Computed tomography of the human pineal gland for study of the sleep–wake rhythm: reproducibility of a semi-quantitative approach

Author:

Schmitz S. A.1,Platzek I.1,Kunz D.1,Mahlberg R.1,Wolf K.-J.1,Heidenreich J. O.1

Affiliation:

1. Department of Radiology and Nuclear Medicine, Charité – Universitätsmedizin Berlin, Campus Benjamin Franklin, Berlin, Germany; Hammersmith Hospital, Imaging Sciences Department (Clinical Sciences Centre), Faculty of Medicine, Imperial College, London, United Kingdom; Department of Psychiatry and Psychotherapy, Charité – Universitätsmedizin Berlin, Campus Charité Mitte, Berlin, Germany; Department of Radiology, University Hospitals of Cleveland, Case Western Reserve University, Cleveland, OH, USA

Abstract

Purpose: To propose a semi-quantitative computed tomography (CT) protocol for determining uncalcified pineal tissue (UCPT), and to evaluate its reproducibility in modification of studies showing that the degree of calcification is a potential marker of deficient melatonin production and may prove an instability marker of circadian rhythm. Material and Methods: Twenty-two pineal gland autopsy specimens were scanned in a skull phantom with different slice thickness twice and the uncalcified tissue visually assessed using a four-point scale. The maximum gland density was measured and its inverse graded on a non-linear four-point scale. The sum of both scores was multiplied by the gland volume to yield the UCPT. The within-subject variance of UCPT was determined and compared between scans of different slice thickness. Results: The UCPT of the first measurement, in arbitrary units, was 39±52.5 for 1 mm slice thickness, 44±51.1 for 2 mm, 45±34.8 for 4 mm, and 84±58.0 for 8 mm. Significant differences of within-subject variance of UCPT were found between 1 and 4 mm, 1 and 8 mm, and 2 and 8 mm slice thicknesses ( P<0.05). Conclusion: A superior reproducibility of the semi-quantitative CT determination of UCPT was found using 1 and 2 mm slice thicknesses. These data support the use of thin slices of 1 and 2 mm. The benefit in reproducibility from thin slices has to be carefully weighted against their considerably higher radiation exposure.

Publisher

SAGE Publications

Subject

Radiology Nuclear Medicine and imaging,General Medicine,Radiological and Ultrasound Technology

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