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Case Report

Thrombocytopenia-Absent Radius Syndrome: Descriptions of Three New Cases and a Novel Splicing Variant in RBM8A That Expands the Spectrum of Null Alleles

1
Unidade de Genética Molecular, Centro de Genética Médica Doutor Jacinto Magalhães, Centro Hospitalar Universitário do Porto, 4099-028 Porto, Portugal
2
Serviço de Hematologia Clínica, Unidade de Trombose e Hemostase, Centro Hospitalar Universitário do Porto, 4099-001 Porto, Portugal
3
Unidade Multidisciplinar de Investigação Biomédica (UMIB), Instituto de Ciências Biomédicas Abel Salazar (ICBAS) e Laboratório Para a Investigação Integrativa e Translacional em Saúde Populacional (ITR), Universidade do Porto, 4050-313 Porto, Portugal
4
Serviço de Imunohemoterapia, Centro Hospitalar Universitário de Coimbra, 3000-075 Coimbra, Portugal
*
Author to whom correspondence should be addressed.
Current address: Centro de Genética Preditiva e Preventiva (CGPP), Instituto de Biologia Molecular e Celular (IBMC), i3S—Instituto de Investigação e Inovação em Saúde, Universidade do Porto, 4200-135 Porto, Portugal.
Int. J. Mol. Sci. 2022, 23(17), 9621; https://doi.org/10.3390/ijms23179621
Submission received: 5 August 2022 / Revised: 18 August 2022 / Accepted: 23 August 2022 / Published: 25 August 2022
(This article belongs to the Section Molecular Genetics and Genomics)

Abstract

:
Thrombocytopenia-absent radius (TAR) syndrome is a rare congenital disorder characterized by the bilateral absence of the radius and thrombocytopenia, and sometimes by other skeletal, gastrointestinal, cardiac, and renal abnormalities. The underlying genetic defect is usually the compound inheritance of a microdeletion in 1q21.1 (null allele) and a low-frequency, non-coding single nucleotide variant (SNV) in the RBM8A gene (hypomorphic allele). We report three new cases from two unrelated families. The two siblings presented the common genotype, namely the compound heterozygosity for a 1q21.1 microdeletion and the hypomorphic SNV c.-21G>A in RBM8A, whereas the third, unrelated patient presented a rare genotype comprised by two RBM8A variants: c.-21G>A (hypomorphic allele) and a novel pathogenic variant, c.343-2A>G (null allele). Of the eight documented RBM8A variants identified in TAR syndrome patients, four have hypomorphic expression and four behave as null alleles. The present report expands the RBM8A null allele spectrum and corroborates the particularities of RBM8A involvement in TAR syndrome pathogenesis.

