our workflow demonstrates that complex biological matrices can be mined directly for sub-[a]ngstrom protein structures, establishing a practical and scalable pipeline from raw biomass to atomic-level models of previously intractable targets.

biophysics↗