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Biology subjects

Pultar, M.

Publications and source records attributed to Pultar, M..

5 recordsLinked to original sources

Castling, a novel therapeutic concept for rewiring pathological gene-expression networks, enabled by the TRIPLE technology

Pathological conditions often arise from dysregulation of complex gene networks, with microRNAs (miRNAs) acting as central modulators. Disease progression is frequently characterized by upregulation of "disease-promoting" miRNA, suppressing beneficial pathways, and concomitant downregulation of "protective/therapeutic" miRNAs, normally restraining pathological programs. Since individual miRNAs coordinately regulate multiple genes, their manipulation represents powerful therapeutic intervention, yet synthetic or ectopically overexpressed miRNA mimics or inhibitors may perturb physiological miRNA processing and/or cause off-target effects. We hypothesized that pathological gene regulatory imbalances could instead be corrected by rewiring endogenous miRNA regulation. Specifically, by placing downregulated "protective/therapeutic" miRNAs under the control of promoters activated in pathology, and driving overexpression of "disease-promoting" miRNAs, thereby disabling the pathogenic program while inducing the therapeutic one in a single editing event. We termed this concept castling, after the chess move. For effective implementation of castling, we developed TRIPLE (Targeted Replacement Induced by Persistent Locus Editing), a novel genome-editing procedure enhancing homology-directed repair through sequential cleavage. As proof of concept, we castled miRNAs inversely regulated during onset of CAR T cell dysfunction in a model of chronic antigen stimulation. Castled CAR T cells exhibited a delayed dysfunction enabled by up- and downregulation of relevant gene subsets.

molecular biology↗

Metabolic Reprogramming of Human Macrophages Drives the Formation of Hybrid M1/M2 Pro-Regenerative Extracellular Vesicles

The coordinated activity of macrophages is essential for bone repair, with pro-inflammatory M1 macrophages driving early responses and anti-inflammatory M2 macrophages supporting later tissue remodeling. While both phenotypes are required, prolonged persistence of either subtype can impair healing, underscoring the correct transition between the two states. Macrophage polarization is closely linked to cellular metabolism, and human macrophages display distinct metabolic profiles. Macrophage-derived extracellular vesicles (EVs) carry bioactive cargo and reflect parental polarization, influencing recipient cell function. This raises critical questions about how metabolic regulation influences human macrophage function, their EVs and their effect on angiogenesis and osteogenesis. This study investigates EVs derived from polarized primary human macrophages and from macrophages exposed to DASA-58, a small molecule which activates the metabolic enzyme pyruvate kinase M2 (PKM2). Alterations in macrophage metabolism modifies the molecular cargo of their EVs, including microRNAs (miRNAs), to modulate regenerative activity. These findings demonstrate that human macrophage-derived EVs exert metabolically dependent effects on angiogenesis and osteogenesis, and that metabolic modulation enables the generation of EVs with hybrid pro-regenerative properties intermediate between M1 and M2. This establishes metabolic reprogramming within human macrophages using small molecules as a strategy to engineer novel phenotypes and EVs for bone repair.

immunology↗

Immortalization of mesenchymal stromal cells by hTERT does not affect the functional properties of secreted extracellular vesicles

Mesenchymal stromal cell-derived extracellular vesicles (MSC-EVs) have emerged as promising and safe therapeutic agents, however, donor heterogeneities, limited replicative life span and changes in the cellular phenotype throughout in vitro cultivation remain major hurdles for scalable EV production. For these reasons, this study aims to investigate the use of hTERT immortalized ( telomerized) MSCs as a potential source for efficient, standardized, reliable MSC-EVs production by comparing parental primary to their telomerized MSC counterparts. We observed that hTERT expression does not affect cell morphology or cellular doubling time, while ensuring unlimited, stable in vitro propagation. In addition, telomerized WJ-MSCs maintained the canonical expression profile of surface markers and the tri-lineage differentiation potential of their primary counterparts. In terms of EV characteristics, the immortalization by hTERT expression did not affect size, number, cargo composition or biological activity regarding anti-inflammatory, anti-fibrotic and wound healing properties in vitro. In summary, the use of hTERT to immortalize MSCs leads to the creation of cell lines that continuously produce MSC-EVs without altering any key functionalities of the cells or resulting EVs. This suggests that telomerization of human cells from single donors is a promising strategy for generating cell factories that can produce EVs in standardized conditions and at scale and with standardization.

cell biology↗

Snorkel-tag Based Affinity Chromatography for Recombinant Extracellular Vesicle Purification

Extracellular vesicles (EVs) are lipid nanoparticles and play an important role in cell-cell communications, making them potential therapeutic agents and allowing to engineer for targeted drug delivery. The expanding applications of EVs in next generation medicine are still limited by existing tools for scaling standardized EV production, single EV tracing and analytics, and thus provide only a snapshot of tissue-specific EV cargo information. Here, we present CD81, an EV surface marker protein, genetically fused to series of tags with additional transmembrane domain to be displayed on the EV surface, which we term Snorkel-tag. This system enables to affinity purify EVs from complex matrices in a non-destructive form. In future applications, this strategy will allow generating transgenic animals to enable tracing and analyzing EVs, and their cargo in physiological and pathophysiological set-ups, and facilitate the development of EV based diagnostic tools in murine models which can be translated to humans.

bioengineering↗

Profiling microRNA expression during senescence and aging: mining for a diagnostic tool of senescent-cell burden

In the last decade cellular senescence, a hallmark of aging, has come into focus for pharmacologically targeting aging processes. Senolytics are one of these interventive strategies that have advanced into clinical trials, creating an unmet need for minimally invasive biomarkers of senescent cell load to identify patients at need for senotherapy. We created a landscape of miRNA and mRNA expression in five human cell types induced to senescence in-vitro and provide proof-of-principle evidence that miRNA expression can track senescence burden dynamically in-vivo using transgenic p21high senescent cell clearance in HFD fed mice. Finally, we profiled miRNA expression in seven different tissues, total plasma, and plasma derived EVs of young and 25 months old mice. In a systematic analysis, we identified 22 candidate senomiRs with potential to serve as circulating biomarkers of senescence not only in rodents, but also in upcoming human clinical senolytic trials.

molecular biology↗