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Updated: Mar 10, 2026

Comparative Analysis of Human Growth Hormone in Serum Using SPRi, Nano-SPRi and ELISA Assays
Published on: January 7, 2016
Classical and non-classical causes of GH deficiency in the paediatric age
Natascia Di Iorgi1, Giovanni Morana2, Anna Elsa Maria Allegri1
1Department of Pediatrics, Istituto Giannina Gaslini, University of Genova, Genova, Italy; Department of Endocrine Unit, Istituto Giannina Gaslini, University of Genova, Genova, Italy.
Insights
Growth hormone deficiency (GHD) can stem from various causes. Specific MRI findings like pituitary stalk agenesis and ectopic posterior pituitary indicate permanent GHD with distinct outcomes.
Area of Science:
- Pediatric Endocrinology
- Neuroimaging
- Genetics
Background:
- Growth hormone deficiency (GHD) arises from hypothalamic or pituitary issues, encompassing idiopathic forms and combined pituitary hormone deficiencies.
- Idiopathic hypopituitarism is common in children without a clear cause.
- Magnetic Resonance Imaging (MRI) is crucial for diagnosing hypopituitarism in children.
Purpose of the Study:
- To highlight the diagnostic significance of pituitary gland morphology on MRI in GHD.
- To correlate specific MRI findings with GHD etiology and prognosis.
- To explore the genetic underpinnings of pituitary dysfunction.
Main Methods:
- Review of MRI findings in children with hypopituitarism.
- Analysis of clinical and endocrine outcomes based on pituitary anatomy.
- Examination of genetic mutations associated with pituitary development and dysfunction.
Main Results:
- Pituitary stalk agenesis and ectopic posterior pituitary (EPP) are markers of permanent GHD.
- These specific MRI findings correlate with different clinical and endocrine outcomes.
- Genetic mutations in transcription factors are linked to pituitary dysfunction and abnormal development.
Conclusions:
- MRI provides critical insights into GHD etiology and prognosis, with specific markers like EPP indicating permanent GHD.
- Understanding the correlation between genetic mutations and MRI/endocrine phenotypes enhances knowledge of pituitary development.
- This knowledge aids in genetic counseling and early diagnosis of hormone deficiencies in hypopituitarism.
Abstract:
Growth hormone deficiency (GHD) may result from a failure of hypothalamic GHRH production or release, from congenital disorders of pituitary development, or from central nervous system insults including tumors, surgery, trauma, radiation or infiltration from inflammatory diseases. Idiopathic, isolated GHD is the most common sporadic form of hypopituitarism. GHD may also occur in combination with other pituitary hormone deficiencies, and is often referred to as hypopituitarism, combined pituitary hormone deficiency (CPHD), multiple pituitary hormone deficiency (MPHD) or panhypopituitarism. Children without any identifiable cause of their GHD are commonly labeled as having idiopathic hypopituitarism. MRI imaging is the technique of choice in the diagnosis of children with hypopituitarism. Marked differences in MRI pituitary gland morphology suggest different etiologies of GHD and different prognoses. Pituitary stalk agenesis and ectopic posterior pituitary (EPP) are specific markers of permanent GHD, and patients with these MRI findings show a different clinical and endocrine outcome compared to those with normal pituitary anatomy or hypoplastic pituitary alone. Furthermore, the classic triad of ectopic posterior pituitary gland, pituitary stalk hypoplasia/agenesis, and anterior pituitary gland hypoplasia is generally associated with permanent GHD. T2 DRIVE images aid in the identification of pituitary stalk without the use of contrast medium administration. Future developments in imaging techniques will undoubtedly reveal additional insights. Mutations in a number of genes encoding transcription factors - such as HESX1, SOX2, SOX3, LHX3, LHX4, PROP1, POU1F1, PITX, GLI3, GLI2, OTX2, ARNT2, IGSF1, FGF8, FGFR1, PROKR2, PROK2, CHD7, WDR11, NFKB2, PAX6, TCF7L1, IFT72, GPR161 and CDON - have been associated with pituitary dysfunction and abnormal pituitary gland development; the correlation of genetic mutations to endocrine and MRI phenotypes has improved our knowledge of pituitary development and management of patients with hypopituitarism, both in terms of possible genetic counseling, and of early diagnosis of evolving anterior pituitary hormone deficiencies.
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