1. Introduction

Thrombocytopenia-absent radius syndrome (TAR (MIM #274000)) is a well-characterized congenital disorder defined as hypomegakaryocytic thrombocytopenia and bilateral radial aplasia in the presence of both thumbs [1,2,3]. With an incidence of 1:100.000–1:200.000 live births and affecting both genders, TAR syndrome was first described by Gross et al. and Shaw and Oliver in 1959, and defined as a syndrome by Hall years later [1,2,3,4,5].
Besides radial aplasia, TAR syndrome may comprise other skeletal anomalies, such as shortening or aplasia of the ulna and/or humerus, lower limb malformations, hip luxation, and upper limb phocomelia. Extra-skeletal abnormalities include cardiac and renal anomalies and an intolerance to cow milk [2,5]. Dysmorphic features and macrocephaly can also be found in more severe cases [2].
The pathophysiology of thrombocytopenia is poorly understood; the bone marrow is hypercellular, with low, absent, or immature megakaryocytes (MGK) [5]. Thrombocytopenia is symptomatic in over 90% of the cases, with bleeding episodes; the platelet (PLT) count may improve and bleeding may diminish with age [3,4,6].
To uncover the underlying genetic basis of the syndrome, Klopocki et al. applied microarray-based comparative genomic hybridization (array CGH) to a cohort of patients with a 1q21.1 microdeletion, and they identified a minimal critical region of ~200 kb, encompassing eleven known genes [4]. However, as the microdeletion was also present in some unaffected family members, the authors proposed the existence of an additional modifier.
The modifying allele remained elusive until 2012, when Albers et al. first described the involvement of low-frequency single nucleotide variants (SNVs) in the regulatory regions of the RBM8A gene [7]. Together with the 1q21.1 microdeletion, most patients carried either the noncoding SNV c.-21G>A in the 5′ untranslated region (UTR) or the intronic SNV c.67+32G>C. Moreover, two patients without the microdeletion were found to carry the RBM8A 5′UTR SNV and an allelic loss-of-function variant (c.207_208insAGCG or c.487C>T). These data suggested that the genetic basis of TAR syndrome is compound heterozygosity for a noncoding, hypomorphic SNV and a rare null allele, both involving RBM8A [3,7]. Recently, Boussion et al. described four other pathogenic RBM8A variants amongst a cohort of 26 patients [8].
The RBM8A gene encodes the RNA-binding motif protein A, also designated the Y14 protein, which is a component of the exon junction complex (EJC), involved in numerous essential cellular functions [9,10,11]. Given this housekeeping role of the EJC, RBM8A is widely expressed, including in MGK and osteoblasts [9,10,12,13]. Functional studies have shown that Y14 levels are significantly lower in the PLTs of TAR syndrome patients, suggesting that here, RBM8A variants decrease protein expression to levels below a critical threshold [3,9,12].
We report three additional TAR syndrome patients, from two unrelated families, diagnosed at birth and later reassessed following comprehensive genetic studies that revealed the involvement of the RBM8A gene. Besides corroborating the genotypic signature of the syndrome, this work describes a novel pathogenic variant, further expanding the mutational profile of RMB8A null alleles.

2. Detailed Case Description

2.1. Case Presentation

2.1.1. Family 1

Two affected siblings (F1-II.1 and F1-II.2) were born five years apart to healthy consanguineous parents with no intercurrences during either pregnancy. Case F1-II.1 was a first gestation female. At birth, she presented with upper limb malformations and generalized petechiae. X-rays showed the bilateral absence of the radii and ulna hypoplasia, and the PLT count was 10 × 109/L. She was admitted to a neonatology unit prior to invasive procedures for several PLT transfusions to treat bleeding symptoms. At that time, her cardiac, cerebral, and abdominal ultrasounds were normal, but her bilateral congenital hip luxation was identified and corrected nine months later under PLT transfusion. At 18 years of age, she presented PLT counts of 145 × 109/L. The younger female sibling (F1-II.2) was born with the bilateral absence of the radii, severe thrombocytopenia (18 × 109/L), cardiac malformations (small atrial septal defect), strabismus, and transient leukemoid reaction, with white blood cell counts of 52 × 109/L. No other skeletal alterations were observed. She underwent PLT transfusions for an episode of epistaxis and surgeries for the correction of strabismus. At age 13, her PLT counts were 113 × 109/L.

2.1.2. Family 2

Case F2-II.1 is a female neonate born to healthy non-consanguineous parents following a pregnancy without intercurrences. She had petechiae, ecchymosis, and bilateral deformities with the radial deviation of both upper limbs. There were no facial dysmorphic features, nor were there cerebral, cardiac, or renal alterations. X-rays confirmed the bilateral absence of the radii with the presence of both thumbs and minor bilateral ulna hypoplasia. She had PLT counts of 20 × 109/L, rare megakaryocytes in the bone marrow, and a normal karyotype [14]. She maintained thrombocytopenia with platelet counts of 10 to 17 × 109/L, and she had three transient episodes of leukemoid reactions (30 to 40 × 109/L) during infectious episodes. Poor weight gain, diarrhea, and cow milk intolerance were identified. Since her 18 months of age, there has been a progressive increase in the PLT counts and suitable ponderal, mental, and psychomotor development. Presently, at age 26 years, she has an average PLT count of 90 × 109/L. The improvement of the thrombocytopenia enabled two orthopedic surgeries in the upper limbs.

