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Salinas, C. G.

Publications and source records attributed to Salinas, C. G..

2 recordsLinked to original sources

Deep Learning-Enhanced Light Sheet Microscopy Unveils Semaglutide Impact on Cardiac Fibrosis

BackgroundExtensive preclinical research aims to develop novel therapeutics for myocardial fibrosis (MF), a condition marked by collagen accumulation that impairs cardiac function. MF is particularly relevant in heart failure with preserved ejection fraction (HFpEF), a growing clinical challenge with limited treatment options. However, current methods for quantifying MF in mouse models struggle to accurately capture its heterogeneous regional distribution, creating a significant barrier to reliably assessing the efficacy of therapeutics. PurposeTo develop a whole-heart fibrosis imaging and deep learning (DL)-based quantification method and validate the workflow by assessing the efficacy of a glucagon-like peptide-1 receptor (GLP-1R) agonist in mouse HFpEF model. Experimental ApproachBy utilizing a fluorescent collagen-labelling dye, tissue clearing and 3D light sheet microscopy, we developed a high-throughput imaging platform for MF. We established DL framework to quantify perivascular and replacement fibrosis, as well as hypertrophy, in 17 left ventricular (LV) segments. The antifibrotic effects of the GLP-1R agonist semaglutide were evaluated in the db/db UNx-ReninAAV mouse model, which exhibits diabetes, kidney failure, obesity, and hypertension. Key ResultsWhole-heart 3D light sheet microscopy, combined with artificial intelligence, enables micrometer-resolution analysis of MF distribution in rodents. This approach allows for detailed characterization of distinct regional fibrosis patterns. Chronic semaglutide treatment significantly reduced LV hypertrophy and perivascular fibrosis but had no significant effect on replacement fibrosis. Conclusions and ImplicationsThe established 3D imaging and quantification approach provides a powerful tool for evaluating the therapeutic efficacy of antifibrotic compounds and studying the cellular and pathological mechanisms underlying cardiovascular diseases.

pathology↗

Transferrin receptor-binding blood-brain barrier shuttle enhances brain delivery and efficacy of a therapeutic anti-Abeta antibody

Transferrin receptor-1 (TfR1) transcytosis-mediated delivery of therapeutic monoclonal antibodies across the blood-brain barrier (BBB) is a promising concept in drug development for CNS disorders. We sought to investigate brain delivery and efficacy of Aducanumab (Adu), an anti-A{beta} antibody, when fused to a mouse TfR1-binding Fab fragment as BBB shuttle (TfR1-Adu). Automated 3D light sheet fluorescence imaging coupled with computational analysis was applied to evaluate drug IgG distribution and plaque counts throughout the intact brain of transgenic APP/PS1 mice. TfR1-Adu demonstrated enhanced brain delivery and more homogeneous distribution after both acute and chronic dosing in transgenic APP/PS1 mice compared with unmodified Adu. Also, importantly, only unmodified Adu showed perivascular labelling. While high-dose Adu promoted A{beta} plaque depletion in multiple brain regions, similar plaque-clearing efficacy was achieved with a five-fold lower dose of TfR1-Adu. Furthermore, low-dose TfR1-Adu demonstrated greater capacity to reduce congophilic plaque burden. Collectively, these observations strongly support the applicability of TfR1-enabled BBB shuttle strategies to improve brain delivery and plaque-clearing efficacy while mitigating the risk of vascular-associated amyloid-related imaging abnormalities (ARIA) adverse effects associated with current A{beta} immunotherapeutics.

neuroscience↗