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Biology subjects

Weaver, K. N.

Publications and source records attributed to Weaver, K. N..

3 recordsLinked to original sources

Synergistic Variants in C-terminal Binding Protein 1 and Alkaline Phosphatase Lead to Mandibular Hypoplasia Through Impaired Wnt Signaling: An Oligogenic Model

Craniofacial malformations account for one third of all congenital anomalies. Genetic factors play a vital role, yet the list of causal genes and their mechanisms are far from complete. As part of a larger effort to sequence patients with micrognathia and Pierre-Robin sequence, we identified two candidate pathogenic missense variants in C-terminal binding protein 1 (CTBP1) along with a heterozygous early stop missense variant in alkaline phosphatase (ALPL) in a proband with mandibular hypoplasia. Ctbp1 has been shown to regulate Wnt/{beta}-Catenin signaling but it has not yet been implicated in craniofacial development. Here we generated two orthologous variants of Ctbp1 mimicking the patient variants using genome editing in mice and explored the micrognathia phenotype in combination with a previously reported Alpl null allele. Ctbp1Q148H/G238S; Alplnull/Wt complex heterozygous mutants have smaller mandibles recapitulating the human mandibular hypoplasia. We identified that a reduction in cell proliferation and active {beta}-Catenin levels could possibly account for the micrognathia phenotype in the Ctbp1; Alpl complex heterozygous. These data uncover a novel role for Ctbp1 in craniofacial development and highlight the complex genetic and molecular signaling in the pathogenesis of craniofacial malformations.

genetics↗

RNA polymerase loss by nuclear rupture drives LMNA cardiomyopathy

Localized rupture of the nuclear envelope has recently been reported in various pathologies, including cancer 1,2, neurodegenerative disease 3-5, myocardial infarction 6, as well as dilated cardiomyopathy caused by Lamin A/C gene mutations (LMNA-DCM) 7. Whether and how nuclear rupture contributes to disease remains unknown. Here, we report that nuclear rupture causes global transcriptional deficiency in a mouse model of LMNA-DCM. We observed that ruptured nuclei lost RNA polymerase II, leading to downregulation of numerous genes essential for cardiomyocyte structure and function. We identified endogenous resealing of nuclear rupture as a cardioprotective mechanism in LMNA-DCM mouse hearts. Resealing involved the ESCRT-III membrane remodeling complex recruited to nuclear rupture sites. Resealed nuclei restored transcription while inhibiting ESCRT-III activity accelerated cardiomyopathy. However, resealed nuclei were short-lived: they re-ruptured at twice the rate of resealing. A kinetic model predicted progressive accumulation of ruptured nuclei despite ongoing resealing. Consistently, a human LMNA-DCM heart contained numerous ruptured nuclei at disease presentation. These findings linked nuclear rupture to organ deterioration through global transcriptional deficiency and suggested rupture resealing as a critical modifier of nuclear rupture-associated conditions.

molecular biology↗

Genetic activation of ERK2 recapitulates core neurodevelopmental features of Rasopathy syndromes in mice

Germline pathogenic variants that activate the Ras/mitogen-activated protein kinase (MAPK) pathway cause neurodevelopmental disorders called Rasopathies. Because many affected proteins directly regulate Ras, causative mutations may alter other Ras-dependent pathways in addition to MAPK signaling. To better understand which Rasopathy sequelae result from hyperactivation of downstream MAP kinases, we engineered mice with a gain-of-function mutation in the terminal MAP kinase gene Mapk1, which encodes ERK2 and is associated with the recently described genetic syndrome MAPK1-related Rasopathy (MRR). Mapk1 mutant mice successfully modeled key aspects of the human MRR phenotype, including small stature, facial dysmorphism, and impaired cognitive function. Importantly, they recapitulated phenotypes identified in Rasopathy models with upstream Ras activation, such as neurofibromatosis type 1 (NF1): oligodendrocyte lineage defects, reactive astrogliosis, memory deficits, and hypersensitivity to sensory stimuli. These findings emphasize the importance of downstream MAPK signaling in the pathophysiology of neurocognitive symptoms observed in Rasopathy syndromes.

genetics↗