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Updated: Nov 1, 2025

Modeling the Functional Network for Spatial Navigation in the Human Brain
Published on: October 13, 2023
Disrupted Network Topology Contributed to Spatial Navigation Impairment in Patients With Mild Cognitive Impairment
Weiping Li1, Hui Zhao2, Zhao Qing1
1Department of Radiology, The Affiliated Drum Tower Hospital of Nanjing University Medical School, Nanjing, China.
Abstract:
Impairment in spatial navigation (SN) and structural network topology is not limited to patients with Alzheimer's disease (AD) dementia and can be detected earlier in patients with mild cognitive impairment (MCI). We recruited 32 MCI patients (65.91 ± 11.33 years old) and 28 normal cognition patients (NC; 69.68 ± 10.79 years old), all of whom underwent a computer-based battery of SN tests evaluating egocentric, allocentric, and mixed SN strategies and diffusion-weighted and T1-weighted Magnetic Resonance Imaging (MRI). To evaluate the topological features of the structural connectivity network, we calculated its measures such as the global efficiency, local efficiency, clustering coefficient, and shortest path length with GRETNA. We determined the correlation between SN accuracy and network topological properties. Compared to NC, MCI subjects demonstrated a lower egocentric navigation accuracy. Compared with NC, MCI subjects showed significantly decreased clustering coefficients in the left middle frontal gyrus, right rectus, right superior parietal gyrus, and right inferior parietal gyrus and decreased shortest path length in the left paracentral lobule. We observed significant positive correlations of the shortest path length in the left paracentral lobule with both the mixed allocentric-egocentric and the allocentric accuracy measured by the average total errors. A decreased clustering coefficient in the right inferior parietal gyrus was associated with a larger allocentric navigation error. White matter hyperintensities (WMH) did not affect the correlation between network properties and SN accuracy. This study demonstrated that structural connectivity network abnormalities, especially in the frontal and parietal gyri, are associated with a lower SN accuracy, independently of WMH, providing a new insight into the brain mechanisms associated with SN impairment in MCI.
Insights
Mild cognitive impairment (MCI) patients show impaired spatial navigation and altered brain network topology, particularly in frontal and parietal regions. These changes are linked to navigation accuracy, offering insights into early Alzheimer's disease mechanisms.
Area of Science:
- Neuroscience
- Cognitive Neurology
- Neuroimaging
Background:
- Spatial navigation (SN) deficits and altered structural network topology are early indicators in Alzheimer's disease (AD) and mild cognitive impairment (MCI).
- Understanding these changes in MCI is crucial for early detection and intervention strategies.
Purpose of the Study:
- To investigate the relationship between spatial navigation accuracy and structural brain network topology in individuals with mild cognitive impairment (MCI).
- To identify specific brain regions and network properties associated with spatial navigation deficits in MCI.
Main Methods:
- Recruited 32 MCI patients and 28 normal cognition (NC) controls.
- Administered a battery of computer-based SN tests assessing egocentric, allocentric, and mixed strategies.
- Utilized diffusion-weighted and T1-weighted MRI to analyze structural connectivity network topology using GRETNA software.
Main Results:
- MCI subjects exhibited lower egocentric navigation accuracy compared to NC.
- MCI patients showed decreased clustering coefficients in frontal and parietal regions (left middle frontal gyrus, right rectus, right superior/inferior parietal gyri).
- Reduced shortest path length in the left paracentral lobule was observed in MCI, correlating positively with allocentric and mixed SN accuracy.
Conclusions:
- Structural connectivity abnormalities in frontal and parietal brain regions are associated with impaired spatial navigation in MCI.
- These findings provide insights into the neural mechanisms underlying spatial navigation deficits in the early stages of cognitive decline.
- The observed network alterations are independent of white matter hyperintensities (WMH).

