Summary We report the long‐term follow‐up (median 39·5 months) of 49 paediatric patients (33 females and 16 males) with refractory symptomatic immune thrombocytopenic purpura (ITP) treated with rituximab. The overall response rate was 69% (34/49 patients). Twenty‐one responders had a platelet count >50 × 109/l at a median 20·2 months from treatment. Kaplan–Meier analysis showed a probability of relapse‐free survival (RFS) of 60% at 36 months from the first rituximab infusion. The number of infusions and a previous splenectomy did not influence overall response rate. Patients who achieved complete response were significantly older at diagnosis and first rituximab infusion than partial responders (P = 0·027). Older children displayed a significantly greater probability of sustained response (RFS) at 36 months than younger children (88·9% vs. 56·7%, P = 0·037). Earlier responses (within 20 d from treatment) were significantly associated with both complete (P = 0·004) and sustained response (P = 0·002). Only mild and transient side‐effects were observed in 9/49 children; no major infections nor delayed toxicities were recorded during the follow‐up.
. The local Ethics Committee approved the protocol. We analyzed data from all the 159 patients admitted in the study period with suspected iron overload based on high TS (above 55% in men and 45% in women) and/or SF (> 322 ng/mL), who had undergone MRI-T2* for heart, liver, spleen, and/or pancreas iron overload and had been screened for the presence of HFE mutations by allele-specific PCR (polymerase chain reaction). The calculations of liver iron concentration (LIC) values were based on liver MRI-T2* measurements, using the Thalassemia-Tools software (Cardiovascular Imaging Solutions, London, UK).Mutations in the HFE gene were identified in 109/159 (68.6%) patients. The most common mutation in our sample was H63D, present in 91 patients (57.2%): 14 (8.8%) were homozygous, 69 (43.4%) heterozygous, and 8 (5%) compound heterozygous for C282Y/H63D. For the C282Y mutation, in contrast, only 5 patients (3.1%) were homozygous and 11 (6.9%) were heterozygous. The S65C mutation was detected in heterozygous state in 2 (2.5%) cases.All 159 patients underwent abdominal MRI-T2* and 126 underwent cardiac MRI-T2* too. Only 3 out of 126 cardiac MRIs had a positive T2* result, mild cardiac overload (T2*: 18.98, 19.14, and 19.8 ms). Of these, two patients had the H63D mutation (1 homozygous and 1 heterozygous) and one patient did not have any of the mutations studied. In the liver, 61 (38.4%) patients had iron overload (T2*: < 11.4 ms and LIC > 2.0 mg/g) of which 57 (35.8%) were light (T2*: 3.83-11.4 ms and LIC: 2.01-6.86 mg/g), and four (2.5%) moderate (T2*: 2.0-3.8 ms and LIC: 7.06-13.56 mg/g). Of these patients with liver overload, 27.9% were C282Y carriers (8.2% homozygous, 11.5% heterozygous, and 8.2% compound heterozygous C282Y/H63D), and 50.8% carried the H63D mutation (14.8% in homozygosis and 36.1% in heterozygosis). Only 12 (19.7%) patients with liver overload did not have the HFE mutation.The presence of C282Y mutation (in either homo or heterozygosis), compound heterozygous (C282/H63D), and H63D in homozygosis was significantly associated with a higher frequency of iron overload in the liver as measured by T2* (P 5 0.001). However, this was not true in patients with H63D in heterozygosis or absence of mutation (P 5 0.42), in which overload frequency was 68.4% and 29.1%, respectively.Pancreatic overload was diagnosed in 33 patients (21%), and 56 patients (35.7%) had splenic overload (Table I). The presence of the C282Y was associated with an overall higher frequency of iron overload. There was also a relatively high frequency (37.3%) of abnormal T2* values in H63D mutants both in the liver and in the spleen, and the frequency of splenic iron overload in H63D mutants was similar to that associated with the C282Y mutation.SF results were available for 152 patients. Median SF was 647 ng/mL (72-13,625), and in 138 patients (90.8%) SF was abnormally high. Overall, in 28 patients (18.2%) serum levels were higher than 1,000 ng/mL, in 80 patients (54%) they varied from 501 to 1,000 ng/mL and in 30 (20.3%) they ranged from 324...
Fanconi anemia (FA) is a rare inherited disorder clinically characterized by congenital malformations, progressive bone marrow failure and cancer susceptibility. At the cellular level, FA is associated with hypersensitivity to DNA-crosslinking genotoxins. Eight of 17 known FA genes assemble the FA E3 ligase complex, which catalyzes monoubiquitination of FANCD2 and is essential for replicative DNA crosslink repair. Here, we identify the first FA patient with biallelic germline mutations in the ubiquitin E2 conjugase UBE2T. Both mutations were aluY-mediated: a paternal deletion and maternal duplication of exons 2–6. These loss-of-function mutations in UBE2T induced a cellular phenotype similar to biallelic defects in early FA genes with the absence of FANCD2 monoubiquitination. The maternal duplication produced a mutant mRNA that could encode a functional protein but was degraded by nonsense-mediated mRNA decay. In the patient's hematopoietic stem cells, the maternal allele with the duplication of exons 2–6 spontaneously reverted to a wild-type allele by monoallelic recombination at the duplicated aluY repeat, thereby preventing bone marrow failure. Analysis of germline DNA of 814 normal individuals and 850 breast cancer patients for deletion or duplication of UBE2T exons 2–6 identified the deletion in only two controls, suggesting aluY-mediated recombinations within the UBE2T locus are rare and not associated with an increased breast cancer risk. Finally, a loss-of-function germline mutation in UBE2T was detected in a high-risk breast cancer patient with wild-type BRCA1/2. Cumulatively, we identified UBE2T as a bona fide FA gene (FANCT) that also may be a rare cancer susceptibility gene.
Congenital and acquired neutropenia are rare disorders whose frequency in pediatric age may be underestimated due to remarkable differences in definition or misdiagnosed because of the lack of common practice guidelines. Neutropenia Committee of the Marrow Failure Syndrome Group (MFSG) of the AIEOP (Associazione Italiana Emato‐Oncologia Pediatrica) elaborated this document following design and methodology formerly approved by the AIEOP board. The panel of experts reviewed the literature on the topic and participated in a conference producing a document which includes a classification of neutropenia and a comprehensive guideline on diagnosis of neutropenia. Pediatr Blood Cancer 2011;57:10–17. © 2011 Wiley‐Liss, Inc.
SummarySporadic essential thrombocythaemia (ET) is rare in paediatrics, and the diagnostic and clinical approach to paediatric cases cannot be simply copied from experience with adults. Here, we assessed 89 children with a clinical diagnosis of ET and found that 23 patients (25Á8%) had a clonal disease. The JAK2 V617F mutation was identified in 14 children, 1 child had the MPL W515L mutation, and 6 had CALR mutations. The monoclonal X-chromosome inactivation pattern was seen in six patients (two with JAK2 V617F and two with CALR mutations). The other 66 patients (74Á2%) had persistent thrombocytosis with no clonality. There were no clinical or haematological differences between the clonal and non-clonal patients. The relative proportion of ET-specific mutations in the clonal children was much the same as in adults. The higher prevalence of nonclonal cases suggests that some patients may not have myeloproliferative neoplasms, with significant implications for their treatment.
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