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Biology subjects

Keck, C.

Publications and source records attributed to Keck, C..

3 recordsLinked to original sources

Refractive index modulation by ultraviolet absorption of canonical amino acids for in vivo optical transparency

The inherent opacity of most mammalian tissues limits deep-tissue optical imaging and light delivery. In contrast, the natural transparency of certain species and ocular tissues has been hypothesized to involve proteins with unusually high refractive indices. Here, we systematically analyze the ultraviolet absorption and visible-range refractive index modulation of canonical amino acids to identify key contributors to high-refractive index proteins. We identify arginine as a leading candidate, combining strong ultraviolet absorption, efficient refractive index modulation, physiological pH, and biocompatibility. These properties are validated through successful achievement of optical transparency in both ex vivo and in vivo tissues. Our findings establish a foundation for using abundant endogenous biomolecules to achieve in vivo tissue transparency and suggest a strategy for engineering proteins enriched in high-performing amino acids to enable efficient, biocompatible tissue clearing.

biophysics↗

Nitrate-responsive Mycobacterial Intracytoplasmic Membranes dampen Inflammation during Mycobacterium tuberculosis Infection

Subcellular compartmentalization of metabolic processes is a main feature of prokaryotic and eukaryotic architecture. Environmental bacteria generate intracytoplasmic membranes (ICMs) as a crucial strategy to adapt their metabolism to environmental changes. While pathogenic intracellular bacteria also perceive various stressful stimuli during host interactions, the subsequent re-organization of their internal architecture has not been explored. Using cryo-electron tomography, we show that Mycobacterium tuberculosis (Mtb), a major human pathogen, is able to form ICMs outside and inside host cells in a strain-dependent manner. We characterize these Mycobacterial intracytoplasmic Membranes (MIMs) as nitrate-induced structures involved in regulation of metabolism. Furthermore, we uncover that MIM formation during macrophage infection correlates with the ability of Mtb to dampen cellular inflammatory responses. Our findings reveal a previously uncharacterized cytoplasmic structure in Mtb and link it to a functional mechanism that enables the bacterium to adapt to its intracellular niche.

microbiology↗

An oxadiazole-based compound potentiates anti- tuberculosis treatment by increasing host resistance via zinc poisoning

Anti-tuberculosis drugs, mostly developed over 60 years ago, combined with a poorly effective vaccine, have failed to eradicate tuberculosis. More worryingly, multi-resistant strains of Mycobacterium tuberculosis are constantly emerging. Innovative strategies are thus urgently needed to improve tuberculosis treatment. Recently, host-directed therapy has emerged as a promising strategy to be used in adjunct with existing or future antibiotics, by improving innate immunity or limiting immunopathology. Here, using high content imaging, we identified novel 1,2,4-oxadiazole-based compounds, that allow human macrophages to control MTB replication. Genome-wide gene expression analysis revealed that these molecules induced zinc remobilization inside cells, resulting in bacterial zinc intoxication. More importantly, we also demonstrated that, upon treatment with these novel compounds, M. tuberculosis became even more sensitive to anti-tuberculosis drugs, in vitro and in vivo, in a mouse model of tuberculosis. Manipulation of heavy metal homeostasis holds thus great promise to be exploited to develop host-directed therapeutic interventions.

microbiology↗