Context.— Malignant peripheral nerve sheath tumor (MPNST) is a rare, often high-grade sarcoma. A small subset of MPNST shows evidence of heterologous rhabdomyoblastic differentiation, also known as malignant triton tumor (MTT). Immunohistochemical loss of histone 3 lysine 27 trimethylation (H3K27me3) has previously been described as a reliable marker for both MPNST and MTT. Objective.— To assess the loss of H3K27me3 as a potential tool for discriminating MTT from embryonal rhabdomyosarcoma (ERMS). Design.— We studied the immunohistochemical expression of H3K27me3 in 23 pediatric cases of confirmed ERMS. Of the 23 patients, 21 were male and 2 were female, with an age range of 2 months to 18 years (median, 5 years). Most of the tumors arose in the paratesticular soft tissue (n = 14), with other locations including the pelvis (n = 3), thigh (n = 2), abdomen (n = 1), orbit (n = 1), prostate gland (n = 1), and parotid gland (n = 1). All cases had characteristic morphologic features of ERMS. Results.— By immunohistochemistry, all tested cases expressed desmin (18 of 18), myogenin (20 of 20), and MyoD1 (5 of 5). More than half of the cases (12 of 23; 52%) showed loss (nuclear absence) of H3K27me3, defined as staining in less than 5% of the tumor cells. The remaining cases demonstrated some degree of partial staining with H3K27me3, ranging from 5 to 40% of the tumor cells. No significant correlation between H3K27me3 expression and clinicopathologic features was identified. Conclusions.— Loss of H3K27me3 frequently occurs in ERMS (52%) and is not reliable in distinguishing ERMS from MTT.
Rhabdomyosarcoma is the most common soft tissue sarcoma in children and adolescents, and embryonal rhabdomyosarcoma (ERMS) is the most common subtype. Previous reports have identified a wide range of genetic aberrations in ERMS. However, the clinicopathological significance of these genetic aberrations is not clear, and further integrated research is needed. To analyze correlations among clinicopathological features, molecular genetic aberrations, and prognosis, we collected 15 cases of pediatric ERMS, including complete data derived from clinicopathological features, pan-cancer targeted next-generation sequencing/OncoKids® panel, and chromosomal microarray. Patient ages ranged from 1 to 15 years (median, 6 years). Eight patients were boys, and 7 were girls. Clinical follow-up information was available for all 15 patients (follow-up duration range, 13–72 months; median, 41 months). Twelve (80.0
Context.— Pediatric soft tissue tumors are one of the areas of pediatric pathology that frequently generate consult requests. Evolving classification systems, ancillary testing methods, new treatment options, research enrollment opportunities, and tissue archival processes create additional complexity in handling these unique specimens. Pathologists are at the heart of this critical decision-making, balancing responsibilities to consider expediency, accessibility, and cost-effectiveness of ancillary testing during pathologic examination and reporting. Objective.— To provide a practical approach to handling pediatric soft tissue tumor specimens, including volume considerations, immunohistochemical staining panel recommendations, genetic and molecular testing approaches, and other processes that impact the quality and efficiency of tumor tissue triage. Data Sources.— The World Health Organization Classification of Soft Tissue and Bone Tumors, 5th edition, other recent literature investigating tissue handling, and the collective clinical experience of the group are used in this manuscript. Conclusions.— Pediatric soft tissue tumors can be difficult to diagnose, and evaluation can be improved by adopting a thoughtful, algorithmic approach to maximize available tissue and minimize time to diagnosis.
