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Blankemeyer, E.

Publications and source records attributed to Blankemeyer, E..

2 recordsLinked to original sources

Linking coronary microvascular structure and function in preclinical models of coronary microvascular disease

Despite growing awareness of the importance of the coronary microvasculature in cardiac health and disease, Coronary Microvascular Disease (CMVD) remains poorly understood, underdiagnosed, and without targeted therapies. Preclinical models and quantitative tools to measure CMVD are needed. Here, we use two novel quantitative methods to assess coronary microvascular structure (multi-fractal spectrum analysis) and function (Single Photon Emission Computed Tomography (SPECT)-based intramyocardial blood volume (IMBV) imaging) in mouse models of CMVD. Change in IMBV ({bigtriangleup}IMBV), which serves as a quantitative measure of vasodilatory capacity or microvascular function, was reduced with aging, driven by a significant decrease in female mice. Male mice on ApoE-/- background, fed a high-fat diet (HFD) for 6 months, or both had significantly reduced {bigtriangleup}IMBV. We used immunofluorescence to assess both traditional capillary density and global branching structure and vessel heterogeneity using multifractal spectrum analysis. Both were significantly reduced in all groups, and linear regression modeling showed that they were independently associated with {bigtriangleup}IMBV. Finally, we used {bigtriangleup}IMBV to assess the effects of widely used control Adeno-associated viral (AAV) vectors on coronary microvascular function. AAV-overexpression of GFP did not affect function, but Cre-recombinase compromised coronary microvascular structure and function by 16 weeks. In summary, quantitative assessments of coronary microvascular structure and function highlight changes consistent with CMVD seen with aging, female sex, and metabolic insults. Functional changes are partially driven, but not fully defined, by changes in the underlying structure, highlighting the important and incomplete link between structure and function.

physiology↗

Residual Breast Cancer Cells Co-opt SOX5-driven Endochondral Ossification to Maintain Dormancy

Recurrent breast cancer accounts for most disease-associated mortality and can develop decades after primary tumor therapy. Recurrences arise from residual tumor cells (RTCs) that can evade therapy in a dormant state, however the mechanisms are poorly understood. CRISPR-Cas9 screening identified the transcription factors SOX5/6 as functional regulators of tumor recurrence. Loss of SOX5 accelerated recurrence and promoted escape from dormancy. Remarkably, SOX5 drove dormant RTCs to adopt a cartilage-dependent bone development program, termed endochondral ossification, that was confirmed by [18F]NaF-PET imaging and reversed in recurrent tumors escaping dormancy. In patients, osteochondrogenic gene expression in primary breast cancers or residual disease post-neoadjuvant therapy predicted improved recurrence-free survival. These findings suggest that SOX5-dependent mesodermal transdifferentiation constitutes an adaptive mechanism that prevents recurrence by reinforcing tumor cell dormancy.

cancer biology↗