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Frei, A.

Publications and source records attributed to Frei, A..

3 recordsLinked to original sources

A Platinum Butterfly Effect: Small Changes Turn an Anticancer Drug into a Non-toxic Metalloantibiotic with In Vivo Efficacy

Widespread resistance to all clinically used antibiotics has sparked investigations into alternative sources for novel and effective antimicrobial agents. Metal-based compounds (metalloantibiotics) have emerged as a promising class of potential antibiotics exhibiting high hit rates against critical bacterial pathogens while not displaying higher toxicity than organic compounds. Here, we describe the exploration of a novel class of non-toxic, Gram-positive acting platinum-based antibacterial agents with micro to nanomolar activity against a range of methicillin and vancomycin-resistant Staphylococcus aureus strains. Structure-activity relationship (SAR) studies revealed that modifications of the core scaffold result in reduced antibacterial activity. Mode of action studies investigations showed that lead compound Pt1 did not impair cell division, RNA, protein, or cell wall synthesis, nor did it affect membrane integrity or potential. Instead, akin to the structurally similar anticancer drug cisplatin (CisPt), Pt1 treatment resulted in reduced DNA staining, visible nucleoid compaction, and activation of DNA damage repair responses. Importantly, we could show that Pt1 is able to interact with and damage DNA directly, resulting in DNA strand breaks and fragmentation. Pt1 activity can be reduced significantly by high amounts of a hydroxyl radical scavenger. Derivative Pt8, which retained DNA-damaging activity but was less potent in terms of antibacterial activity, was not affected by the presence of radical scavengers, suggesting that Pt1 possesses a multimodal mechanism. In line with this observation, no resistance development to Pt1 was observed over the course of 36 passages. Finally, we could demonstrate the in vivo activity of Pt1, which significantly reduced the bacterial load in a murine S. aureus skin infection model. Altogether, these findings shed light on the SAR and antibacterial mode of action of a novel class of platinum metalloantibiotics, validate its in vivo efficacy, and pave the way for further exploration of platinum compounds as novel drug candidates with a highly attractive activity profile.

microbiology↗

Intracellular Delivery of Bone Nanoparticles to Mitigate Irradiation-Induced Damage in Bone Marrow Mesenchymal Stem Cells

Ionizing radiation (IR)-induced bone damage presents a major clinical challenge by impairing bone marrow function and disrupting normal bone remodeling. Bone regeneration depends on bone marrow-derived mesenchymal stem cells (BMSCs), which are highly sensitive to IR that causes DNA damage, oxidative stress, apoptosis, and a shift from osteogenesis to adipogenesis, ultimately leading to bone loss and impaired healing. This study evaluated the therapeutic potential of intracellularly delivered bone-derived nanoparticles (BPs) in mitigating IR-induced BMSCs damage. We found that IR exposure caused significant BMSCs dysfunction, including reduced proliferation, increased apoptosis, persistent DNA damage, and a shift toward adipogenic differentiation. Treatment with BPs led to efficient intracellular uptake, improved cell morphology, enhanced proliferation, reduced apoptosis, and preservation of balanced differentiation capacity. Transcriptomic analysis via RNA sequencing revealed that BPs restored key molecular pathways disrupted by IR, particularly those involved in cell cycle regulation, extracellular matrix (ECM) remodeling, and apoptosis. By reversing these transcriptional impairments, BPs supported genomic stability and the regenerat ive function of BMSCs. Overall, these findings suggest that BPs effectively counteract IR-induced cellular damage and enhance the regenerative capacity of BMSCs, offering a promising therapeutic strategy for radiation -induced skeletal injuries.

bioengineering↗

Loss of KIF13B causes time-dependent changes in ciliary polycystin-2 levels and extracellular vesicle release

Dynamic control of ciliary membrane protein content is crucial for the organelles homeostasis and signaling function and involves removal of ciliary components by BBSome-mediated export, endocytic retrieval and/or extracellular vesicle (EV) shedding. We report that KIF13B regulates ciliary protein composition and EV shedding in cultured kidney epithelial cells, with effects that vary over time. In early stages of ciliation Kif13b-/- cells aberrantly accumulate PC2, FLOT1, and HGS within cilia. These cells also produce fewer small EVs through the GW4869-sensitive, nSMase2 pathway, and release large EVs enriched with CCDC198 and the centriole distal appendage protein CCDC92, which also localizes to the ciliary tip. Upon cilia maturation, Kif13b-/- cells accelerate large EV release of numerous ciliary proteins, including PC2, BBSome components, and IFT proteins, which correlates with gradual depletion of CCDC92 and PC2 from the ciliary tip and shaft, respectively. Furthermore, over time, Kif13b-/- cells show an upregulation in the release of small EVs, which differ in composition from wild-type small EVs. Specifically, the mutant small EVs lack several proteins that are enriched in small EVs from BBSome-deficient cells, such as the palmitoyl transferase ZDHHC5, which localizes to cilia, accumulates within cilia of BBSome-deficient cells, and regulates ciliary length and PC2 levels. Collectively, our work suggests that KIF13B acts at the level of centriole distal appendages to limit ciliary protein entrance and promote endocytic retrieval downstream of the BBSome. Furthermore, this study shows for the first time that CCDC198 and ZDHHC5 localize to primary cilia, suggesting they are potential novel ciliopathy candidates.

cell biology↗