Skip to main content
Top
Published in: Neuroradiology 12/2004

01-12-2004 | Paediatric Neuroradiology

Pituitary gland signal in pre-term infants during the first year of life: an MRI study

Authors: Maria I. Argyropoulou, Vassilios Xydis, Dimitrios N. Kiortsis, Kostantina Pantou, Anastasia Zikou, Stavros C. Efremidis, Styliani Andronikou

Published in: Neuroradiology | Issue 12/2004

Login to get access

Abstract

Our purpose was to determine the pituitary gland signal of premature neonates and infants. We retrospectively measured, in a midline sagittal T1-weighted MRI scan, the pituitary signal of 121 premature infants (mean gestational age: 32.8 weeks, mean chronological age:6.9 months, mean corrected age:5.2 months). The relative signal intensity of the adenohypophysis and neurohypophysis was measured as (A−V)/V and (P−V)/V, respectively (where A, P, V are the mean signal intensities of the adenohypophysis, neurohypophysis and vermis white matter, respectively). On visual inspection the adenohypophysis was rated relative to the vermis white matter (VWM) and scored as hyperintense (grade 3), isointense (grade 2) and hypointense (grade 1). (A−V)/V and (P−V)/V had a negative correlation with chronological age (r=−0.38, r=−0.35, respectively, P<0.01) and corrected age (r=−0.42, r=−0.40, respectively, P<0.01). The (A−V)/V was different in the three grade groups; significant difference was found between grades 3 and 2 and grades 3 and 1. The adenohypophysis was bright in 93% of babies under 2 months of chronological age. In five babies of mean gestational age 29.1 weeks a hyperintense adenohypophysis was observed at 2.9–3.7 months of chronological age (corrected age 0.37–2 months). We conclude that in pre-term babies the adenohypophysis appears in hypersignal that may persist up to 2 months of corrected age. The adenohypophyseal and neurohypophyseal signals decrease with age.
Literature
1.
go back to reference Cox TD, Elster AD (1991) Normal pituitary gland: changes in shape, size and signal intensity during the 1st year of life at MR imaging. Radiology 179:721–724PubMed Cox TD, Elster AD (1991) Normal pituitary gland: changes in shape, size and signal intensity during the 1st year of life at MR imaging. Radiology 179:721–724PubMed
2.
go back to reference Dietrich RB, Lis LE, Greensite FS, Pitt D (1995) Normal MR appearance of the pituitary gland in the first 2 years of life. Am J Neuroradiol 16:1413–1419PubMed Dietrich RB, Lis LE, Greensite FS, Pitt D (1995) Normal MR appearance of the pituitary gland in the first 2 years of life. Am J Neuroradiol 16:1413–1419PubMed
3.
go back to reference Wolpert SM, Osborne M, Anderson M, Runge VM (1988) The bright pituitary gland—a normal MR appearance in infancy. Am J Neuroradiol 9:1–3PubMed Wolpert SM, Osborne M, Anderson M, Runge VM (1988) The bright pituitary gland—a normal MR appearance in infancy. Am J Neuroradiol 9:1–3PubMed
4.
go back to reference Argyropoulou M, Perignon F, Brunelle F, Brauner R, Rappaport R (1991) Height of normal pituitary gland as a function of age evaluated by magnetic resonance imaging in children. Pediatr Radiol 21:247–249PubMed Argyropoulou M, Perignon F, Brunelle F, Brauner R, Rappaport R (1991) Height of normal pituitary gland as a function of age evaluated by magnetic resonance imaging in children. Pediatr Radiol 21:247–249PubMed
5.
