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Biology subjects

Chambers, K.

Publications and source records attributed to Chambers, K..

3 recordsLinked to original sources

Cellular Morphology and Motility Defects are Conserved Phenotypes of Trisomy 21 Despite Heterogeneous Adhesion Mechanisms

Down syndrome is a neurodevelopmental disorder caused by the trisomy of human chromosome 21 (T21). Down syndrome is associated with a wide range of variable clinical features, including congenital heart defects and slow wound healing; however, intellectual disability is ubiquitous and results, in part, from altered neuronal connectivity. Here, we used three sets of control and T21 human fibroblasts, and one set of human induced pluripotent stem cell (hiPSC)-derived cortical neurons, to examine whether changes in cellular morphology and motility are consistent across cell types in Down syndrome and to elucidate the underlying mechanisms. We found that fibroblast morphology is dysregulated in all T21 fibroblast lines. Using a transwell migration assay, cellular migration is decreased in two of the three T21 fibroblast lines. T21 hiPSC-derived cortical neurons also exhibit morphological defects, including a decrease in the length of the longest neurite and growth cone area. Because of these significant changes in morphology and motility in T21 cells, we examined proteins in the focal adhesion complex, which links the intracellular cytoskeleton to the extracellular matrix and directly controls these processes. Multiple proteins in the adhesion complex, including paxillin, vinculin, talin, and RACK1, are dysregulated in T21 fibroblasts and hiPSC-derived neurons, but these changes have high inter-individual variability. Taken together, these findings suggest that altered cellular morphology and motility are conserved features of Down syndrome that arise through heterogeneous alterations in adhesion networks. Thus, this work significantly contributes to the recent literature highlighting the need for personalized medicine in Down syndrome.

cell biology↗

Ras-Responsive Element Binding Protein 1 regulates survival of Group 3 medulloblastoma

Medulloblastoma (MB) is the most common malignant pediatric brain tumor, and Group 3 (G3, MYC-driven) MB has the worst prognosis. Despite advances in molecular classification, oncogenic drivers of G3 MB remain poorly defined. To identify such drivers, we profiled transcription factor expression across MB subgroups. Our analysis revealed Ras-responsive element binding protein 1 (RREB1) as one of the most highly expressed transcription factors in G3 MB. RREB1 knockdown impaired cell proliferation in vitro and prolonged survival in orthotopic xenograft models, suggesting it plays a key role in regulating tumor growth. Mechanistically, RREB1 acts by enhancing transcription of TGF-{beta} pathway genes. Upstream, RREB1 expression is controlled by c-MET signaling, and the MET inhibitor SU11274 decreased RREB1 levels and MB cell viability. Local delivery of SU11274 in tumor-bearing mice suppressed RREB1 expression and extended survival. These results establish the c-MET/RREB1 axis as a critical oncogenic regulator and a promising therapeutic target in in high-risk MB.

cancer biology↗

fmo-4 promotes longevity and stress resistance via ER to mitochondria calcium regulation in C. elegans

Flavin-containing monooxygenases (FMOs) are a conserved family of xenobiotic enzymes upregulated in multiple longevity interventions, including nematode and mouse models. Previous work supports that C. elegans fmo-2 promotes longevity, stress resistance, and healthspan by rewiring endogenous metabolism. However, there are five C. elegans FMOs and five mammalian FMOs, and it is not known whether promoting longevity and health benefits is a conserved role of this gene family. Here, we report that expression of C. elegans fmo-4 promotes lifespan extension and paraquat stress resistance downstream of both dietary restriction and inhibition of mTOR. We find that overexpression of fmo-4 in just the hypodermis is sufficient for these benefits, and that this expression significantly modifies the transcriptome. By analyzing changes in gene expression, we find that genes related to calcium signaling are significantly altered downstream of fmo-4 expression. Highlighting the importance of calcium homeostasis in this pathway, fmo-4 overexpressing animals are sensitive to thapsigargin, an ER stressor that inhibits calcium flux from the cytosol to the ER lumen. This calcium/fmo-4 interaction is solidified by data showing that modulating intracellular calcium with either small molecules or genetics can change expression of fmo-4 and/or interact with fmo-4 to affect lifespan and stress resistance. Further analysis supports a pathway where fmo-4 modulates calcium homeostasis downstream of activating transcription factor-6 (atf-6), whose knockdown induces and requires fmo-4 expression. Together, our data identify fmo-4 as a longevity-promoting gene whose actions interact with known longevity pathways and calcium homeostasis.

genetics↗