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Lux, J.

Publications and source records attributed to Lux, J..

2 recordsLinked to original sources

Systemic Nanobubbles Enable Ultrasound-Guided STING Immunotherapy in Breast Cancer

Activation of the STING pathway can induce potent antitumor immunity, but effective delivery of STING agonists to the tumor while limiting systemic exposure remains challenging. We previously developed MUSIC, an ultrasound-guided platform that uses microbubbles (MBs) to deliver the STING agonist 2'3'-cGAMP and locally activate antitumor immunity. However, the vascular confinement of MBs and the need for intratumoral administration limit the potential for systemic tumor targeting. To overcome these limitations, we developed SONATA (Systemic Oncotherapy using Nanobubbles for Acoustically-guided Tumor Activation), which employs nanobubbles (NBs) that are approximately 10-fold smaller than conventional MBs, enabling systemic administration and tumor extravasation. Following NB accumulation within tumors, ultrasound exposure triggers localized cGAMP release, facilitating delivery to targeted CD11b+ antigen-presenting cells (APCs) and STING activation with spatial and temporal control. NBs are composed of the same components as MBs, including phospholipid shells and a perfluorobutane core and are functionalized with anti-CD11b antibodies to target CD11b+ APCs and spermine-modified dextran to stably load cGAMP through nanocomplex formation. Upon ultrasound activation, SONATA induced phosphorylation of STING, TBK1, and IRF3 and increased IFN-{beta} production in bone marrow-derived macrophages. In an orthotopic breast cancer model, intravenously administered SONATA combined with tumor-localized ultrasound significantly inhibited tumor growth compared with controls. Furthermore, SONATA synergized with immune checkpoint blockade prolonged the median survival of tumor-bearing mice. Collectively, these findings establish SONATA as a systemically administered immunotherapy platform that enables ultrasound-guided, spatially controlled STING activation.

bioengineering↗

A soluble host signal drives rapid, brain-predominant capsular thickening in Streptococcus pneumoniae via a putative sodium-dependent transporter (SPD_0642) and capsular prepromoter sequence

The Streptococcus pneumoniae capsule is a major determinant of virulence, yet whether bacteria actively remodel it during infection remains unclear. Studying Swiss and South African clinical isolates (serotypes 1, 6B, 8, 12F, 19F, and 35B), we identified a rapid, tissue-specific response: capsule thickness increased within hours upon co-exposure to host cells and tissues. Only two 12F strains failed to thicken. Thickening was greatest in brain tissue, moderate in serum, and absent on the epithelium. This adaptation occurred independently of cod locus phase variation and nutritional factors, and was instead driven by a soluble, thermostable host signal (<3 kDa). Thickening correlated with neuroinflammation but did not require it, as it also occurred in contact with resting brain immune cells. It exacerbated meningitis in mice and enhanced bacteremia. Once induced, capsule thickening dampened inflammatory responses, coinciding with downregulation of pneumolysin, a major pro-inflammatory toxin. Genetic analysis of the non-thickening 12F isolates, together with targeted mutagenesis, identified two independent determinants of capsule-thickness modulation: a specific promoter-proximal element and SPD_0642, a conserved putative transporter encoded outside the capsule operon. Both contributed to the host-induced thickening phenotype. Pneumococci therefore rapidly remodel their surface in response to tissue-specific cues within the host, in a manner distinct from stochastic phase variation outside it. ImportanceMany bacteria are covered by a slimy outer layer, known as a capsule, that helps them evade the immune system. The amount of this layer can influence how easily harmful bacteria cause disease. Until now, scientists knew that bacteria can turn capsule production on or off through changes in their DNA. In this study, we show that Streptococcus pneumoniae, a common cause of serious infections, can also adjust its capsule in another way. It senses soluble signals from the tissues it enters, allowing it to recognize where it is in the body and to gradually change the thickness of its protective outer layer. This finding offers a new way of understanding how bacterial infections develop and may point to new treatment strategies.

microbiology↗