Sertoli-Leydig cell tumors (SLCTs) are currently classified into 3 molecular subtypes: DICER1-mutant (younger patient age), FOXL2-mutant, and DICER1/FOXL2-wildtype. However, it is not clear whether all pediatric SLCTs are DICER1-mutant molecular subtypes and whether other molecular genetic aberrations besides DICER1 are involved in the pathogenesis and prognosis of these tumors. We studied comprehensive data for 8 cases of pediatric SLCTs, including clinicopathological features, pan-cancer–targeted next-generation sequencing/OncoKids panel, and chromosomal microarray analysis, to further analyze the correlation among clinicopathological features, molecular genetic aberrations, and prognosis. The ages of the patients ranged from 4 to 16 years (median, 14 y). Seven cases were moderately differentiated, and one was poorly differentiated with heterologous mesenchymal elements. Two cases had heterologous epithelium or retiform elements. Follow-up was available for all 8 patients (median, 49.5 mo). Seven patients were alive without evidence of recurrence or metastasis, and only case 5 developed metastases (synchronous bilateral pulmonary tumors with rhabdomyosarcomatous differentiation). All 8 tumors were found to harbor somatic hotspot DICER1 mutations, and 5 patients carried germline DICER1 mutations (2 of them had the phenotype of DICER1 syndrome). Together with recent studies, the DICER1 mutation frequency is 100% in pediatric SLCTs (n=27, age≤16 y). Copy number alterations were detected in 3 tumors; the only recurrent copy number alterations was the gain of whole chromosome 6 in case 5 and case 8. This is the first report describing clinicopathological features and molecular alterations in pediatric SLCTs. Our results demonstrate that all pediatric SLCTs belong to the DICER1-mutant molecular subtype, highlighting that somatic hotspot DICER1 mutation detection has high sensitivity (100%) for the auxiliary diagnosis of pediatric SLCTs (age ≤16 y). Some pediatric SLCTs harbor molecular genetic aberrations other than DICER1 mutation, and their significance needs further study.
Background:DICER1-associated tumors are heterogeneous and affect several organs. DICER1-associated primary intracranial sarcoma is associated with histone H3 trimethylation on lysine 27 (H3K27me3) loss in nucleus by immunohistochemistry.Methods:We explored the H3K27me3 immunostaining pattern in other DICER1-associated tumors. Twelve tumors from eleven patients with confirmed DICER1 mutations (sporadic and germline) data from a pancancer next-generation sequencing panel, and four tumors of pleuropulmonary blastoma (PPB) were retrieved from our database and stained with anti-H3K27me3 antibody.Results:The H3K27me3 expression in the nucleus showed heterogeneous mosaic loss in neoplastic Sertoli cell components in three of the five cases of moderately to poorly differentiated Sertoli-Leydig cell tumors. Among two tumors of DICER1-associated primary intracranial sarcoma, one showed complete loss of H3K27me3 in all neoplastic cells, whereas the other showed mosaic loss in the sarcomatous spindle cells. One DICER1-associated tumor with epithelial and mesenchymal differentiation, including pulmonary blastoma and PPB, showed mosaic loss of glandular epithelial and mesenchymal components. Four cases of type II PPB and a single case of type III PPB showed a similar mosaic loss of H3K27me3 staining restricted to large spindle cell components. All other components in all tumors-including Leydig cells; the areas of epithelial, cartilaginous, and rhabdomyomatous differentiation; and all cells of the remaining three cases (one papillary thyroid carcinoma and two cases of PPB type I)-demonstrated retained H3K27me3 staining.Conclusions:H3K27me3 expression is not universally lost in DICER1-associated tumors and thus is not predictive of DICER1 mutation status. The mosaic regional loss of H3K27me3 immunostaining is consistent in PPB type II and III, which can be a helpful diagnostic marker for these tumors and suggests a similarity to DICER1-associated intracranial sarcoma.
BACKGROUND:Embryonal sarcoma of the liver (ESL) is a rare mesenchymal tumor most common in childhood; the optimal treatment approach is uncertain. The clinical features and outcomes of patients with ESL enrolled in a Children's Oncology Group (COG) clinical trial that evaluated a risk-based strategy for treating soft tissue sarcomas in patients aged <30 years were evaluated. METHODS:This subset analysis included patients with ESL enrolled in COG study ARST0332. Central review of records, pathology, and imaging confirmed the diagnosis, presenting features, and surgery extent and complications. All patients received dose-intensive ifosfamide/doxorubicin chemotherapy, with cycle timing dependent on surgery and radiotherapy. Tumor resection occurred before study entry or after four cycles of chemotherapy; radiotherapy for residual tumor was optional. RESULTS:Thirty-nine eligible/evaluable patients with ESL were analyzed. All tumors were >10 cm in diameter; four were metastatic. Tumor resection was performed upfront in 23 and delayed in 16. Positive surgical margins (n = 6) and intraoperative tumor rupture (n = 6) occurred only in upfront resections. Eight patients received radiotherapy. Estimated 5-year event-free and overall survival were 79% (95% confidence interval [CI], 65%-93%) and 95% (95% CI, 87%-100%), respectively. Positive margins increased the local recurrence risk. One of 13 patients with documented hemorrhagic ascites and/or tumor rupture developed extrahepatic intra-abdominal tumor recurrence. CONCLUSIONS:The treatment strategy used in ARST0332 achieved favorable outcomes for patients with ESL despite a substantial proportion having high-risk disease features. Deferring tumor resection until after neoadjuvant chemotherapy may decrease the risk of intraoperative tumor rupture and improve the likelihood of adequate surgical margins.
