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Different mutations in TBL1XR1 lead to diverse phenotypes of neurodevelopmental disorder: two case reports.

The TBL1XR1 gene (Transducin beta-like 1X-linked receptor 1) is responsible for encoding the TBL1XR1 protein, an important component of the NCoR and SMRT corepressor complexes. 48 missense variants of the TBL1XR1 gene have been reported, which are associated with various phenotypes of neurodevelopmental disorders, including West syndrome, Pierpont syndrome, and others. However, given the important role of TBL1XR1 in neurological diseases, it is still necessary to further explore the variation of TBL1XR1. In this study, we present two patients with distinct variants and phenotypes. Patient 1 exhibits global developmental delay, intellectual disability, delayed language development, and seizures. While patient 2 displays mild facial dysmorphism, significant developmental delay, feeding difficulties, and increased muscle tone. Through trio whole-exome sequencing, two novel pathogenic variants in the TBL1XR1 gene were identified: A heterozygous NM_024665.6:c.940G > T (p.Val314Phe) variant in patient 1 and a heterozygous NM_024665.6:c.1387G > T (p.Asp463Tyr) in patient 2. Discovery of these two novel variant sites expands the mutation spectrum associated with the TBL1XR1 gene.

Child

Expanding the TBL1XR1 Disease Spectrum: Generalized Dystonia Associated with a New Genetic Variant.

BACKGROUND: A growing number of identified genes increasingly reveal genetic overlaps between neurodevelopmental disorders and combined dystonia syndromes. CASE REPORT: We report a 61-year-old man with a neurodevelopmental disorder, mild ataxic signs and generalized dystonia who had been misdiagnosed with cerebral palsy for 40 years. Whole-exome sequencing identified a novel heterozygous pathogenic frameshift variant in TBL1XR1. DISCUSSION: TBL1XR1 variants are classically associated with Pierpont syndrome and autism spectrum disorder. Although movement disorders have been reported, this case suggests generalized dystonia as a possible additional manifestation. It highlights the value of retrospective genetic phenotyping and next-generation sequencing in adults with long-standing neurodevelopmental diagnoses.

Humans

Exploring the Genetic Landscape of Primary Marginal Zone Lymphoma of the Urinary Bladder.

Extranodal marginal zone B-cell lymphoma (MZL) of mucosa-associated lymphoid tissue is the most frequent primary lymphoma of the urinary bladder. Although MZLs from various anatomical sites are often associated with autoimmune disorders, infections, and site-characteristic genetic alterations, the molecular foundations and potential infectious triggers of urinary bladder MZL remain poorly understood. To elucidate the disease etiology and correlation with MZLs arising in other locations, we examined a cohort of 17 cases (11 women and 6 men) diagnosed with primary bladder MZL between 2005 and 2025. Immunohistochemical analysis confirmed the literature, with all samples testing positive for the pan B-cell markers CD20 and CD79a and negative for CD5 (except 1), cyclin D1, and SOX11. Thirteen samples exhibited secretory differentiation and displayed immunoglobulin light chain restriction (9 κ and 4 λ). No gene rearrangements in BCL2, BCL6, BCL10, IRF4, MALT1, and MYC were detected. High-throughput sequencing identified 31 pathogenic/likely pathogenic somatic mutations across 18 genes, with TBL1XR1 (n = 8), MAP2K1 (n = 4), and TNFAIP3 (n = 2) being the most frequently mutated ones. Additionally, all cases included variants of unknown significance. The sample of 1 patient tested positive for Chlamydia trachomatis, human betaherpesvirus 6B, and Epstein-Barr virus. Escherichia coli was detected in 5 samples. We provide compelling evidence that urinary bladder MZL is a point mutation-driven disease rather than gene fusion-driven disease and that E coli is present in approximately one-third of tumor biopsies. These tumors frequently harbor pathogenic mutations in genes encoding components regulating plasma cell differentiation and the pleiotropic MAPK/ERK signaling pathway. TBL1XR1, which was unexpectedly frequently mutated, is generally linked to more aggressive variants of MZL and diffuse large B-cell lymphoma; however, its prognostic significance in urinary bladder MZL remains to be determined. Comparative analysis highlighted partial overlap of urinary bladder MZL mutational profiles with those found in salivary gland MZL.

Humans

High Prevalence of Potential Molecular Therapeutic Targets in Poorly Differentiated Thyroid Carcinoma.

Poorly differentiated thyroid carcinoma (PDTC) is a rare thyroid cancer with aggressive clinical course and peculiar clinical/pathological characteristics but lacking effective therapeutic options, when surgery is not curative. We aimed at the molecular characterization of PDTC with a specific focus on the identification of potential therapeutic targets. A series of PDTC cases was selected from a multi-institutional network. Fifty-nine samples underwent wide targeted DNA and RNA next-generation sequencing (NGS) testing and immunohistochemical analysis for mismatch repair (MMR) proteins. Gene fusion analysis was enriched by 25 additional samples. Prevalence of MMR protein loss was 11.9%. The most prevalent mutations were in NRAS (25%) and TP53 (25%), mutually exclusive. TERT promoter (TERTp) mutations were detected in 19.6% of cases (10/51). NRAS-mutated cases were enriched for mutations in genes belonging to the same pathway. TP53-mutated samples lacked TERTp co-mutations, but were associated with mutations in PTEN and in genes related to MMR system and/or loss of MMR proteins. TERTp mutations were the most prevalent alterations (28%, 7/25) in a third group that lacked NRAS or TP53 mutations. Four cases harbored gene fusions, including two cases harboring the TBL1XR1::PIK3CA fusion that has never been reported in thyroid cancer, so far. In conclusion, PDTC may be genomically segregated in subgroups with specific molecular characteristics. Overall, targetable gene fusions have a prevalence of 9% (4/42). Moreover, 47% of cases are potential candidates for individualized target therapies since they harbor mutations in genes coding for potentially targetable molecules and/or have defects in the MMR system.

Humans