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Toniolo, C.

Publications and source records attributed to Toniolo, C..

3 recordsLinked to original sources

OpenSIM: open source microscope add-on for structured illumination microscopy

Super-resolution techniques expand the abilities of researchers who have the knowledge and resources to either build or purchase a system. This excludes the part of the research community without these capabilities. Here we introduce the openSIM add-on to upgrade existing optical microscopes to Structured Illumination super-resolution Microscopes (SIM). The openSIM is an open-hardware system, designed and documented to be easily duplicated by other laboratories, making super-resolution modality accessible to facilitate innovative research. The add-on approach gives a performance improvement for pre-existing lab equipment without the need to build a completely new system.

bioengineering↗

Uptake-independent killing of macrophages by extracellular aggregates of Mycobacterium tuberculosis is ESX-1 and PDIM-dependent

Mycobacterium tuberculosis (Mtb) infection is initiated by inhalation of small numbers of bacteria into lung alveoli, where they are phagocytosed by resident macrophages. Intracellular replication of Mtb leads to death of the infected macrophages, release of bacterial aggregates, and rapid growth of the extracellular aggregates on host-cell debris. Here, we show that extracellular Mtb aggregates can evade phagocytosis by killing macrophages in a contact-dependent but uptake-independent manner. We use single-cell time-lapse fluorescence microscopy to show that contact with extracellular Mtb aggregates triggers macrophage plasma membrane perturbation, cytoplasmic calcium accumulation, and pyroptotic cell death. These effects depend on the Mtb type VII secretion system ESX-1, however, this system alone cannot induce calcium accumulation and macrophage death in the absence of the Mtb surface-exposed lipid phthiocerol dimycocerosate. Unexpectedly, we found that ESX-1-mediated secretion of the EsxA/EsxB virulence factors is not required for uptake-independent killing of macrophages after contact with extracellular Mtb aggregates. In the absence of EsxA/EsxB secretion, killing is mediated by the 50-kDa isoform of the ESX-1-secreted protein EspB, while blocking secretion of both EsxA/EsxB and processed EspB reduces killing to background levels. Treatment with a small-molecule ESX-1 inhibitor reduces uptake-independent killing of macrophages by Mtb aggregates, suggesting that novel therapies targeting this anti-phagocytic mechanism could prevent the propagation of extracellular bacteria within the lung. Significance statementMycobacterium tuberculosis (Mtb) can survive inside the lung macrophages that normally provide the first line of defense against bacterial infections. Intracellular replication of Mtb ultimately results in the death and lysis of infected macrophages, allowing the bacteria to spread to other cells and propagate the infection. Our study shows that extracellular Mtb aggregates that form on the debris of dead host cells can induce macrophage death in a contact-dependent but uptake-independent manner, allowing the bacteria to evade the host defenses associated with uptake by macrophages. Killing of macrophages by extracellular Mtb aggregates is driven by the Mtb ESX-1 secretion system and the surface-exposed lipid phthiocerol dimycocerosate. Our results suggest that novel drugs targeting Mtb factors required for host-cell killing by extracellular Mtb aggregates may reduce bacterial spreading and expansion of necrotic tuberculosis lesions, which are known to be poorly penetrated by conventional antibiotics.

microbiology↗

Mechanical morphotype switching as an adaptive response in mycobacteria

Invading microbes face a myriad of cidal mechanisms of phagocytes that inflict physical damage to microbial structures. How intracellular bacterial pathogens adapt to these stresses is not fully understood. Here, we report a new virulence mechanism by which mycobacteria alter the mechanical stiffness of their cell surface to become refractory to killing during infection. Long-Term Time-Lapse Atomic Force Microscopy was used to reveal a process of "mechanical morphotype switching" in mycobacteria exposed to host intracellular stress. A "soft" mechanical morphotype switch enhances tolerance to intracellular macrophage stress, including cathelicidin. Genetic manipulation, by deletion of uvrA, or pharmacological treatment, with bedaquiline, locked mycobacteria into a "soft" mechanical morphotype state, enhancing survival in macrophages. Our study proposes microbial mechanical adaptation as a new axis for surviving host-mediated stressors. One-Sentence SummaryBacteria alter their cell surface mechanical properties to increase survival during macrophage infection.

microbiology↗