2.2. Genetic Studies

2.2.1. Identification of a 1q21.1 Microdeletion and a Low-Frequency SNV in RBM8A

In both siblings of family 1, MLPA screening detected a 1q21.1 microdeletion of approximately 302.52kb (rsa 1q21.1 (HFE2, PEX11B, CD160)x1), encompassing 14 MIM genes: HFE2, TXNIP, POLR3GL, ANKRD34A, LIX1L, RBM8A, PEX11B, ITGA10, ANKRD35, PIAS3, NUDT17, POLR3C, RNF115, and CD160 (data not shown).
Targeted Sanger sequencing of the 5′ UTR of RBM8A (NM_005105.4; LRG_574t1) detected the known low-frequency SNV c.-21G>A, thereby establishing the molecular diagnosis of TAR syndrome. Compound heterozygosity of the microdeletion and a 5′ UTR SNV is the most common underlying genotype of TAR syndrome [3,4,6,12,15,16,17]. The parents were unavailable for segregation analysis, but the two variants detected in these siblings conforms to this common genotype, as does their classical presentation of TAR syndrome.

2.2.2. Identification of a Low-Frequency SNV and a Novel Splicing Variant in RBM8A

In family 2 (case F2-II.1), no 1q21.1 microdeletion was detected by MLPA analysis. High-throughput sequencing revealed two heterozygous RBM8A variants: the known 5′ UTR SNV c.-21G>A (as in family 1) and the undocumented intronic variant c.343-2A>G, coincident with a canonical acceptor splice site. Both variants were confirmed by Sanger sequencing and no other pathogenic or likely pathogenic variants were identified. Segregation analysis revealed that the 5′ UTR variant was inherited maternally. The father was unavailable for study, therefore it was not ascertained whether the novel variant was inherited paternally or had occurred de novo. Nevertheless, compound heterozygosity for these variants is highly likely and would explain the underlying genetic cause of TAR syndrome in the patient.
As bioinformatic analysis strongly suggested that the novel variant in intron 4 affects pre-mRNA processing, RBM8A cDNA analysis was carried out (Figure 1). Besides a residual amount of wildtype transcript, a predominant out-of-frame transcript was observed, corresponding to the skipping of exon 5 (r.343_479del), and predictably resulting in a non-functional or no-protein product (p.(Gly115Argfs*30)).

3. Discussion

Thrombocytopenia-absent radius is a syndromic bleeding disorder characterized by low PLT counts in association with the bilateral absence of the radii. Previous work has shown that TAR syndrome is a complex genetic disorder caused by the compound inheritance of a rare null allele and a low frequency hypomorphic noncoding variant in the RBM8A gene [3,7,8,18]. It was demonstrated that this combination, where one copy of the gene is absent or non-functional and the expression of the other allele is downregulated, culminates in the diminished expression of the encoded Y14 protein, which is a constituent of the EJC [3,4,7,8].
The identification of novel RBM8A variants and their implication in the pathophysiology of TAR syndrome is of extreme value, as it has been demonstrated that specific clinical features might be associated with specific variants and their location in the gene [8,18]. It has been seen, for example, that the 5′ UTR SNP c.-21G>A correlates with a lower PLT count and red blood cell production defects, which could normalize over the years, whereas the intronic SNP c.67+32G>C seems to be related with higher PLT counts, but not with red blood cells anomalies [19]. A search in the literature for TAR syndrome cases that were genetically characterized revealed over 130 cases and seven different genotypes, as summarized in Figure 2b [6,8,12,15,16,17,18,19,20,21,22,23,24,25,26].
We report a common genetic constitution of TAR syndrome in two siblings (family 1), increasing the total number of reported cases with the 1q21.1del/c.-21G>A genotype to 86, and one rare case (family 2) with no 1q21.1 microdeletion, but where two RBM8A variants are implicated as causative.
In family 2 (case F2-II.1), besides the known hypomorphic SNV c.-21G>A, the intronic variant c.343-2A>G was identified, with in silico analysis predicting an effect on pre-mRNA processing. According to the American College of Medical Genetics and Genomics (ACMG) criteria, this variant was classified as pathogenic (PVS1, PS3, PM2, and PP3). We found that the nucleotide substitution promoted skipping of the entire exon 5, predictably leading to a reading-frame shift and, consequently, a premature termination codon (p.(Gly115Argfs*30)). As this variant affects a canonical splice sequence, mutation leakage is highly unlikely, thereby originating a null allele. Indeed, in a classical TAR patient with a similar genotypic constitution (c.-19G>T/c.206-13C>A), expression and functional studies have demonstrated the abolishment of Y14 production from an allele with an out-of-frame splicing variant in intron 3 (c.206-13C>A) [8]. The residual amount of normal transcript observed in our patient is believed to correspond to the reduced expression from the hypomorphic allele.
As further variants are described in the RBM8A gene, it becomes increasingly evident that their type and location may dictate the clinical variability and severity seen in TAR syndrome patients [8,20,26]. We contribute with the description of a further variant that behaves as a null allele, where clinical presentation resembles that of the severe forms often seen in classical cases carrying the common 1q21.1 microdeletion, thereby providing further evidence that TAR syndrome is dictated essentially by the RBM8A gene.
Additional studies are required to address the quantitative and qualitative expression of Y14, further define genotype-phenotype correlations, and improve our understanding of how Y14 insufficiency explains the unique skeletal, haematological, and other features of TAR syndrome.

