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Biology subjects

Melnikova, E.

Publications and source records attributed to Melnikova, E..

2 recordsLinked to original sources

Hidden Complexity of Pediatric Platelet Disorders: Functional Diversity and Unexpected Hypercoagulable Phenotypes

Pediatric platelet disorders are commonly classified according to specific structural or functional abnormalities, yet it remains unclear how well these diagnoses capture overall hemostatic phenotype. Here, we combined quantitative single-cell platelet measurements with spatially resolved plasma clotting analysis to characterize pediatric patients with dense granule deficiency, platelet function defects, immune thrombocytopenia, and other inherited platelet disorders. Quantitative fluorescence microscopy revealed reduced dense granule abundance not only in dense granule deficiency but also in several patients from other diagnostic groups. Measurements of platelet adhesion, spreading, and calcium signaling identified substantial functional diversity, with individual patients exhibiting distinct combinations of abnormalities that were not predicted by diagnostic category. Unexpectedly, plasma clotting analysis frequently revealed hypercoagulable behavior, including accelerated fibrin clot growth and spontaneous fibrin formation, despite clinical diagnoses associated with platelet-related bleeding disorders. Hypercoagulable phenotypes occurred across multiple diagnostic groups and did not show a simple relationship with platelet functional abnormalities. Together, these findings reveal previously unrecognized complexity in pediatric platelet disorders and suggest that platelet and plasma pathways contribute independently to hemostatic variability. These findings argue that pediatric platelet disorders are best viewed as multidimensional functional phenotypes rather than isolated platelet defects and motivate broader integration of platelet and coagulation measurements in future studies.

cell biology↗

Microvascular pulsatility of the ageing brain and confounding effects of anaesthesia

Microvascular pulsatility in the brain is crucial for sustaining the delicate balance between the brains metabolic demands and blood supply, as it affects nutrient exchange, waste removal and blood-brain barrier permeability. Abnormal pulsatility, associated with ageing or vascular risk factors, may impair the clearance of metabolic waste or contribute to conditions such as cerebral small vessel disease, ultimately leading to dementia and increasing the risk of stroke. In the present study, we introduce a new approach for robust full-field characterization of microvascular pulsatility and apply it to study cerebral perfusion and pulsatility across nearly the entire lifespan of awake and anaesthetized C57BL/6 mice. Our findings in awake animals reveal remarkably stable perfusion and pulsatility from 18 to 81 weeks, with pulsatility starting to change only in the final weeks of observation. In contrast, measurements taken under anaesthesia display a range of age-dependent and age-independent changes. We show that isoflurane affects the perfusion in an age-dependent manner, and both isoflurane and ketamine-xylazine, despite their distinct mechanisms, double the perfusion pulsatility and affect vascular diameter pulsatility in a complex manner, highlighting a previously overlooked detrimental effect of anaesthesia on assessing brain function.

physiology↗