Purpose: The aim of this paper is to better define the clinical features and outcomes of young patients with non-rhabdomyosarcoma soft tissue sarcoma (NRSTS) with regional and distant lymph node (LN) metastases treated in a standardised fashion, we analysed LN involvement in COG study ARST0332, which evaluated a risk-based treatment strategy for young patients with all stages of NRSTS.Patients and methods: Patients <30 years old with newly diagnosed NRSTS and LN metasta-ses enrolled on ARST0332 were studied. Regional LN sampling was required for those with epithelioid sarcoma, clear cell sarcoma or clinically/radiographically enlarged LNs. Tumour features and extent of pre-enrolment resection determined treatment, including chemotherapy, radiotherapy, and delayed surgery. Recommendations for LN metastases included LN dissec-tion at the time of primary tumour resection and dose-adapted radiotherapy based on extent of LN resection.Results: Twenty of 529 eligible and evaluable ARST0332 patients with NRSTS had LN me-tastases; epithelioid sarcoma had the highest incidence (18%, 5 of 28). Pre-treatment imaging identified LN enlargement in 19 of 20 patients; 1 had no pre-treatment LN imaging. At 6.9 years median follow-up for surviving patients, 5-year overall survival was 85.7% (95% CI: 33.4%, 97.9%) for seven patients with isolated LN metastases and 15.4% (95% CI: 2.5%, 38.8%) for 13 patients with additional extranodal metastases. LN recurrence occurred in only one patient without LNs sampled at initial diagnosis.Conclusion: LN metastases occur in about 4% of paediatric/young adult NRSTS, are limited to a few histologic subtypes, and are rare in patients who did not have clinical or imaging ev-idence of lymphadenopathy, suggesting that biopsies of non-enlarged LNs are not necessary to identify occult involvement. Patients with isolated LN metastases have high 5-year overall sur-vival (w85%) and should be treated with curative intent.Clinicaltrials.gov Registry No.: NCT00346164. 2022 Elsevier Ltd. All rights reserved.
PDF file - 714K, Supplementary Figure 1 Two-gene combinations from the 50-gene F1/F2 classifier with >98% classification efficiency in the Williamson data set. Supplementary Figure 2 Thirteen two-gene combinations with >99% classification efficiency, identified from exhaustive analysis of top 2000 genes. Supplementary Figure 3 Gene dyads with classification efficiency >95% identified through exhaustive search of all possible combinations. Supplementary Figure 4 Detection of gene expression is comparable for fresh-frozen and paraformaldehyde-fixed material with nCounter. Supplementary Figure 5 Gene expression detected in each case with the Williamson F1/F2 metagene nCounter Code set. Supplementary Table 1 Four-gene combinations with ≥ 99% accuracy. Supplementary Table 2 Dyad classifiers from T-test ranking of Williamson data set with ≥ 98% accuracy, applied to Davicioni data. Supplementary Table 3 T-test dyad classifier genes found in F1/F2 metagenes (L) and F1/F2 metagene probes excluded from dyad pairs (R). Supplementary Table 4 Top-scoring classifiers from exhaustive search of 1.5 billion gene pairs from Williamson data set, also applied to Davicioni and Exon data. Supplementary Table 5 Tumor sample characteristics. Supplementary Table 6 Genes in nCounter set. Supplementary Table 7 PCA Scores by tumor sample for nCounter Data. Supplementary Table 8 CA Loadings for nCounter Data. Supplementary Table 9 Top-scoring nCounter dyad classifiers. Supplementary Table 10 Top gene combinations - Lung cancer data
Sertoli-Leydig cell tumors (SLCTs) are currently classified into 3 molecular subtypes: DICER1 -mutant (younger patient age), FOXL2 -mutant, and DICER1/FOXL2 -wildtype. However, it is not clear whether all pediatric SLCTs are DICER1 -mutant molecular subtypes and whether other molecular genetic aberrations besides DICER1 are involved in the pathogenesis and prognosis of these tumors. We studied comprehensive data for 8 cases of pediatric SLCTs, including clinicopathological features, pan-cancer-targeted next-generation sequencing/OncoKids panel, and chromosomal microarray analysis, to further analyze the correlation among clinicopathological features, molecular genetic aberrations, and prognosis. The ages of the patients ranged from 4 to 16 years (median, 14 y). Seven cases were moderately differentiated, and one was poorly differentiated with heterologous mesenchymal elements. Two cases had heterologous epithelium or retiform elements. Follow-up was available for all 8 patients (median, 49.5 mo). Seven patients were alive without evidence of recurrence or metastasis, and only case 5 developed metastases (synchronous bilateral pulmonary tumors with rhabdomyosarcomatous differentiation). All 8 tumors were found to harbor somatic hotspot DICER1 mutations, and 5 patients carried germline DICER1 mutations (2 of them had the phenotype of DICER1 syndrome). Together with recent studies, the DICER1 mutation frequency is 100% in pediatric SLCTs (n=27, age≤16 y). Copy number alterations were detected in 3 tumors; the only recurrent copy number alterations was the gain of whole chromosome 6 in case 5 and case 8. This is the first report describing clinicopathological features and molecular alterations in pediatric SLCTs. Our results demonstrate that all pediatric SLCTs belong to the DICER1 -mutant molecular subtype, highlighting that somatic hotspot DICER1 mutation detection has high sensitivity (100%) for the auxiliary diagnosis of pediatric SLCTs (age ≤16 y). Some pediatric SLCTs harbor molecular genetic aberrations other than DICER1 mutation, and their significance needs further study.