4. Materials and Methods

Peripheral blood samples were collected from the patients following informed consent from the parents. Genomic DNA was extracted using the EZ1 Advanced XL DNA blood kit with BioRobotEZ1 (Qiagen Inc., Valencia, CA, USA), according to the manufacturer’s instructions. DNA concentration was determined by spectrophotometry (NanoDrop, Wilmington, DE, USA).
As the most common genetic defect associated with TAR syndrome is a proximal microdeletion in 1q21.1, initially, all three patients were screened by multiplex ligation-dependent probe amplification (MLPA), with probes targeting five regions of the TAR syndrome microdeletion (Supplementary Material S1). Variant screening in the RBM8A gene was carried out by conventional Sanger sequencing (cases F1-II.1 and F1-II.2) and by next-generation sequencing (NGS) using a commercial gene panel for haematology (case F2-II.1) (Supplementary Material S1).

4.1. Identification of RBM8A Genomic Variants

In family 1, cases II.1 and II.2, screening for the known noncoding SNVs in the 5′ UTR of the RBM8A gene was carried out by Sanger sequencing, using custom-designed primers (Table S1). The amplicons were purified with ExoStar 1-stepTM (Illustre ExoProStar Enzymatic PCR and Sequence Reaction clean-up kit (GE Healthcare Life Sciences, Buckinghamshire, UK). Sequencing was carried out using a BigDyeTM Terminator Cycle Sequencing Kit V3 (Thermo Fisher Scientific, Waltham, MA, USA) and processed on an ABI 3130xl genetic analyzer. Electropherograms were analyzed using SeqScape V2.5 software (Thermo Fisher Scientific, Waltham, MA, USA).
For family 2, case II.1, high-throughput sequencing was performed on an Ion GeneStudio S5 sequencer using a commercial panel for haematology targeting 394 genes (Ion AmpliseqTM Hematology Research Panel, Thermo Fisher Scientific, Waltham, MA, USA) and filtering for low-frequency variants (<1%). Given the clinical suspicion, the binary alignment map (BAM) file was meticulously inspected at the RBM8A locus using Alamut software (AlamutTM Visual Plus, version 1.5.1, SOPHiA GENETICS SA, Saint-Sulpice, Switzerland) to search for further causative variants. The identified variants were confirmed by Sanger sequencing, as described above, using custom-designed primers (Table S1). HGVS nomenclature was used according to the RBM8A reference sequence NM_005105.4; LRG_574t1.

4.2. Characterization of a Novel Splice-Site Variant

RNA from patient F2.II.1 and from controls was extracted from peripheral blood using a PerfectPure RNA Blood Kit (5 PRIME, Hamburg, Germany) according to the manufacturer’s protocol. The resulting purified RNA was converted to cDNA following the protocol for the Reverse Transcription SuperScript IV VILO Master MIX with ezDNA (Thermo Fisher Scientific, Waltham, MA, USA). The cDNA region corresponding to RBM8A exons 2 to 6 was amplified using custom-designed primers (Table S1). The amplification products were separated on a 1.5% LE agarose gel (GRiSP Research Solutions, Porto, Portugal), excised, purified with ExoStar 1-stepTM, and sequenced as described above. The sequencing results were analyzed with FinchTV 1.4 software and compared to normal controls.

