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Biology subjects

Molodij, G.

Publications and source records attributed to Molodij, G..

2 recordsLinked to original sources

De-tensioning of collagen fibers optimizes endometrial receptivity and improves the rate of embryo implantation

Successful embryo implantation within the uterine wall requires intricate endometrial remodeling. Impaired endometrial receptivity, a common cause of infertility, often results from ineffective remodeling processes. Here, we demonstrate that a single dose of human collagenase-1 administered into the mouse uterus enhances embryo implantation rates. Mechanistically, collagenase-1 induces remodeling of the endometrial extracellular matrix (ECM), leading to the degradation of collagen fibers and proteoglycans. This process releases matrix-bound bioactive factors, such as VEGF, which facilitates local vascular permeability and angiogenesis. Furthermore, collagenase-1 treatment increases NK cell infiltration and elevates levels of the cytokine LIF, a key factor in embryo implantation. Remarkably, the overall structural integrity of the uterine tissue remains uncompromised, even in the presence of reduced tension in endometrial collagen fibers. To assess pre-clinical potential, in-uteri application of collagenase-1 successfully rescued implantation in mouse models subjected to heat stress and embryo transfer, conditions known for their adverse impact on implantation rates. Importantly, ex-vivo exposure of human uterine tissue to collagenase-1 induced collagen de-tensioning and the release of VEGF, demonstrating similar processes observed in the mouse settings, and the potential relevance of this treatment to human conditions. Our findings underscore the immense clinical potential and feasibility of collagenase treatment to enhance uterine receptivity for embryo implantation, offering a controlled and minimally invasive intervention. This innovative approach not only demonstrates the potential to enhance efficiency in livestock breeding but, more importantly, signifies a substantial promise in supporting medical interventions for human reproduction in clinical settings.

biochemistry↗

Time-Space Fourier κFormula Filter for Motion Artifacts Compensation during Transcranial Fluorescence Brain Imaging

Intravital imaging of brain vasculature through the intact cranium in vivo is based on the evolution of the fluorescence intensity and provides an ability to characterize various physiological processes in the natural context of cellular resolution. The involuntary motions of the examined subjects often limit in vivo non-invasive functional optical imaging. Conventional imaging diagnostic modalities encounter serious difficulties in correction of artificial motions, associated with the rapid structural variations and fast high dynamics of the intensity values in the collected image sequences, when a common reference cannot be provided. In current report, we introduce an alternative solution that utilizes a Fourier Kappa-Omega filtering approach. We demonstrate that the proposed approach is effective for image stabilization of fast dynamic image sequences. The validation of the Fourier Kappa-Omega filtering was performed on the images obtaining during mouse transcranial brain imaging using fluorescent microscope as well as on the simulated sequences of images. The proposed technique can be used autonomously without supervision and assignation of a reference image.

bioengineering↗