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Advanced Diffusion Imaging in The Hippocampus of Rats with Mild Traumatic Brain Injury
Published on: August 14, 2019
Manganese-Enhanced Magnetic Resonance Imaging of Traumatic Brain Injury
Lora Talley Watts1,2,3, Qiang Shen1,4, Shengwen Deng1
11 Research Imaging Institute, University of Texas Health Science Center , San Antonio, Texas.
Abstract:
Calcium dysfunction is involved in secondary traumatic brain injury (TBI). Manganese-enhanced MRI (MEMRI), in which the manganese ion acts as a calcium analog and a MRI contrast agent, was used to study rats subjected to a controlled cortical impact. Comparisons were made with conventional T2 MRI, sensorimotor behavior, and immunohistology. The major findings were: (1) Low-dose manganese (29 mg/kg) yielded excellent contrast with no negative effects on behavior scores relative to vehicle; (2) T1-weighted MEMRI was hyperintense in the impact area at 1-3 h, hypointense on day 2, and markedly hypointense with a hyperintense area surrounding the core on days 7 and/or 14, in contrast to the vehicle group, which did not show a biphasic profile; (3) in the hyperacute phase, the area of hyperintense T1-weighted MEMRI was larger than that of T2 MRI; (4) glial fibrillary acidic protein staining revealed that the MEMRI signal void in the impact core and the hyperintense area surrounding the core on day 7 and/or 14 corresponded to tissue cavitation and reactive gliosis, respectively; (5) T2 MRI showed little contrast in the impact core at 2 h, hyperintense on day 2 (indicative of vasogenic edema), hyperintense in some animals but pseudonormalized in others on day 7 and/or 14; (6) behavioral deficit peaked on day 2. We concluded that MEMRI detected early excitotoxic injury in the hyperacute phase, preceding vasogenic edema. In the subacute phase, MEMRI detected contrast consistent with tissue cavitation and reactive gliosis. MEMRI offers novel contrasts of biological processes that complement conventional MRI in TBI.
Insights
Manganese-enhanced MRI (MEMRI) detects early brain injury after traumatic brain injury (TBI) in rats, showing calcium dysfunction before swelling. This technique reveals tissue damage and repair processes not visible with standard MRI.
Area of Science:
- Neuroimaging
- Traumatic Brain Injury Research
- Calcium Signaling
Background:
- Secondary traumatic brain injury (TBI) involves calcium dysfunction.
- Manganese-enhanced MRI (MEMRI) uses manganese as a calcium analog and MRI contrast agent.
- Understanding TBI's early stages is crucial for effective treatment.
Purpose of the Study:
- To investigate the utility of MEMRI in detecting early secondary injury after TBI.
- To compare MEMRI findings with conventional T2 MRI, behavioral tests, and immunohistology.
- To characterize the biphasic contrast profile of MEMRI in TBI.
Main Methods:
- Controlled cortical impact model in rats.
- T1-weighted MEMRI and conventional T2 MRI acquisition.
- Assessment of sensorimotor behavior and glial fibrillary acidic protein (GFAP) staining.
Main Results:
- Low-dose manganese provided excellent contrast without behavioral impairment.
- MEMRI showed a biphasic signal change in the TBI core, indicating early excitotoxicity and later cavitation/gliosis.
- MEMRI detected hyperacute injury earlier and with larger spatial extent than T2 MRI.
- T2 MRI primarily indicated vasogenic edema, appearing later than MEMRI-detected excitotoxicity.
- Behavioral deficits peaked on day 2 post-injury.
Conclusions:
- MEMRI detects early excitotoxic injury in TBI, preceding vasogenic edema.
- MEMRI reveals subacute changes like tissue cavitation and reactive gliosis.
- MEMRI provides complementary contrasts to conventional MRI for studying TBI's biological processes.
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