Supplementary Materials

The following supporting information can be downloaded at https://www.mdpi.com/article/10.3390/ijms23179621/s1.

Author Contributions

Conceptualization, C.M., J.O. and R.S. (Rosário Santos); investigation, methodology, formal analysis, and bioinformatics analysis, C.M. and A.G.; clinical data collection, S.M., R.S. (Ramon Salvado) and J.T.; funding acquisition, validation, and supervision, S.M., M.L. and R.S. (Rosário Santos); writing—original draft preparation, C.M.; writing—review and editing, J.O., S.M., M.L. and R.S. (Rosário Santos); visualization, all authors. All authors have read and agreed to the published version of the manuscript.

Funding

This work was partly funded by DEFI—Departamento de Ensino, Formação e Investigação, Centro Hospitalar Universitário do Porto (Reference number BI.03/2018/HEMATCLINICA/CHP) and Fórum Hematológico do Norte. The work was also financed by UMIB, which is funded by the Foundation for Science and Technology (FCT) Portugal (grant numbers UIDB/00215/2020 and UIDP/00215/2020), and ITR—Laboratory for Integrative and Translational Research in Population Health (LA/P/0064/2020).

Institutional Review Board Statement

The study was conducted in accordance with the Declaration of Helsinki and approved by the Board of Directors and the Ethics Committee of the Centro Hospitalar Universitário do Porto (Study Reference Number: 2019-151(128-DEFI/132-CE), date of approval: 2019).

Informed Consent Statement

Written informed consent was obtained from the patients or their parents/legal guardians. The laboratory and clinical registries of the patients were consulted by a medical doctor and were never copied.

Data Availability Statement

All data relevant to the study are included in the main text or in the Supplementary Material. Additional supporting data can be provided upon request. The novel variant was submitted to the ClinVar database and is classified as Pathogenic, with the Variation ID 1232306 and Accession Number VCV001232306.2.

Acknowledgments

The authors are grateful to the patients and their families for their contribution and their consent for publication of this study. They are indebted to Cristina Candeias (Cytogenetics Unit) for the MLPA studies and to the clinicians who also followed the patients (Departments of Paediatric Haematology, Orthopaedics, and Neonatology of the Centro Hospitalar Universitário do Porto).

Conflicts of Interest

The authors declare no conflict of interest.

