Altered functional brain networks in amnestic mild cognitive impairment: a resting-state fMRI study
Suping Cai1, Tao Chong1, Yanlin Peng1
1School of Life Science and Technology, Xidian University, Xi'an, Shaanxi, 710126, China.
Abstract:
Amnestic mild cognitive impairment MCI (aMCI) has a high progression to Alzheimer's disease (AD). Recently, resting-state functional MRI (RS-fMRI) has been increasingly utilized in studying the pathogenesis of aMCI, especially in resting-state networks (RSNs). In the current study, we aimed to explore abnormal RSNs related to memory deficits in aMCI patients compared to the aged-matched healthy control group using RS-fMRI techniques. Firstly, we used ALFF (amplitude of low-frequency fluctuation) method to define the regions of interest (ROIs) which exhibited significant changes in aMCI compared with the control group. Then, we divided these ROIs into different networks in line with prior studies. The aim of this study is to explore the functional connectivity between these ROIs within networks and also to investigate the connectivity between networks. Comparing aMCI to the control group, our results showed that 1) the hippocampus (HIPP) had decreased FC with the medial prefrontal cortex (mPFC) and inferior parietal lobe (IPL), and the mPFC showed increased connectivity to IPL in the default mode network; 2) the thalamus showed decreased FC with the putamen and HIPP, and the HIPP showed increased connectivity to the putamen in the limbic system; 3) the supplementary motor area had decreased FC with the middle temporal gyrus and increased FC with the superior parietal lobe in the sensorimotor network; 4) increased connectivity between the lingual gyrus and middle occipital gyrus in the visual network; and 5) the DMN has reduced inter-network connectivities with the SMN and VN. These findings indicated that functional brain networks involved in cognition such as episodic memory, sensorimotor and visual cognition in aMCI were altered, and provided a new sight in understanding the important subtype of aMCI.
Insights
Amnestic mild cognitive impairment (aMCI) shows altered brain network connectivity, particularly in memory-related regions. These functional changes in resting-state networks may offer insights into Alzheimer's disease progression.
Area of Science:
- Neuroimaging
- Cognitive Neuroscience
- Neurology
Background:
- Amnestic mild cognitive impairment (aMCI) is a precursor to Alzheimer's disease (AD).
- Resting-state functional MRI (RS-fMRI) is a key tool for understanding aMCI pathogenesis, especially resting-state networks (RSNs).
Purpose of the Study:
- To investigate aberrant RSNs associated with memory deficits in aMCI patients compared to healthy controls.
- To explore functional connectivity within and between RSNs in aMCI using RS-fMRI.
Main Methods:
- Amplitude of Low-Frequency Fluctuation (ALFF) was used to identify regions of interest (ROIs) with significant changes in aMCI.
- ROIs were categorized into distinct networks based on prior research.
- Functional connectivity (FC) was analyzed within and between these identified networks.
Main Results:
- Decreased FC was observed between the hippocampus (HIPP) and medial prefrontal cortex (mPFC)/inferior parietal lobe (IPL) within the default mode network (DMN).
- Altered connectivity was found in the limbic, sensorimotor, and visual networks, including changes involving the thalamus, putamen, and supplementary motor area.
- Reduced inter-network connectivity between the DMN, sensorimotor network (SMN), and visual network (VN) was detected in aMCI patients.
Conclusions:
- Functional brain networks crucial for episodic memory, sensorimotor, and visual cognition are altered in aMCI.
- These findings provide novel insights into the neural underpinnings of aMCI, a significant subtype of cognitive impairment.
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