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Biology subjects

Ploner, C.

Publications and source records attributed to Ploner, C..

2 recordsLinked to original sources

Naloxone as mitochondrial phenotype rescuer in a 3D bioprinted LCHADD/VLCADD model

For patients diagnosed with long-chain 3-hydroxyacyl-CoA dehydrogenase deficiency (LCHADD) or very-long-chain acyl-CoA dehydrogenase deficiency (VLCADD), fasting episodes or high-energy demands remain life threatening. Due to the low incidence, clinical trials for novel LCHADD/VLCADD therapies are limited, and current mouse models recapitulate human symptoms only partially. Here, we report the use of mitochondrial morphology and 3D bioprinted, vascularized tissue models to establish a robust testing platform for dietary-based and experimental treatment approaches. Using this platform, we demonstrated that mitochondrial morphology is strictly regulated by NOX2-driven ROS formation. Treatment of LCHADD/VLCADD-derived fibroblasts with the NOX2-inhibitor naloxone led to the reassembly of mitochondrial structures controlled by DNM1L/MFN2. Using RNA transcriptomics, we identified a pro-fibrotic phenotype in LCHADD and VLCADD patient cells, which impaired vessel formation in fully 3D bioprinted human tissue equivalents. Metabolic supplementation with dietary approaches, which are used in standard therapy, partially improved vascularization. Naloxone induced the strongest improvement, restoring vessel length and network complexity to those of healthy controls, suggesting increased oxidative stress as main driver. Interestingly, naloxone had no effect on healthy fibroblasts, underscoring its safety. Taken together, these findings suggest the opioid antagonist naloxone as a potential rescue medication during LCHADD/VLCADD-driven metabolic crises.

molecular biology↗

Unraveling the YAP1-TGFβ1 axis: a key driver of androgen receptor loss in prostate cancer-associated fibroblasts

Due to their pivotal roles in tumor progression and therapy resistance, cancer-associated fibroblasts (CAF) are considered key therapeutic targets with loss of stromal androgen receptor (AR) a poorly understood hallmark of aggressive prostate cancer (PCa). A paucity of pre-clinical models however has hampered functional studies of CAF heterogeneity. We demonstrate that our newly-generated CAF biobank contains three FAP+-fibroblast subtypes, each with unique molecular and functional traits. Cultures with an early-activated phenotype expressed the highest levels of AR and exhibited AR-dependent growth. Consistently, stromal cells expressing early-activation markers co-expressed nuclear AR in clinical specimens and were enriched in pre-neoplastic lesions/low-grade PCa. Conversely, myofibroblastic CAF (myCAF), which expressed low AR levels in vitro and in vivo and were proliferatively-insensitive to AR signaling modulation, constituted the predominant CAF subpopulation in stromogenic high-grade PCa and castration-resistant LACP9 patient-derived xenografts. Exacerbation of the myCAF state upon castration of LAPC9-bearing hosts underscored these findings. Mechanistically, AR loss in myCAF was driven by an NF{kappa}B-TGF{beta}1-YAP1 axis, whose combined targeting synergistically repressed myofibroblastic hallmarks and impaired autophagic flux, effects that were potentiated by enzalutamide resulting in myCAF cell death. Collectively, these findings provide a mechanistic rationale for adjuvant targeting of the YAP1-TGF{beta} signaling axis to improve patient outcomes.

cancer biology↗