References

  1. Hall, J.G. Thrombocytopenia and absent radius (TAR) syndrome. J. Med. Genet. 1987, 24, 79–83. [Google Scholar] [CrossRef] [PubMed]
  2. Toriello, H.V. Thrombocytopenia-absent radius syndrome. Semin. Thromb. Hemost. 2011, 37, 707–712. [Google Scholar] [CrossRef] [PubMed]
  3. Albers, C.A.; Newbury-Ecob, R.; Ouwehand, W.H.; Ghevaert, C. New insights into the genetic basis of TAR (thrombocytopenia-absent radii) syndrome. Curr. Opin. Genet. Dev. 2013, 23, 316–323. [Google Scholar] [CrossRef] [PubMed]
  4. Klopocki, E.; Schulze, H.; Strauß, G.; Ott, C.E.; Hall, J.; Trotier, F.; Fleischhauer, S.; Greenhalgh, L.; Newbury-Ecob, R.A.; Neumann, L.M.; et al. Complex inheritance pattern resembling autosomal recessive inheritance involving a microdeletion in thrombocytopenia-absent radius syndrome. Am. J. Hum. Genet. 2007, 80, 232–240. [Google Scholar] [CrossRef] [PubMed]
  5. Greenhalgh, K.L.; Howell, R.T.; Bottani, A.; Ancliff, P.J.; Brunner, H.G.; Verschuuren-Bemelmans, C.C.; Vernon, E.; Brown, K.W.; Newbury-Ecob, R.A. Thrombocytopenia-absent radius syndrome: A clinical genetic study. J. Med. Genet. 2002, 39, 876–881. [Google Scholar] [CrossRef] [PubMed]
  6. Albers, C.A.; Paul, D.S.; Schulze, H.; Freson, K.; Stephens, J.C.; Smethurst, P.A.; Jolley, J.D.; Cvejic, A.; Kostadima, M.; Bertone, P.; et al. Compound inheritance of a low-frequency regulatory SNP and a rare null mutation in exon-junction complex subunit RBM8A causes TAR syndrome. Nat. Genet. 2012, 44, 435–439. [Google Scholar] [CrossRef]
  7. Brodie, S.A.; Rodriguez-Aulet, J.P.; Giri, N.; Dai, J.; Steinberg, M.; Waterfall, J.P.; Roberson, D.; Ballew, B.J.; Zhou, W.; Anzick, S.L.; et al. 1Q21.1 Deletion and a Rare Functional Polymorphism in Siblings with Thrombocytopenia-Absent Radius-Like Phenotypes. Cold Spring Harb. Mol. Case Stud. 2019, 5, a004564. [Google Scholar] [CrossRef] [PubMed]
  8. Boussion, S.; Escande, F.; Jourdain, A.S.; Smol, T.; Brunelle, P.; Duhamel, C.; Alembik, Y.; Attié-Bitach, T.; Baujat, G.; Bazin, A.; et al. TAR syndrome: Clinical and molecular characterization of a cohort of 26 patients and description of novel noncoding variants of RBM8A. Hum. Mutat. 2020, 41, 1220–1225. [Google Scholar] [CrossRef]
  9. Jan, A. Deficiency of the Y14 protein is a critical factor underlying the etiology of thrombocytopenia with absent radii syndrome. Clin. Genet. 2012, 82, 29–30. [Google Scholar] [CrossRef]
  10. Zhao, X.F.; Nowak, N.J.; Shows, T.B.; Aplan, P.D. MAGOH interacts with a novel RNA-binding protein. Genomics 2000, 63, 145–148. [Google Scholar] [CrossRef]
  11. Al-Qattan, M.M. The pathogenesis of radial ray deficiency in thrombocytopenia-absent radius (TAR) syndrome. J. Coll. Physicians Surg. Pak. 2016, 26, 912–916. [Google Scholar]
  12. Tassano, E.; Gimelli, S.; Divizia, M.T.; Lerone, M.; Vaccari, C.; Puliti, A.; Gimelli, G. Thrombocytopenia-absent radius (TAR) syndrome due to compound inheritance for a 1q21.1 microdeletion and a low-frequency noncoding RBM8A SNP: A new familial case. Mol. Cytogenet. 2015, 8, 87. [Google Scholar] [CrossRef]
  13. Salicioni, A.M.; Xi, M.; Vanderveer, L.A.; Balsara, B.; Testa, J.R.; Dunbrack, R.L.; Godwin, A.K. Identification and structural analysis of human RBM8A and RBM8B: Two highly conserved RNA-binding motif proteins that interact with OVCA1, a candidate tumor suppressor. Genomics 2000, 69, 54–62. [Google Scholar] [CrossRef] [PubMed]
  14. Silva, A.; Morais, L.; Rocha, C.; Costa, E.; Valente, E.; Soares, P.; Barbot, J. Trombocitopenia e Ausência de Rádio (Síndrome TAR)—Caso Clínico. Acta Pediátrica Port. 2001, 32, 47–50. [Google Scholar]
  15. Travessa, A.M.; Dias, P.; Santos, A.; Custódio, S.; Sousa, A.; Sousa, A.B. Upper limb phocomelia: A prenatal case of thrombocytopenia-absent radius (TAR) syndrome illustrating the importance of chromosomal microarray in limb reduction defects. Taiwan. J. Obstet. Gynecol. 2020, 59, 318–322. [Google Scholar] [CrossRef]
  16. Bottillo, I.; Castori, M.; De Bernardo, C.; Fabbri, R.; Grammatico, B.; Preziosi, N.; Scassellati, G.S.; Silvestri, E.; Spagnuolo, A.; Laino, L.; et al. Prenatal diagnosis and post-mortem examination in a fetus with thrombocytopenia-absent radius (TAR) syndrome due to compound heterozygosity for a 1q21.1 microdeletion and a RBM8A hypomorphic allele: A case report. BMC Res. Notes 2013, 6, 376. [Google Scholar] [CrossRef]
  17. Papoulidis, I.; Oikonomidou, E.; Orru, S.; Siomou, E.; Kontodiou, M.; Eleftheriades, M.; Bacoulas, V.; Cigudosa, J.C.; Suela, J.; Thomaidis, L.; et al. Prenatal detection of TAR syndrome in a fetus with compound inheritance of an RBM8A SNP and a 334-kb deletion: A case report. Mol. Med. Rep. 2014, 9, 163–165. [Google Scholar] [CrossRef]
  18. Morgan, A.; Dipresa, S.; Turolla, L.; La Bianca, M.; Faletra, F.; Girotto, G. A new case of TAR syndrome confirms the importance of noncoding variants in the etiopathogenesis of the disease. Hum. Mutat. 2021, 42, 213–215. [Google Scholar] [CrossRef]
  19. Manukjan, G.; Bösing, H.; Schmugge, M.; Strauß, G.; Schulze, H. Impact of genetic variants on haematopoiesis in patients with thrombocytopenia absent radii (TAR) syndrome. Br. J. Haematol. 2017, 179, 606–617. [Google Scholar] [CrossRef]