Rhabdomyosarcoma (RMS) is a well-described cancer in Li-Fraumeni syndrome, resulting from germline TP53 pathogenic variants (PVs). RMS exhibiting anaplasia (anRMS) are associated with a high rate of germline TP53 PVs. This study provides updated estimates of the prevalence of TP53 germline PVs in RMS (3%) and anRMS (11%) from a large cohort (n = 239) enrolled in five Children's Oncology Group (COG) clinical trials. Although the prevalence of germline TP53 PVs in patients with anRMS in this series is much lower than previously reported, this prevalence remains elevated. Germline evaluation for TP53 PVs should be strongly considered in patients with anRMS.
As the classification of kinase-driven spindle cell tumors continues to evolve, we describe the first series of pediatric mesenchymal tumors harboring FGFR1 gene fusions that share histologic overlap with infantile fibrosarcoma and "NTRK-rearranged" spindle cell neoplasms. Herein, we present three cases of FGFR1-rearranged pediatric mesenchymal tumors, including one case with FGFR1::PARD6B gene fusion and two cases with FGFR1::EBF2 gene fusion. The tumors involved infants ranging from 3 to 9 months in age with a male-to-female ratio of 2:1. All tumors involved the deep soft tissue of the gluteal, pelvic, or perirectal region. Histologically, the tumors comprised a cellular spindle cell neoplasm with primitive stellate cells, focal myxoid stroma, focal epithelioid features, no necrosis, and occasional mitotic figures (2-6 per 10 high-power field). By immunohistochemistry, the neoplastic cells focally expressed CD34 but lacked expression of S100 protein, SMA, desmin, myogenin, MyoD1, pan-TRK, and ALK. These three cases, including a case with long-term clinical follow-up, demonstrate that FGFR1 fusions occur in a subset of newly described pediatric kinase-driven mesenchymal tumors with locally aggressive behavior. Importantly, knowledge of these genetic alterations in this spectrum of pediatric tumors is key for diagnostic and targeted therapeutic purposes.
CONTEXT.—:Rhabdomyosarcoma, the most common soft tissue sarcoma of children, is currently classified into the following 4 subtypes: embryonal rhabdomyosarcoma, alveolar rhabdomyosarcoma, spindle cell/sclerosing rhabdomyosarcoma, and pleomorphic rhabdomyosarcoma, based on recent molecular genetic knowledge and morphologic features.OBJECTIVE.—:To highlight the most recent advances of molecular genetic alterations, and to familiarize pathologists with most recent genotype and phenotype correlation in rhabdomyosarcoma.DATA SOURCES.—:Data were derived from the World Health Organization Classification of Soft Tissue and Bone Tumors, fifth edition, recently published literature (PubMed), and clinical practice experience.CONCLUSIONS.—:Current classification has been significantly impacted by genotype and phenotype correlation, especially with PAX-FOXO1 fusion-positive rhabdomyosarcoma versus fusion-negative rhabdomyosarcoma, and with the emergence of 3 distinct new subtypes of spindle cell/sclerosing rhabdomyosarcoma. Although all rhabdomyosarcomas were considered a single diagnostic entity in the past, they are now considered to be a group of histologically similar but biologically diverse entities because their clinical behavior and underlying molecular alterations dramatically differ. This review outlines recent molecular genetic developments, corresponding morphologic features, and current challenges faced by pathologists in daily practice.
