Related Experiment Video
Updated: Jan 16, 2026

3D Modeling of the Lateral Ventricles and Histological Characterization of Periventricular Tissue in Humans and Mouse
Published on: May 19, 2015
Relationships Between Lateral Ventricle Size, Cerebrospinal Fluid Dynamics, and Aqueductal Resistance in Young
Pan Liu1,2, Jiachen Xie3, Kimi Owashi1,2
1Medical Image Processing Department, CHU Amiens-Picardie University Hospital, Amiens, France.
Background:
Ventricular enlargement and abnormal cerebrospinal fluid (CSF) circulation are closely associated in communicating hydrocephalus (NPH), yet their causal relationship remains unclear. Studying healthy populations may help clarify these mechanisms. Existing metrics for CSF dynamics and ventricular morphology are limited by physiological variability such as heart rate and brain size, and aqueductal resistance has been little studied in healthy cohorts.
Purpose:
To quantify aqueductal resistance and two ratio-based indices-the CSF stroke volume ratio of the aqueduct to the cervical region (Ratio-SV) and the lateral ventricle to total brain area ratio (Ratio-Area)-in a healthy population, and to examine their interrelationships.
Study Type:
Prospective.
Population:
34 healthy young adults (17 female, 17 male; age, 25.2 ± 3.9 years old); 4 NPH patients (2 female, 2 male; age, 50-80 years old).
Field Strength/Sequence:
3 T MRI with transverse 3D T1-weighted gradient echo, sagittal 3D Balanced Fast Field Echo (BFFE; gradient echo), and 2D CINE Phase Contrast (CINE-PC; gradient echo) sequences.
Assessment:
Aqueductal resistance was measured on BFFE, Ratio-Area on T1-weighted images, and Ratio-SV on CINE-PC. Sex differences were also examined.
Statistical Tests:
Wilcoxon test was used for group comparisons, and Spearman's correlation for associations among parameters, with p < 0.05 considered significant.
Results:
In healthy adults, mean aqueductal resistance was 72 ± 42 mPa s/mm3, Ratio-SV 6.0% ± 2.3% and Ratio-Area 4.5% ± 1.6%. Males exhibited a significantly lower Ratio-Area compared to females (3.9% ± 1.3% vs. 5.2% ± 1.7%). Ratio-SV was unaffected by the cardiac cycle. Aqueductal resistance showed a strong negative correlation with Ratio-SV (r = -0.65) but showed no significant correlation with Ratio-Area (r = -0.27). Ratio-SV and Ratio-Area were also uncorrelated (r = 0.08).
Data Conclusion:
Ratio-based metrics provide useful parameters for evaluating both ventricular morphology and CSF dynamics by reducing the influence of physiological variations. Combined with aqueductal resistance, these baseline data in healthy adults may contribute to a better understanding of the pathophysiology of NPH.
Evidence Level:
2.
Technical Efficacy:
Stage 1.
Related Concept Videos
Anatomy of the Brain: Ventricles
Cerebrospinal Fluid
CSF Production
CSF is produced mainly in the choroid plexus, a network of capillaries and ependymal cells located within the ventricular system of the brain....
Regulation of Stroke Volume
Preload refers to the degree of stretch on the heart before it contracts. It's analogous to the stretching of a rubber band; the more it's stretched, the more forcefully it snaps back. This concept is encapsulated in the Frank-Starling law of the...
Pressure Relationships in Thoracic Cavity
Breathing Mechanisms
Both intra-alveolar and intrapleural pressures rely on specific lung properties. The ability to breathe—allowing air to enter the lungs...
Vascular Resistance
The primary determinants of vascular resistance are vessel diameter, blood viscosity, and vessel length. Among these, vessel diameter plays the most significant role due to the fourth power relationship described by...
Arteries and Arterioles