  20. Nicchia, E.; Giordano, P.; Greco, C.; De Rocco, D.; Savoia, A. Molecular diagnosis of thrombocytopenia-absent radius syndrome using next-generation sequencing. Int. J. Lab. Hematol. 2016, 38, 412–418. [Google Scholar] [CrossRef]
  21. Kumar, C.; Sharma, D.; Pandita, A.; Bhalerao, S. Thrombocytopenia absent radius syndrome with tetralogy of fallot: A rare association. Int. Med. Case Rep. J. 2015, 8, 81–85. [Google Scholar] [CrossRef] [PubMed]
  22. Farlett, R.; Kulkarni, A.; Thomas, B.; Mydam, J. Thrombocytopenia with Absent Radii Syndrome with an Unusual Urological Pathology: A Case Report. Cureus 2022, 14, e23991. [Google Scholar] [CrossRef] [PubMed]
  23. da Rocha, L.A.; Pires, L.V.L.; Yamamoto, G.L.; Magliocco Ceroni, J.R.; Honjo, R.S.; de Novaes França Bisneto, E.; Oliveira, L.A.N.; Rosenberg, C.; Krepischi, A.C.V.; Passos-Bueno, M.R.; et al. Congenital limb deficiency: Genetic investigation of 44 individuals presenting mainly longitudinal defects in isolated or syndromic forms. Clin. Genet. 2021, 100, 615–623. [Google Scholar] [CrossRef] [PubMed]
  24. Miertuš, J.; Maltese, P.E.; Hýblová, M.; Tomková, E.; Ďurovčíková, D.; Rísová, V.; Bertelli, M. Expanding the phenotype of thrombocytopenia absent radius syndrome with hypospadias. J. Biotechnol. 2020, 311, 44–48. [Google Scholar] [CrossRef]
  25. Ying-Zhi, H.; Ye-qing, Q.; Key, D.M.; Genetics, R. Genetic Study and Prenatal Diagnosis of a Family with Thrombocytopenia-Absent Radius (TAR) Syndrome. J. Sichuan Univ. Med. Sci. Ed. 2021, 52, 711–715. [Google Scholar] [CrossRef]
  26. Yassaee, V.R.; Hashemi-Gorji, F.; Soltani, Z.; Poorhosseini, S.M. A new approach for molecular diagnosis of TAR syndrome. Clin. Biochem. 2014, 47, 835–839. [Google Scholar] [CrossRef]
Figure 1. (a) Amplification products of RBM8A cDNA exons 2 to 6 (F2-II.1.) The control sample (C) shows a normal-sized fragment (~460 bp), as expected for the region encompassing exons 2 to 6. The patient (P) presents a faint, normal-sized fragment and a predominantly shorter fragment (~320 bp), consistent with the absence of exon 5. The residual intermediate-sized fragment reflects heteroduplex formation (verified by Sanger sequencing; data not shown). (b) Partial electropherograms showing the exon 4/exon 6 junction sequence in the patient’s aberrant fragment and the normal exon 4/exon 5 junction sequence in the control. M—size markers: GeneRuler 100 bp Plus DNA ladder (Thermo Fisher Scientific, Waltham, MA, USA).
Figure 1. (a) Amplification products of RBM8A cDNA exons 2 to 6 (F2-II.1.) The control sample (C) shows a normal-sized fragment (~460 bp), as expected for the region encompassing exons 2 to 6. The patient (P) presents a faint, normal-sized fragment and a predominantly shorter fragment (~320 bp), consistent with the absence of exon 5. The residual intermediate-sized fragment reflects heteroduplex formation (verified by Sanger sequencing; data not shown). (b) Partial electropherograms showing the exon 4/exon 6 junction sequence in the patient’s aberrant fragment and the normal exon 4/exon 5 junction sequence in the control. M—size markers: GeneRuler 100 bp Plus DNA ladder (Thermo Fisher Scientific, Waltham, MA, USA).
Ijms 23 09621 g001
Figure 2. (a) Schematic representation of the RBM8A gene and the localization of TAR syndrome associated variants classified as pathogenic/likely pathogenic, as documented in the literature. The novel variant identified in this work is highlighted in a box. The nomenclature is used according to HGVS, using Reference Sequence NM_005105.4, LRG_574t1. When available, frequencies in the gnomAD database and dbSNP identification references are shown. Blue boxes—exons; grey boxes—UTRs; RRM—RNA recognition motif; VUS—variant of uncertain significance. (b) Summary of documented TAR syndrome genotypes and known/predicted effects of the variants. NMD—nonsense-mediated mRNA decay. Source [2,3,6,8,12,15,16,17,18,19,20,21,22,23,24,25,26].
Figure 2. (a) Schematic representation of the RBM8A gene and the localization of TAR syndrome associated variants classified as pathogenic/likely pathogenic, as documented in the literature. The novel variant identified in this work is highlighted in a box. The nomenclature is used according to HGVS, using Reference Sequence NM_005105.4, LRG_574t1. When available, frequencies in the gnomAD database and dbSNP identification references are shown. Blue boxes—exons; grey boxes—UTRs; RRM—RNA recognition motif; VUS—variant of uncertain significance. (b) Summary of documented TAR syndrome genotypes and known/predicted effects of the variants. NMD—nonsense-mediated mRNA decay. Source [2,3,6,8,12,15,16,17,18,19,20,21,22,23,24,25,26].
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Monteiro, C.; Gonçalves, A.; Oliveira, J.; Salvado, R.; Tomaz, J.; Morais, S.; Lima, M.; Santos, R. Thrombocytopenia-Absent Radius Syndrome: Descriptions of Three New Cases and a Novel Splicing Variant in RBM8A That Expands the Spectrum of Null Alleles. Int. J. Mol. Sci. 2022, 23, 9621. https://doi.org/10.3390/ijms23179621

