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Assessing Iron Deposition in the Brains of 5xFAD Mice by Perls'/DAB Staining
Published on: May 23, 2025
In vitro study of iron deposition in normal human brains: An Indian Scenario
Shallu Jaggi1, Niranjan Khandelwal1, Daisy Sahni2
1Department of Radiodiagnosis and Imaging, Post Graduate Institute of Medical Education and Research, Chandigarh, 160012, India.
Abstract:
An increase in brain iron is a normal physiological process during brain development but excess accumulation is a risk factor for various neurodegenerative diseases. Thus, knowledge of the normal range of brain iron content is mandatory. The present study was planned to collect normative data on iron deposition in human brains by in vitro analysis. Iron deposition in basal ganglia was determined by Perl's staining in 31 (18 males, 13 females) nonpathological postmortem brains aged from 18 to 80 years and by inductively coupled plasma mass spectrometry (ICP-MS) in 13 of them (seven males, six females). After conventional paraffin embedding, 5 µm thick sections were prepared, fixed and stained with freshly prepared Perl's stain along with a control section. For ICP-MS analysis, approximately 12-13 mg samples of tissue from each region of interest were dried, weighed, and digested with 2 mL of concentrated nitric acid. After digestion, the samples were dissolved in ICP grade water for trace analysis and the iron concentration was determined against standards using an ICP-MS analyzer and recorded in parts per billion (ppb). Nonheme iron deposits were observed in the globus pallidus in 16.13% of cases with no significant sex difference. Iron was deposited in the perivascular area, predominantly in the tunica media and tunica adventitia. ICP-MS analysis revealed the highest iron concentration of 595 ppb (0.595 µg/g tissue) in the globus pallidus with no significant gender or age related differences. In conclusion, the present study revealed a low (16%) incidence of brain iron deposition in normal adult postmortem brains. Clin. Anat. 31:275-281, 2018. © 2017 Wiley Periodicals, Inc.