Pediatric sarcomas constitute one of the largest groups of childhood cancers, following hematopoietic, neural, and renal lesions. Partly because of their diversity, they continue to offer challenges in diagnosis and treatment. In spite of the diagnostic, nosologic, and therapeutic gains made with genetic technology, newer means for investigation are needed. This article reviews emerging technology being used to study human neoplasia and how these methods might be applicable to pediatric sarcomas. Methods reviewed include single cell RNA sequencing (scRNAseq), spatial multi-omics, high-throughput functional genomics, and clustered regularly interspersed short palindromic sequence-Cas9 (CRISPR-Cas9) technology. In spite of these advances, the field continues to be challenged by a dearth of properly annotated materials, particularly from recurrences and metastases and pre- and post-treatment samples.
Background. An early and accurate diagnosis of liver antibody-mediated rejection (AMR) followed by timely intervention is important for clinical management but remains challenging. The aim of this study was to assess the clinicopathologic characteristics and outcomes of late acute AMR in pediatric liver transplantation recipients. Methods. We performed a retrospective review of 739 ABO-identical/compatible allograft liver biopsies from 199 pediatric transplantation recipients. Results. Based on Banff 2016 AMR criteria, 3 recipients fulfilled the criteria for definite for late acute AMR, 2 met the criteria for suspicious for AMR, and 2 were indeterminate for AMR. We further assessed the clinicopathologic characteristics of these 7 patients. All 7 patients had at least 1 biopsy with a histopathologic pattern compatible with acute AMR. Additionally, we observed accompanied moderately to markedly dilated portal/central veins and endothelialitis disproportionate to the degree of bile duct injury in all 7 patients; periportal/perivenular hepatocyte necrosis was seen in 6 of 7 patients; and arteritis was seen in 3 of 7 patients. In each case, microvascular C4d deposition was present in at least 1 biopsy. Posttransplant donor specific anti-HLA antibodies were detected in 5 patients. Two of 7 patients were retransplanted, and 2 died after developing refractory AMR. The remaining 5 patients were alive with stable graft function at a median follow-up of 4.1 years. Conclusions. Our data suggest that acute AMR in pediatric liver grafts is rare, can develop late, and may be associated with graft loss or patient death. The recurrent histopathologic findings of moderately to markedly dilated portal/central veins and endothelialitis disproportionate to the degree of bile duct injury are features that appear unique to pediatric acute AMR of liver grafts.
Rhabdomyosarcoma, the most common soft tissue sarcoma in childhood, has challenged and intrigued soft tissue pathologists ever since the original descriptions. Once based on the identification of rhabdomyoblastic cells with elongate eosinophilic cytoplasm, the diagnosis has evolved to include tumors composed only of primitive mesenchymal cells but now relies heavily on immunohistochemical stains for desmin, myogenin, and MyoD. Rhabdomyosarcomas show a variety of histological patterns, giving rise to classifications that have included embryonal, alveolar, botryoid, pleomorphic, spindle cell, and sclerosing subtypes. These have been linked to prognosis and treatment assignment in the past, but that concept has been superseded by the identification of PAX3-FOXO1 or PAX7-FOXO1 fusions. Fusion testing results are more predictive of outcome and have become standard practice in clinical management. However, high risk tumors with alveolar histology or metastatic disease continue to resist oncologic treatment.
In 1983 under the leadership of Dr. Daria Haust, the Pediatric Pathology Club (PPC; forerunner of the Society for Pediatric Pathology [SPP]), promulgated bylaws that included recognition of the special expertise required in pediatric pathology. This standard followed formal discussion that began as early as 1970, suggesting that special certification should be pursued, and the idea was vetted by the PPC in 1980 following a special report by Dr. Benjamin Landing and a letter to PPC members. Under the leadership of Dr. William Donnelly in 1984, a relationship between the SPP and the American Board of Pathology (ABPath) began in order to receive recognition of pediatric pathology as a special discipline. As a result, a test committee chaired by Dr. Jerald Schenken began preparing question categories and examples for ABPath examination. These efforts culminated in the first pediatric pathology subspecialty examination, held in Atlanta, Georgia on November 20, 1990. With this article we wish to detail the history of ABPath pediatric pathology board certification from its beginnings to the current time.