Maggie Wong

Publications

Displaying 1 - 3 of 3
  • Grönberg, D. J., Pinto de Carvalho, S. L., Dernerova, N., Norton, P., Wong, M. M. K., & Mendoza, E. (2024). Expression and regulation of SETBP1 in the song system of male zebra finches (Taeniopygia guttata) during singing. Scientific Reports, 14: 29057. doi:10.1038/s41598-024-75353-w.

    Abstract

    Rare de novo heterozygous loss-of-function SETBP1 variants lead to a neurodevelopmental disorder characterized by speech deficits, indicating a potential involvement of SETBP1 in human speech. However, the expression pattern of SETBP1 in brain regions associated with vocal learning remains poorly understood, along with the underlying molecular mechanisms linking it to vocal production. In this study, we examined SETBP1 expression in the brain of male zebra finches, a well-established model for studying vocal production learning. We demonstrated that zebra finch SETBP1 exhibits a greater number of exons and isoforms compared to its human counterpart. We characterized a SETBP1 antibody and showed that SETBP1 colocalized with FoxP1, FoxP2, and Parvalbumin in key song nuclei. Moreover, SETBP1 expression in neurons in Area X is significantly higher in zebra finches singing alone, than those singing courtship song to a female, or non-singers. Importantly, we found a distinctive neuronal protein expression of SETBP1 and FoxP2 in Area X only in zebra finches singing alone, but not in the other conditions. We demonstrated SETBP1´s regulatory role on FoxP2 promoter activity in vitro. Taken together, these findings provide compelling evidence for SETBP1 expression in brain regions to be crucial for vocal learning and its modulation by singing behavior.

    Additional information

    supplementary material
  • Wong, M. M. K., Sha, Z., Lütje, L., Kong, X., Van Heukelum, S., Van de Berg, W. D. J., Jonkman, L. E., Fisher, S. E., & Francks, C. (2024). The neocortical infrastructure for language involves region-specific patterns of laminar gene expression. Proceedings of the National Academy of Sciences of the United States of America, 121(34): e2401687121. doi:10.1073/pnas.2401687121.

    Abstract

    The language network of the human brain has core components in the inferior frontal cortex and superior/middle temporal cortex, with left-hemisphere dominance in most people. Functional specialization and interconnectivity of these neocortical regions is likely to be reflected in their molecular and cellular profiles. Excitatory connections between cortical regions arise and innervate according to layer-specific patterns. Here we generated a new gene expression dataset from human postmortem cortical tissue samples from core language network regions, using spatial transcriptomics to discriminate gene expression across cortical layers. Integration of these data with existing single-cell expression data identified 56 genes that showed differences in laminar expression profiles between frontal and temporal language cortex together with upregulation in layer II/III and/or layer V/VI excitatory neurons. Based on data from large-scale genome-wide screening in the population, DNA variants within these 56 genes showed set-level associations with inter-individual variation in structural connectivity between left-hemisphere frontal and temporal language cortex, and with predisposition to dyslexia. The axon guidance genes SLIT1 and SLIT2 were consistently implicated. These findings identify region-specific patterns of laminar gene expression as a feature of the brain’s language network.
  • De Boer, E., Ockeloen, C. W., Kampen, R. A., Hampstead, J. E., Dingemans, A. J. M., Rots, D., Lütje, L., Ashraf, T., Baker, R., Barat-Houari, M., Angle, B., Chatron, N., Denommé-Pichon, A.-S., Devinsky, O., Dubourg, C., Elmslie, F., Elloumi, H. Z., Faivre, L., Fitzgerald-Butt, S., Geneviève, D. and 30 moreDe Boer, E., Ockeloen, C. W., Kampen, R. A., Hampstead, J. E., Dingemans, A. J. M., Rots, D., Lütje, L., Ashraf, T., Baker, R., Barat-Houari, M., Angle, B., Chatron, N., Denommé-Pichon, A.-S., Devinsky, O., Dubourg, C., Elmslie, F., Elloumi, H. Z., Faivre, L., Fitzgerald-Butt, S., Geneviève, D., Goos, J. A. C., Helm, B. M., Kini, U., Lasa-Aranzasti, A., Lesca, G., Lynch, S. A., Mathijssen, I. M. J., McGowan, R., Monaghan, K. G., Odent, S., Pfundt, R., Putoux, A., Van Reeuwijk, J., Santen, G. W. E., Sasaki, E., Sorlin, A., Van der Spek, P. J., Stegmann, A. P. A., Swagemakers, S. M. A., Valenzuela, I., Viora-Dupont, E., Vitobello, A., Ware, S. M., Wéber, M., Gilissen, C., Low, K. J., Fisher, S. E., Vissers, L. E. L. M., Wong, M. M. K., & Kleefstra, T. (2022). Missense variants in ANKRD11 cause KBG syndrome by impairment of stability or transcriptional activity of the encoded protein. Genetics in Medicine, 24(10), 2051-2064. doi:10.1016/j.gim.2022.06.007.

    Abstract

    Purpose

    Although haploinsufficiency of ANKRD11 is among the most common genetic causes of neurodevelopmental disorders, the role of rare ANKRD11 missense variation remains unclear. We characterized clinical, molecular, and functional spectra of ANKRD11 missense variants.
    Methods

    We collected clinical information of individuals with ANKRD11 missense variants and evaluated phenotypic fit to KBG syndrome. We assessed pathogenicity of variants through in silico analyses and cell-based experiments.
    Results

    We identified 20 unique, mostly de novo, ANKRD11 missense variants in 29 individuals, presenting with syndromic neurodevelopmental disorders similar to KBG syndrome caused by ANKRD11 protein truncating variants or 16q24.3 microdeletions. Missense variants significantly clustered in repression domain 2 at the ANKRD11 C-terminus. Of the 10 functionally studied missense variants, 6 reduced ANKRD11 stability. One variant caused decreased proteasome degradation and loss of ANKRD11 transcriptional activity.
    Conclusion

    Our study indicates that pathogenic heterozygous ANKRD11 missense variants cause the clinically recognizable KBG syndrome. Disrupted transrepression capacity and reduced protein stability each independently lead to ANKRD11 loss-of-function, consistent with haploinsufficiency. This highlights the diagnostic relevance of ANKRD11 missense variants, but also poses diagnostic challenges because the KBG-associated phenotype may be mild and inherited pathogenic ANKRD11 (missense) variants are increasingly observed, warranting stringent variant classification and careful phenotyping.

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