go back to reference Kiortsis DN, Xydis V, Drougia AG, Argyropoulou PI, Andronikou S, Efremidis SC, Argyropoulou MI (2004) The height of the pituitary in preterm infants during the first 2 years of life: an MRI study. Neuroradiology 46:224–226CrossRefPubMed Kiortsis DN, Xydis V, Drougia AG, Argyropoulou PI, Andronikou S, Efremidis SC, Argyropoulou MI (2004) The height of the pituitary in preterm infants during the first 2 years of life: an MRI study. Neuroradiology 46:224–226CrossRefPubMed
6.
go back to reference Elster AD (1993) Modern imaging of the pituitary. Radiology 187:1–14PubMed Elster AD (1993) Modern imaging of the pituitary. Radiology 187:1–14PubMed
7.
go back to reference Fujisawa I, Asato R, Nishimura K, et al (1987) Anterior and posterior lobes of the pituitary gland: assessment by 1.5 T MR imaging. J Comput Assist Tomogr 11:214–220PubMed Fujisawa I, Asato R, Nishimura K, et al (1987) Anterior and posterior lobes of the pituitary gland: assessment by 1.5 T MR imaging. J Comput Assist Tomogr 11:214–220PubMed
8.
go back to reference Fujisawa I, Asato R, Kawata M, et al (1989) Hyperintense signal of the posterior pituitary on T1-weighted MR images: an experimental study. J Comput Assist Tomogr 13:371–377PubMed Fujisawa I, Asato R, Kawata M, et al (1989) Hyperintense signal of the posterior pituitary on T1-weighted MR images: an experimental study. J Comput Assist Tomogr 13:371–377PubMed
9.
go back to reference Miller JD, Wright NM, Esparza A, et al (1992) Spontaneous pulsatile growth hormone release in male and female infants. J Clin Endocrinol Metab 75:1508–1513CrossRefPubMed Miller JD, Wright NM, Esparza A, et al (1992) Spontaneous pulsatile growth hormone release in male and female infants. J Clin Endocrinol Metab 75:1508–1513CrossRefPubMed
10.
go back to reference Rajaram S, Carlson SE, Koo WW, Rangachari A, Kelly DP (1995) Insulin-like growth factor (IGF)-I and IGF-binding protein 3 during the first year in term and preterm infants. Pediatr Res 37:581–585PubMed Rajaram S, Carlson SE, Koo WW, Rangachari A, Kelly DP (1995) Insulin-like growth factor (IGF)-I and IGF-binding protein 3 during the first year in term and preterm infants. Pediatr Res 37:581–585PubMed
11.
go back to reference Wright NM, Northington FJ, Miller JD, Veldhuis JD, Rogol AD (1992) Elevated growth hormone secretory rate in premature infants: deconvolution analysis of pulsatile growth hormone secretion in the neonate. Pediatr Res 32:286–290PubMed Wright NM, Northington FJ, Miller JD, Veldhuis JD, Rogol AD (1992) Elevated growth hormone secretory rate in premature infants: deconvolution analysis of pulsatile growth hormone secretion in the neonate. Pediatr Res 32:286–290PubMed
12.
go back to reference Rascher W, Rauh W, Brandeis WE, Huber KH, Schärer K (1986) Determinants of plasma arginine-vasopressin in children. Acta Paediatr Scand 75:111–117PubMed Rascher W, Rauh W, Brandeis WE, Huber KH, Schärer K (1986) Determinants of plasma arginine-vasopressin in children. Acta Paediatr Scand 75:111–117PubMed
13.
go back to reference Counsell SJ, Maalouf EF, Fletcher AM, et al (2002) MR imaging assessment of myelination in the very preterm brain. Am J Neuroradiol 23:872–881PubMed Counsell SJ, Maalouf EF, Fletcher AM, et al (2002) MR imaging assessment of myelination in the very preterm brain. Am J Neuroradiol 23:872–881PubMed
14.
go back to reference Sizonenko PC (1988) Post-natal hormonal adaptation. Acta Paediatr Jpn 30:139–145PubMed Sizonenko PC (1988) Post-natal hormonal adaptation. Acta Paediatr Jpn 30:139–145PubMed
15.
