Search bioRxiv⌕ Search

bioRxiv · 10.1101/2025.04.01.646687

The Impact of Age and Sex on Cerebral and Large Artery Stiffness and the Response to Pulse Pressure

Abstract

Vascular aging is characterized by a tandem increase in pulse pressure and large elastic artery stiffness. Greater stiffness of the large arteries leads to elevated pulse pressure transmitted into the cerebral circulation, causing dysfunction. However, little is known in females about age-related stiffening of the arteries and the impacts of high pulse pressure on the cerebral vasculature. To examine the effects of sex and age on the cerebral artery response to pulse pressure, we studied cerebral arteries collected from young and old female and male C57BL/6 mice. Isolated cerebral arteries were exposed ex vivo to static pressure, low pulse pressure, and high pulse pressure. Exposure to high pulse pressure impaired endothelium-dependent dilation in cerebral arteries from young female and male mice, with impairments also occurring in young female cerebral arteries after exposure to low pulse pressure. In contrast, exposure to low or high pulse pressure did not impact cerebral artery endothelium-dependent dilation for old male or female mice. During exposure to high pulse pressure, young females had higher cerebral artery compliance compared with young males and old females. Old mice also had higher cerebral artery passive stiffness and aortic pulse wave velocity compared with young mice. We also found age and sex differences in arterial wall thickness, collagen and elastin content, and matrix metalloproteinase 9 expression. Taken together, young female mice have more compliant cerebral arteries, which are more susceptible to endothelial dysfunction caused by pulse pressure.

Source connections

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

Choi, Y. D., Kapadia, P., Spiegel, J., Cullen, A. E., LaFarga, J., Walker, A. E.. 2025-04-07. The Impact of Age and Sex on Cerebral and Large Artery Stiffness and the Response to Pulse Pressure. https://doi.org/10.1101/2025.04.01.646687

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related preprints

Hummingbird torpor recapitulates key molecular signatures of hibernation without large-scale transcriptomic remodelling

Torpor is a physiological strategy used by which some species conserve energy by lowering metabolic rates and body temperatures. While mammalian hibernation is well-studied, the molecular mechanisms governing the rapid entry into avian torpor remain poorly understood. This study represents the first multi-tissue whole-transcriptomic analysis of torpor entry in an avian system. By combining real-time thermal imaging and respirometry with transcriptomic profiling across seven tissues, we identified the key molecular pathways orchestrating this transition in Anna's hummingbirds (Calypte anna). Our results reveal that avian torpor entry is characterised by a subtle transcriptomic change (<5% of the genome differentially expressed across tissues) compared to mammalian hibernation (10%-60%). Most of these genes are differentially expressed before torpor entry is complete, rather than tracking body temperature linearly. This indicates that active transcriptional reprogramming precedes and potentially drives the transition. Thus, hummingbird torpor entry is not a passive shutdown, but a highly regulated, tissue-specific process. Vital organs, such as the heart and lungs, remain transcriptionally stable to maintain essential functions, while the liver and gut exhibit extensive metabolic rewiring. We found evidence of global transcriptional and translational suppression, and cell-cycle arrest: the three major contributors to cellular energy budgets. We hypothesise that avian torpor entry is orchestrated through an arrest of apoptosis, a metabolic switch from carbohydrate to lipid utilisation, coupled with alterations in alternative splicing and circadian rhythm regulation. Finally, the counterintuitive upregulation of genes involved in mitochondrial metabolism suggests a preparation for rapid arousal despite the depressed metabolic state.

physiology↗

Thoracoabdominal pressure transmission during prone and supine cardiopulmonary resuscitation in fresh-frozen human cadavers

Background: Prone cardiopulmonary resuscitation (CPR) may be necessary when turning a prone patient supine would delay chest compressions. Although prone compressions can generate arterial pressures comparable with or greater than supine CPR, the pathway of pressure transmission is uncertain. We examined synchronized intrathoracic, intra-abdominal, and central arterial pressures in both supine and prone positions. Methods: Two thawed fresh-frozen adult cadavers underwent three, 2-minute mechanical CPR trials per position in a counterbalanced crossover sequence. Solid-state catheters recorded pleural, peritoneal, and central arterial pressures simultaneously. Trial-level outcomes included peak pressure, mean pressure, pressure-time area, and the mean peritoneal-to-pleural pressure gradient. Exploratory fixed-effects models included position, cadaver, and their interaction. Results: Prone CPR increased peak intrathoracic pressure by 7.04 mmHg, peak intra-abdominal pressure by 21.69 mmHg, and peak arterial pressure by 15.40 mmHg. Mean intra-abdominal and arterial pressures increased by 16.22 and 9.90 mmHg, respectively. The mean peritoneal-to-pleural gradient reversed direction from -8.46 mmHg supine to 4.85 mmHg prone. Intrathoracic pressure-time area increased 3.4-fold, from 1.62 to 5.46 mmHg{middle dot}s, and arterial pressure-time area increased 2.2-fold, from 2.96 to 6.42 mmHg{middle dot}s. Conclusions: Compared to supine, prone mechanical CPR generated higher arterial pressures and reversed the pressure relationship across the thoracoabdominal boundary in both cadavers. Higher abdominal pressure coincided with a larger intrathoracic pressure-time area, a pattern compatible with reduced caudal pressure dissipation.

physiology↗

Genetic Variation, Iron Status, and FGF23 Signaling Converge to Regulate Renal Calcium Buffering in Sickle Cell Disease

Sickle cell disease (SCD) causes heterogeneous mineral imbalances including variable degrees of hypocalcemia. The kidney controls systemic calcium by reabsorbing calcium from the glomerular filtrate via paracellular transport and transcellular transport in the nephron tubules, yet it is unknown whether these processes are modulated by genetic or environmental factors or disrupted in SCD. Using SCD mouse models and single-cell multiomics, we identify the distal convoluted tubule (DCT) as the nephron segment most susceptible to calcium reabsorption dysfunction in SCD, mainly via reduction of calcium buffer protein calbindin 1 (CALB1). We show that CALB1 and its encoding mRNA are decreased in DCT cells in SCD, alongside decreased Klotho (KL)-dependent fibroblast growth factor (FGF) 23 signaling and intracellular calcium signaling. Dietary iron restriction reduces CALB1, KL, and calcium exporter SLC8A1 levels in SCD kidneys. Loss of CALB1 shifts DCT cells toward energy-inefficient glycolysis with the metabolite 2,3-diphosphoglycerate impairing KL-dependent FGF23 signaling to create a feed-forward loop suppressing calcium reabsorption. Analysis of gene expression and protein quantitative trait loci data from kidneys of genetically diverse mice revealed that Calb1 expression levels are highly heritable and co-regulated with Slc8a1, identifying a genetic axis that dictates differential capacities for calcium buffering and trafficking toward blood in the kidney. Together, these findings support a model in which genetic variation, dietary iron status, and FGF23 signaling converge on DCT calcium buffering to reduce renal calcium reabsorption in the SCD kidney. This points to personalized, genotype- and iron-dependent strategies for managing mineral metabolism in SCD patients.

physiology↗