Skip to content

Author

B. Callewaert

2 papers indexed here

We haven’t gathered this author’s papers yet. Follow them and we’ll fetch their work.

Not the right person? Other researchers publish under this name.

Review Open access Jul 2026

Characterization of the genotypic and phenotypic spectrum of TCF7L2-related neurodevelopmental disorder (TRND).

PURPOSE TCF7L2 (OMIM:602228; HGNC:11641) is a transcription factor and critical effector of the Wnt/β-Catenin pathway. In 2021, 11 pediatric patients with mono-allelic predicted loss-of-function (pLOF) TCF7L2 variants and syndromic features were observed. Characterization of patients with pLOF TCF7L2 variants and neurodevelopmental features - herein referred to as TCF7L2-related neurodevelopmental disorder (TRND) - is urgently needed. METHODS We leveraged multiple methods (GeneMatcher, DECIPHER, literature review, public/private repositories) to identify an international cohort of 76 patients with pLOF TCF7L2 variants and neurodevelopmental features and phenotypically characterized them. We also retrospectively searched for an independent cohort of adults with pLOF TCF7L2 variants (n = 11) from 60,000+ PennMedicine BioBank (PMBB) patients. RESULTS Among 76 patients with pLOF TCF7L2 variants, speech delay (95.3%), craniofacial dysmorphisms (73.3%), ophthalmologic conditions (65.5%), autism (62.1%), and orthopedic abnormalities (52.6%) were most commonly observed. Phenotypic differences did not cluster by variant type or genomic locus. Among PMBB patients, an association of nominal significance with type 2 diabetes with renal manifestations (OR = 5.8; p-value = 0.03) was detected, warranting further investigation. CONCLUSIONS This represents the most comprehensive characterization to date of TRND, a novel neurodevelopmental disorder, defining its genotypic and phenotypic spectrum. We opened a Simons Searchlight natural history study (https://www.simonssearchlight.org/research/what-we-study/tcf7l2/) to enhance understanding of this condition.

Sally Nijim, Mimi Kim, Melissa Denish et al. · 1 citation
Jun 2026

RBMX functional retrocopy safeguards brain development in a species-dependent context.

It is demonstrated that RBMX and RBMXL1 share protein and RNA partners and act redundantly in brain development, with RBMXL1 buffering the impact of RBMX deficiency and establishing RBMXL1 as a functional paralog of RBMX that is likely buffering deleterious variation in a context- and dosage-dependent manner.

P. Tilliole, C. Mattausch, Peggy Tilly et al. · 0 citations