go back to reference Perlman M, Schenker J, Glassman M, Ben-david M (1978) Prolonged hyperprolactinemia in preterm infants. J Clin Endocrinol Metab 47:894–897PubMed Perlman M, Schenker J, Glassman M, Ben-david M (1978) Prolonged hyperprolactinemia in preterm infants. J Clin Endocrinol Metab 47:894–897PubMed
16.
go back to reference Tien RD, Kucharczyk J Bessette J, Middleton M (1992) MR imaging of the pituitary gland in infants and children: changes in size, shape, and MR signal with growth and development. Am J Roentgenol 158:1151–1154 Tien RD, Kucharczyk J Bessette J, Middleton M (1992) MR imaging of the pituitary gland in infants and children: changes in size, shape, and MR signal with growth and development. Am J Roentgenol 158:1151–1154
17.
go back to reference Pelletier G, Robert F, Hardy H (1978) Identification of human anterior pituitary cells by immunoelectron microscopy. J Clin Endocrinol Metab 46:534–542PubMed Pelletier G, Robert F, Hardy H (1978) Identification of human anterior pituitary cells by immunoelectron microscopy. J Clin Endocrinol Metab 46:534–542PubMed
18.
go back to reference Miki Y, Asato R, Okumura R, et al (1993) Anterior pituitary gland in pregnancy: hyperintensity at MR. Radiology 187:229–231PubMed Miki Y, Asato R, Okumura R, et al (1993) Anterior pituitary gland in pregnancy: hyperintensity at MR. Radiology 187:229–231PubMed
19.
go back to reference Colombo N, Berry I Kucharczyk J, et al (1987) Posterior pituitary gland: appearance on MR images in normal and pathologic states. Radiology 165:481–485PubMed Colombo N, Berry I Kucharczyk J, et al (1987) Posterior pituitary gland: appearance on MR images in normal and pathologic states. Radiology 165:481–485PubMed
20.
go back to reference Kurokawa H, Fujisawa I, Nakano Y, et al (1998) Posterior lobe of the pituitary gland: correlation between signal intensity on T1-weighted MR images and vasopressin concentration. Radiology 207:79–83PubMed Kurokawa H, Fujisawa I, Nakano Y, et al (1998) Posterior lobe of the pituitary gland: correlation between signal intensity on T1-weighted MR images and vasopressin concentration. Radiology 207:79–83PubMed
21.
go back to reference Lee MY, Choi HY, Sung YA, Lee JK (2001) High signal intensity of the posterior pituitary gland on T1-weighted images. Acta Radiol 42:129–134CrossRefPubMed Lee MY, Choi HY, Sung YA, Lee JK (2001) High signal intensity of the posterior pituitary gland on T1-weighted images. Acta Radiol 42:129–134CrossRefPubMed
22.
go back to reference Barkovich JA (1995) Destructive brain disorders of childhood. In: Barkovich JA (ed) Pediatric neuroimaging, 2nd edn. Raven, New York, pp 107–175 Barkovich JA (1995) Destructive brain disorders of childhood. In: Barkovich JA (ed) Pediatric neuroimaging, 2nd edn. Raven, New York, pp 107–175
23.
go back to reference Daniel PM, Prichard MML (1975) Anatomy of the pituitary gland. Acta Endocrinol 80:27–33 Daniel PM, Prichard MML (1975) Anatomy of the pituitary gland. Acta Endocrinol 80:27–33
Metadata
Title
Pituitary gland signal in pre-term infants during the first year of life: an MRI study
Authors
Maria I. Argyropoulou
Vassilios Xydis
Dimitrios N. Kiortsis
Kostantina Pantou
Anastasia Zikou
Stavros C. Efremidis
Styliani Andronikou
Publication date
01-12-2004
Publisher
Springer-Verlag
Published in
Neuroradiology / Issue 12/2004
Print ISSN: 0028-3940
Electronic ISSN: 1432-1920
DOI
https://doi.org/10.1007/s00234-004-1285-0

Other articles of this Issue 12/2004

Neuroradiology 12/2004 Go to the issue