AMA Style

Monteiro C, Gonçalves A, Oliveira J, Salvado R, Tomaz J, Morais S, Lima M, Santos R. Thrombocytopenia-Absent Radius Syndrome: Descriptions of Three New Cases and a Novel Splicing Variant in RBM8A That Expands the Spectrum of Null Alleles. International Journal of Molecular Sciences. 2022; 23(17):9621. https://doi.org/10.3390/ijms23179621

Chicago/Turabian Style

Monteiro, Catarina, Ana Gonçalves, Jorge Oliveira, Ramon Salvado, Jorge Tomaz, Sara Morais, Margarida Lima, and Rosário Santos. 2022. "Thrombocytopenia-Absent Radius Syndrome: Descriptions of Three New Cases and a Novel Splicing Variant in RBM8A That Expands the Spectrum of Null Alleles" International Journal of Molecular Sciences 23, no. 17: 9621. https://doi.org/10.3390/ijms23179621

APA Style

Monteiro, C., Gonçalves, A., Oliveira, J., Salvado, R., Tomaz, J., Morais, S., Lima, M., & Santos, R. (2022). Thrombocytopenia-Absent Radius Syndrome: Descriptions of Three New Cases and a Novel Splicing Variant in RBM8A That Expands the Spectrum of Null Alleles. International Journal of Molecular Sciences, 23(17), 9621. https://doi.org/10.3390/ijms23179621

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