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Buglione, A. E.

Publications and source records attributed to Buglione, A. E..

2 recordsLinked to original sources

Neutrophil arrest in myocardial capillaries drives hypoxia and impairs diastolic function in a mouse model of heart failure with preserved ejection fraction

Impairments in myocardial blood flow have been recognized for decades in human patients with and animal models of heart failure with preserved ejection fraction (HFpEF), but the underlying mechanisms and roles in pathogenesis remain poorly understood. Using intravital cardiac microcopy in a two-hit mouse model of HFpEF that combines high fat diet and inhibition of nitric oxide synthase, we identified an increase in slow or non-flowing neutrophils in capillaries compared to Control mice. In other mouse models of disease (e.g., in the brain of Alzheimers Disease mice), the presence of such stalled neutrophils leads to organ-wide decreases in perfusion and oxygenation. Administration of antibodies against the neutrophil surface protein Ly6G to deplete neutrophils reduced the number of arrested neutrophils in myocardial capillaries, leading to improvements in myocardial hypoxia, diastolic function, and exercise capacity. This study identifies a previously uncharacterized cellular mechanism that explains myocardial blood flow deficits in mouse models of HFpEF, and demonstrates that improving myocardial blood flow improves cardiac function, without necessitating reversal of pathologic remodeling. Restoring myocardial perfusion by decreasing neutrophil arrest in myocardial capillaries may provide a strategy for improving heart function in HFpEF patients in the future.

physiology↗

MousePZT: A Simple, Reliable, Low-Cost Device for Vital Sign Monitoring and Respiratory Gating in Mice Under Anesthesia

Small animal studies in biomedical research often require anesthesia to reduce pain or stress experienced by research animals and to minimize motion artifact for imaging or other measurements. Anesthetized animals should be closely monitored to avoid complications and unintended effects of altered physiology during such procedures. Many currently available monitoring devices can be expensive, invasive, or interfere with experimental design. Here, we present a low-cost device, based on a simple piezoelectric sensor, with a custom circuit and computer software that allows for measurements of both respiratory rate and heart rate in a non-invasive, minimal contact manner. We find the accuracy of the MousePZT device in measuring respiratory and heart rate under anesthesia and with pharmacologically induced changes in heart rate match those of commercial or more invasive systems. We also demonstrate that changes in respiratory rate can precede changes in heart rate associated with alterations in anesthetic depth. Additional circuitry on the device outputs a respiration locked trigger signal for respiratory-gating of imaging or other data acquisition that has high sensitivity and specificity for detecting respiratory cycles. We provide detailed construction documents and all necessary microcontroller and computer software, enabling straightforward adoption of this device.

physiology↗