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Ribosomal protein genes RPS10 and RPS26 are commonly mutated in Diamond-Blackfan anemia
Leana Doherty1, Mee Rie Sheen, Adrianna Vlachos
1Division of Genetics and Program in Genomics, The Manton Center for Orphan Disease Research, Children's Hospital Boston, Boston, MA 02115, USA.
Insights
Diamond-Blackfan anemia (DBA) is a bone marrow failure syndrome. New research identified mutations in RPS10 and RPS26 genes, impacting rRNA processing and potentially explaining DBA disease mechanisms.
Area of Science:
- Genetics
- Molecular Biology
- Hematology
Background:
- Diamond-Blackfan anemia (DBA) is a rare inherited bone marrow failure syndrome.
- DBA typically presents in infancy or early childhood with anemia, growth retardation, and congenital malformations.
- Previous studies linked DBA to mutations in several ribosomal protein (RP) genes.
Purpose of the Study:
- To investigate mutations in additional ribosomal protein (RP) genes in a large cohort of Diamond-Blackfan anemia (DBA) patients.
- To determine the functional impact of identified mutations on rRNA processing.
Main Methods:
- Sequencing of 35 ribosomal protein (RP) genes in 117 DBA probands.
- Analysis of pre-rRNA levels in lymphoblastoid cells from patients with identified mutations.
- Comparison with in vitro knockdown experiments in HeLa cells.
Main Results:
- Identified three distinct mutations in RPS10 in five probands and nine distinct mutations in RPS26 in 12 probands.
- Patients with RPS10 and RPS26 mutations exhibited elevated levels of 18S-E pre-rRNA.
- siRNA-mediated knockdown of RPS10 or RPS26 in HeLa cells mimicked the observed pre-rRNA accumulation.
Conclusions:
- Mutations in RPS10 and RPS26 are associated with Diamond-Blackfan anemia (DBA).
- These mutations impair the function of ribosomal proteins in rRNA processing.
- The findings provide new insights into the molecular pathogenesis of DBA.
Abstract:
Diamond-Blackfan anemia (DBA), an inherited bone marrow failure syndrome characterized by anemia that usually presents before the first birthday or in early childhood, is associated with birth defects and an increased risk of cancer. Although anemia is the most prominent feature of DBA, the disease is also characterized by growth retardation and congenital malformations, in particular craniofacial, upper limb, heart, and urinary system defects that are present in approximately 30%-50% of patients. DBA has been associated with mutations in seven ribosomal protein (RP) genes, RPS19, RPS24, RPS17, RPL35A, RPL5, RPL11, and RPS7, in about 43% of patients. To continue our large-scale screen of RP genes in a DBA population, we sequenced 35 ribosomal protein genes, RPL15, RPL24, RPL29, RPL32, RPL34, RPL9, RPL37, RPS14, RPS23, RPL10A, RPS10, RPS12, RPS18, RPL30, RPS20, RPL12, RPL7A, RPS6, RPL27A, RPLP2, RPS25, RPS3, RPL41, RPL6, RPLP0, RPS26, RPL21, RPL36AL, RPS29, RPL4, RPLP1, RPL13, RPS15A, RPS2, and RPL38, in our DBA patient cohort of 117 probands. We identified three distinct mutations of RPS10 in five probands and nine distinct mutations of RPS26 in 12 probands. Pre-rRNA analysis in lymphoblastoid cells from patients bearing mutations in RPS10 and RPS26 showed elevated levels of 18S-E pre-rRNA. This accumulation is consistent with the phenotype observed in HeLa cells after knockdown of RPS10 or RPS26 expression with siRNAs, which indicates that mutations in the RPS10 and RPS26 genes in DBA patients affect the function of the proteins in rRNA processing.
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