Authors :
Usha Topalkatti; Preethika Murugesan; Edla Vamshi Krishna; Jhansi Mani Mahadeva
Volume/Issue :
Volume 11 - 2026, Issue 8 - August
Google Scholar :
https://tinyurl.com/22pj3axe
Scribd :
https://tinyurl.com/2p8x7uhs
DOI :
https://doi.org/10.38124/ijisrt/26aug635
Note : A published paper may take 4-5
working days from the publication date to appear in PlumX Metrics, Semantic Scholar, and
ResearchGate.
Abstract :
Background
Modern neurosurgery increasingly relies on individualized neuroimaging to maximize lesion resection while preserving
neurological function. Conventional magnetic resonance imaging (MRI) provides detailed anatomical information but does
not fully characterize cortical function, white-matter connectivity, or anatomical changes occurring during surgery.
Multimodal neuroimaging integrates complementary structural, functional, and connectivity information and can therefore
support more individualized image-guided surgical planning.
Objective
This narrative review examines the current applications of multimodal neuroimaging in image-guided neurosurgery,
focusing on structural MRI, functional MRI (fMRI), diffusion tensor imaging (DTI) and tractography, neuronavigation,
intraoperative MRI, intraoperative ultrasound, and approaches for addressing intraoperative brain shift. Emerging
computational and artificial intelligence (AI)-assisted approaches are also discussed.
Methods
A narrative literature search was conducted using PubMed/MEDLINE. Additional relevant publications were
identified through reference-list screening of selected reviews and primary studies. Search concepts included multimodal
neuroimaging, image-guided neurosurgery, functional MRI, diffusion tensor imaging, tractography, neuronavigation,
intraoperative MRI, intraoperative ultrasound, brain shift, functional brain mapping, and brain tumor surgery. Clinical
studies, systematic reviews, meta-analyses, and methodological literature relevant to these topics were considered. Because
this was a narrative review, no formal meta-analysis or quantitative risk-of-bias assessment was performed.
Results
Structural MRI remains the anatomical foundation of image-guided neurosurgery. Functional MRI can provide noninvasive information regarding cortical networks, while diffusion imaging and tractography can characterize major whitematter pathways. Integration of these datasets into neuronavigation can assist individualized surgical planning, particularly
for lesions involving eloquent cortex or critical subcortical tracts. Intraoperative MRI can update navigation and identify
residual tumor after anatomical deformation, whereas intraoperative ultrasound provides real-time imaging with lower
infrastructure requirements. Important limitations include neurovascular uncoupling, functional reorganization,
tractography uncertainty, registration errors, brain shift, cost, workflow complexity, and limited prospective validation.
Conclusion
Multimodal neuroimaging provides a clinically valuable framework for precision image-guided neurosurgery by
integrating anatomical, functional, and connectivity information across the surgical pathway. Future advances should
prioritize reliable multimodal integration, real-time intraoperative updating, standardized imaging protocols, interpretable
computational tools, and prospective evaluation of patient-centered outcomes.
Keywords :
Multimodal Neuroimaging; Image-Guided Neurosurgery; Functional MRI; Diffusion Tensor Imaging; Tractography; Neuronavigation; Intraoperative MRI; Intraoperative Ultrasound; Brain Tumor Surgery; Functional Brain Mapping.
References :
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Background
Modern neurosurgery increasingly relies on individualized neuroimaging to maximize lesion resection while preserving
neurological function. Conventional magnetic resonance imaging (MRI) provides detailed anatomical information but does
not fully characterize cortical function, white-matter connectivity, or anatomical changes occurring during surgery.
Multimodal neuroimaging integrates complementary structural, functional, and connectivity information and can therefore
support more individualized image-guided surgical planning.
Objective
This narrative review examines the current applications of multimodal neuroimaging in image-guided neurosurgery,
focusing on structural MRI, functional MRI (fMRI), diffusion tensor imaging (DTI) and tractography, neuronavigation,
intraoperative MRI, intraoperative ultrasound, and approaches for addressing intraoperative brain shift. Emerging
computational and artificial intelligence (AI)-assisted approaches are also discussed.
Methods
A narrative literature search was conducted using PubMed/MEDLINE. Additional relevant publications were
identified through reference-list screening of selected reviews and primary studies. Search concepts included multimodal
neuroimaging, image-guided neurosurgery, functional MRI, diffusion tensor imaging, tractography, neuronavigation,
intraoperative MRI, intraoperative ultrasound, brain shift, functional brain mapping, and brain tumor surgery. Clinical
studies, systematic reviews, meta-analyses, and methodological literature relevant to these topics were considered. Because
this was a narrative review, no formal meta-analysis or quantitative risk-of-bias assessment was performed.
Results
Structural MRI remains the anatomical foundation of image-guided neurosurgery. Functional MRI can provide noninvasive information regarding cortical networks, while diffusion imaging and tractography can characterize major whitematter pathways. Integration of these datasets into neuronavigation can assist individualized surgical planning, particularly
for lesions involving eloquent cortex or critical subcortical tracts. Intraoperative MRI can update navigation and identify
residual tumor after anatomical deformation, whereas intraoperative ultrasound provides real-time imaging with lower
infrastructure requirements. Important limitations include neurovascular uncoupling, functional reorganization,
tractography uncertainty, registration errors, brain shift, cost, workflow complexity, and limited prospective validation.
Conclusion
Multimodal neuroimaging provides a clinically valuable framework for precision image-guided neurosurgery by
integrating anatomical, functional, and connectivity information across the surgical pathway. Future advances should
prioritize reliable multimodal integration, real-time intraoperative updating, standardized imaging protocols, interpretable
computational tools, and prospective evaluation of patient-centered outcomes.
Keywords :
Multimodal Neuroimaging; Image-Guided Neurosurgery; Functional MRI; Diffusion Tensor Imaging; Tractography; Neuronavigation; Intraoperative MRI; Intraoperative Ultrasound; Brain Tumor Surgery; Functional Brain Mapping.