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Published in: Child's Nervous System 12/2017

01-12-2017 | Original Paper

Cognitive performance change of pediatric patients after conducting frontal transcortical approach to treat lateral ventricular tumor

Authors: Wanchun Zhu, Jintao He, Xiang Li, Lei Wang, Zheng Lu, Chunde Li, Jian Gong

Published in: Child's Nervous System | Issue 12/2017

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Abstract

Objective

Applying frontal transcortical approach to treat lateral ventricular tumor is one of the most common neurosurgical manipulations. The frontal transcortical approach generally passes through the middle frontal gyrus in which there is no major function involved in the traditional sense. However, current researches have suggested that the prefrontal cortex (PFC) plays a central role in the whole network of the brain cognitive frame. In addition, cognitive function is crucial in growing and developmental stages and essential for the educational achievement, especially for children. Based on this, the authors in this study analyzed cognitive performance change of pediatric patients who had accepted frontal transcortical operation in 1-year follow-up and discussed the possibility of higher cognitive functions of the damaged region.

Patients and methods

In this single-center study, 15 pediatric patients (median age at surgery, 9.21 years old; range, 6.42–14.17 years old) who had been treated with frontal transcortical approach for lateral ventricular tumors were selected as research objects. The cognitive function assessment was conducting by adopting the revised Wechsler Intelligence Scale for Children-fourth edition (WISC-IV). In addition, the resting-state functional magnetic resonance imaging (resting-state fMRI) and diffusion tensor imaging (DTI) were carried out to measure the level of co-activation and to explore the functional connectivity between the brain regions at the preoperative period and 1-year follow-up after surgery.

Results

GTR was achieved in all patients, and all patients were in good condition after surgery. Compared to the preoperative indices of WISC-IV, patients generally had a lower level of indices of the WISC-IV after surgery, for example, the total IQ was declined to M = 83.60, SD = 9.500 from M = 95.33, SD = 13.844 within 1 year convalescence. The data of perceptual reasoning (t = − 2.392, p = 0.016), processing speed (t = − 2.121, p = 0.033), and total IQ (t = −2.638, p = 0.008) before and after surgery showed statistically significance. Furthermore, decreased functional connectivity and disconnected neural fasciculus were revealed by the size of activation regions in the resting-state fMRI and the reconstruction of three-dimensional images of white matter tracts in the DTI pre- and post-operative.

Conclusion

The PFC was not regarded as a major functional area in the past, but the researches at present have shown that the interactions between PFC and other posterior brain regions serve as the basis of the higher cognitive functions. According to imaging manifestations and WISC-IV tasks in this paper, we found that the PFC injury caused by the frontal transcortical approach led to damaged brain structure and impaired the performance of cognitive function. On this basis, we detected that the perceptual reasoning and processing speed maybe have more extensive connections with the middle frontal gyrus.
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Metadata
Title
Cognitive performance change of pediatric patients after conducting frontal transcortical approach to treat lateral ventricular tumor
Authors
Wanchun Zhu
Jintao He
Xiang Li
Lei Wang
Zheng Lu
Chunde Li
Jian Gong
Publication date
01-12-2017
Publisher
Springer Berlin Heidelberg
Published in
Child's Nervous System / Issue 12/2017
Print ISSN: 0256-7040
Electronic ISSN: 1433-0350
DOI
https://doi.org/10.1007/s00381-017-3604-x

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