Measurement of CSF flow and brain motion in Chiari malformation type I subjects undergoing posterior fossa decompression surgery

J Neurosurg 143:13–23, 2025

Advanced MRI techniques show that in Chiari malformation type I, presurgical CSF flow and brain motion measurements better predict improvements after posterior fossa decompression surgery than traditional tonsillar descent metrics, potentially enabling more accurate identification of patients likely to benefit from surgery.

• Chiari malformation type I (CM-I) is defined by ≥5 mm cerebellar tonsil herniation through the foramen magnum, but tonsillar descent does not correlate well with symptom severity or surgical outcome.

• Posterior fossa decompression (PFD) surgery improves symptoms in ~75% of symptomatic CM-I patients, but carries risks, making optimal patient selection important.

• This study used advanced MRI (phase-contrast for CSF flow and DENSE for brain motion) to evaluate 108 CM-I patients, 61 of whom had PFD surgery.

• After PFD, CSF stroke volume increased by 28.9%, brainstem motion decreased by 17.3%, and cerebellar motion decreased by 45.2%.

• Improvements in CSF flow and brain motion after surgery were better predicted by presurgical CSF flow and brain motion, not by the amount of tonsillar descent.

• Presurgical dynamic measures (CSF flow, brain motion) are more informative for predicting surgical benefit than conventional anatomical metrics.

• These quantitative imaging assessments may help identify which patients will benefit most from surgery, improving patient care.

Cerebellar and hindbrain motion in Chiari malformation with and without syringomyelia

Cerebellar and hindbrain motion in Chiari malformation with and without syringomyelia

J Neurosurg Spine 24:546–555, 2016

The pathogenesis of syringomyelia associated with Chiari malformation type I (CM-I) is unclear. Theories of pathogenesis suggest the cerebellar tonsils may obstruct CSF flow or alter pressure gradients, or their motion might act as a piston to increase CSF pressure in the spinal subarachnoid space. This study was performed to measure cerebellar tonsillar and hindbrain motion in CM-I and assess the potential contributions to syrinx formation.

Methods Sixty-four CM-I patients and 25 controls were retrospectively selected from a clinical database, and all subjects had undergone cardiac-gated cine balanced fast-field echo MRI. There were a total of 36 preoperative CM-I scans, which consisted of 15 patients with and 21 patients without syringomyelia. Nineteen patients underwent paired pre- and postoperative imaging. Anteroposterior (AP) and superoinferior (SI) movements of the tip of the cerebellar tonsils, obex, fastigium of the fourth ventricle, pontomedullary junction, and cervicomedullary junction were measured. The distance between the fastigium and tip of the tonsils was used to calculate tonsillar tissue strain.

Results CM-I patients had significantly greater cerebellar tonsillar motion in both the AP and SI directions than controls (AP +0.34 mm [+136%], p < 0.001; SI +0.49 mm [+163%], p < 0.001). This motion decreased after posterior fossa decompression (AP -0.20 mm [-33%], p = 0.001; SI -0.29 mm [-36%]; p < 0.001), but remained elevated above control levels (AP +56%, p = 0.021; SI +67%, p = 0.015). Similar trends were seen for all other tracked landmarks. There were no significant differences in the magnitude or timing of motion throughout the hindbrain between CM-I patients with and without syringomyelia. Increased tonsillar tissue strain correlated with Valsalva headaches (p = 0.03).

Conclusions Cerebellar tonsillar motion may be a potential marker of CM-I and may have use in tailoring surgical procedures. The lack of association with syringomyelia suggests that tonsillar motion alone is not the driver of syrinx formation. Tonsillar tissue strain may play a part in the pathophysiology of Valsalva headaches.

Brain surface motion imaging to predict adhesions between meningiomas and the brain surface

Neuroradiology (2010) 52:1003–1010. DOI 10.1007/s00234-010-0671-z

“Brain surface motion imaging” (BSMI) is the subtraction of pulse-gated, 3D, heavily T2-weighted image of two different phases of cerebrospinal fluid (CSF) pulsation, which enables the assessment of the dynamics of brain surface pulsatile motion. The purpose of this study was to evaluate the feasibility of this imaging method for providing presurgical information about adhesions between meningiomas and the brain surface.

Methods Eighteen cases with surgically resected meningioma in whom BSMI was presurgically obtained were studied. BSMI consisted of two sets of pulse-gated, 3D, heavily T2-weighted, fast spin echo scans. Images of the systolic phase and the diastolic phase were obtained, and subtraction was performed with 3D motion correction. We analyzed the presence of band-like texture surrounding the tumor and judged the degree of motion discrepancy as “total,” “partial,” or “none.” The correlation between BSMI and surgical findings was evaluated. For cases with partial adhesions, agreements in the locations of the adhesions were also evaluated.

Results On presurgical BSMI, no motion discrepancy was seen in eight cases, partial in six cases, and total in four cases. These presurgical predictions about adhesions and surgical findings agreed in 13 cases (72.2%). The locations of adhesions agreed in five of six cases with partial adhesions.

Conclusion In the current study, BSMI could predict brain and meningioma adhesions correctly in 72.2% of cases, and adhesion location could also be predicted. This imaging method appears to provide presurgical information about brain/meningioma adhesions.