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Novel microdeletions affecting the GNAS locus in pseudohypoparathyroidism: characterization of the underlying
Intza Garin1, Francesca M Elli, Agnes Linglart
1Molecular (Epi)Genetics Laboratory (I.G., A.P., G.P.dN.), BioAraba National Health Institute, Hospital Universitario Araba-Txagorritxu, Vitoria-Gasteiz, 01009, Spain; Fondazione IRCCS Ca' Granda Ospedale Maggiore Policlinico, Endocrinology and Diabetology Unit, Department of Clinical Sciences and Community Health (F.M.E., P.B., G.M.), University of Milan, Milan, 20122, Italy; INSERM U986 (A.L., C.S.), Hôpital Bicêtre, Le Kremlin Bicêtre, 94270, France; Service d'Endocrinologie Pédiatrique (A.L.), Hôpital Bicêtre-Assistance Publique Hôpitaux de Paris, 75475, France; Centre de Référence des Maladies Rares du Métabolisme du calcium et du phosphore Hôpital Bicêtre (A.L., C.S.), Le Kremlin Bicêtre, 94270, France; Laboratoire de Biochimie Hormonale et Génétique (C.S., C.K.), Hôpital Bichat Claude Bernard-Assistance Publique Hôpitaux de Paris, Paris, 75018, France; Department of Public Health and Pediatrics (L.dS.), University of Turin, Regina Margherita Children's Hospital, Turin, 10126, Italy; Service de génétique (J.T.R.C.), Centre hospitalier universitaire, Sherbrooke, J1G 2E8, Canada; Department of Pediatric Endocrinology (R.C.), University Hospital, Angers, 49007, France; Pediatric Endocrine Unit (Y.T.-R., O.A.), Ha'Emek Medical Center, Afula, 18101, Israel.
Context:
Pseudohypoparathyroidism type Ia (PHP1A) is a rare endocrine disorder characterized by hypocalcemia, hyperphosphatemia, multiple hormonal resistance, and features of Albright hereditary osteodystrophy. When the phenotype is present but not associated with hormonal resistance, it is called psedopseudohypoparathyroidism (PPHP). Both entities have been associated to GNAS haploinsufficiency, and are mostly caused by inherited inactivating mutations at GNAS gene that codes for the stimulatory alpha subunit of G protein, although the cause remains unidentified in approximately 30% of patients.
Objectives:
The aims of our work were 1) to identify GNAS locus defects in 112 patients with clinical diagnosis of PHP1A/PPHP and no point mutations at GNAS, to improve molecular diagnostic and genetic counseling; 2) to outline the underlying molecular mechanism(s).
Methods:
Methylation-specific-multiplex ligation-dependent probe amplification, qPCR, array comparative genomic hybridization, and long-PCR were used to search for genomic rearrangements at chromosome 20q and to identify their boundaries. We used different bioinformatic approaches to assess the involvement of the genomic architecture in the origin of the deletions.
Results:
We discovered seven novel genomic deletions, ranging from 106-bp to 2.6-Mb. The characterization of five of seven deletion breakpoints and the definition of the putative molecular mechanisms responsible for these rearrangements revealed that Alu sequences play a major role in determining the genetic instability of the region.
Conclusion:
We observed that deletions at GNAS locus represent a significant cause of PPHP/PHP1A and that such defects are mostly associated with Alu-mediated recombination events. Their investigation revealed to be fundamental as, in some cases, they could be misdiagnosed as imprinting defects.
Insights
Genomic deletions at the GNAS locus are a significant cause of pseudohypoparathyroidism (PHP1A) and pseudopseudohypoparathyroidism (PPHP). These defects, often caused by Alu-mediated recombination, are crucial for accurate diagnosis and genetic counseling.
Area of Science:
- Endocrinology and Genetics
- Molecular Biology
- Genomic Medicine
Background:
- Pseudohypoparathyroidism type Ia (PHP1A) and pseudopseudohypoparathyroidism (PPHP) are rare disorders linked to GNAS haploinsufficiency.
- Inactivating GNAS mutations cause these conditions, but the genetic cause remains unknown in about 30% of patients.
Purpose of the Study:
- Identify GNAS locus defects in 112 patients diagnosed with PHP1A/PPHP lacking GNAS point mutations.
- Improve molecular diagnostics and genetic counseling for these rare disorders.
- Elucidate the underlying molecular mechanisms of GNAS locus defects.
Main Methods:
- Utilized methylation-specific-multiplex ligation-dependent probe amplification, qPCR, array comparative genomic hybridization, and long-PCR.
- Investigated genomic rearrangements at chromosome 20q and defined deletion boundaries.
- Employed bioinformatic approaches to analyze the genomic architecture's role in deletion origins.
Main Results:
- Discovered seven novel genomic deletions, varying in size from 106 bp to 2.6 Mb.
- Characterized five deletion breakpoints, revealing Alu sequences as key drivers of genetic instability.
- Identified Alu-mediated recombination as a primary mechanism for these GNAS locus rearrangements.
Conclusions:
- GNAS locus deletions are a substantial cause of PPHP/PHP1A, frequently involving Alu-mediated recombination.
- Accurate identification of these deletions is vital, as they can be misdiagnosed as imprinting defects.
- This research enhances diagnostic accuracy and genetic counseling for patients with PHP1A/PPHP.
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