Person: Chittenden, Thomas
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Publication Proteomic Analysis and Identification of Cellular Interactors of the Giant Ubiquitin Ligase HERC2
(American Chemical Society, 2014) Galligan, Jeffrey T.; Martinez-Noel, Gustavo; Arndt, Verena; Hayes, Sebastian; Chittenden, Thomas; Harper, J. Wade; Howley, PeterHERC2 is a large E3 ubiquitin ligase with multiple structural domains that has been implicated in an array of cellular processes. Mutations in HERC2 are linked to developmental delays and impairment caused by nervous system dysfunction, such as Angelman Syndrome and autism-spectrum disorders. However, HERC2 cellular activity and regulation remain poorly understood. We used a broad proteomic approach to survey the landscape of cellular proteins that interact with HERC2. We identified nearly 300 potential interactors, a subset of which we validated binding to HERC2. The potential HERC2 interactors included the eukaryotic translation initiation factor 3 complex, the intracellular transport COPI coatomer complex, the glycogen regulator phosphorylase kinase, beta-catenin, PI3 kinase, and proteins involved in fatty acid transport and iron homeostasis. Through a complex bioinformatic analysis of potential interactors, we linked HERC2 to cellular processes including intracellular protein trafficking and transport, metabolism of cellular energy, and protein translation. Given its size, multidomain structure, and association with various cellular activities, HERC2 may function as a scaffold to integrate protein complexes and bridge critical cellular pathways. This work provides a significant resource with which to interrogate HERC2 function more deeply and evaluate its contributions to mechanisms governing cellular homeostasis and disease.
Publication Cell types differ in global coordination of splicing and proportion of highly expressed genes
(Nature Publishing Group, 2016) Trakhtenberg, Ephraim F.; Pho, Nam; Holton, Kristina; Chittenden, Thomas; Goldberg, Jeffrey L.; Dong, LingshengBalance in the transcriptome is regulated by coordinated synthesis and degradation of RNA molecules. Here we investigated whether mammalian cell types intrinsically differ in global coordination of gene splicing and expression levels. We analyzed RNA-seq transcriptome profiles of 8 different purified mouse cell types. We found that different cell types vary in proportion of highly expressed genes and the number of alternatively spliced transcripts expressed per gene, and that the cell types that express more variants of alternatively spliced transcripts per gene are those that have higher proportion of highly expressed genes. Cell types segregated into two clusters based on high or low proportion of highly expressed genes. Biological functions involved in negative regulation of gene expression were enriched in the group of cell types with low proportion of highly expressed genes, and biological functions involved in regulation of transcription and RNA splicing were enriched in the group of cell types with high proportion of highly expressed genes. Our findings show that cell types differ in proportion of highly expressed genes and the number of alternatively spliced transcripts expressed per gene, which represent distinct properties of the transcriptome and may reflect intrinsic differences in global coordination of synthesis, splicing, and degradation of RNA molecules.
Publication Functional classification analysis of somatically mutated genes in human breast and colorectal cancers
(Elsevier BV, 2008) Chittenden, Thomas; Howe, Eleanor A.; Culhane, Aedin; Sultana, Razvan; Taylor, Jennifer M.; Holmes, Chris; Quackenbush, JohnA recent study published by Sjoblom and colleagues performed comprehensive sequencing of 13,023 human genes and identified mutations in genes specific to breast and colorectal tumors, providing insight into organ-specific tumor biology. Here we present a systematic analysis of the functional classifications of Sjoblom’s “CAN” genes, a subset of these validated mutant genes that identify novel organ-specific biological themes and molecular pathways associated with diseasespecific etiology. This analysis links four somatically mutated genes associated with diverse oncological types to colorectal and breast cancers through established TGF-β1 regulated interactions, revealing mechanistic differences in these cancers and providing potential diagnostic and therapeutic targets.
Publication Addendum: Shear-induced Notch-Cx37-p27 axis arrests endothelial cell cycle to enable arterial specification
(Nature Publishing Group UK, 2018) Fang, Jennifer S.; Coon, Brian G.; Gillis, Noelle; Chen, Zehua; Qiu, Jingyao; Chittenden, Thomas; Burt, Janis M.; Schwartz, Martin A.; Hirschi, Karen K.Publication Shear-induced Notch-Cx37-p27 axis arrests endothelial cell cycle to enable arterial specification
(Nature Publishing Group UK, 2017) Fang, Jennifer S.; Coon, Brian G.; Gillis, Noelle; Chen, Zehua; Qiu, Jingyao; Chittenden, Thomas; Burt, Janis M.; Schwartz, Martin A.; Hirschi, Karen K.Establishment of a functional vascular network is rate-limiting in embryonic development, tissue repair and engineering. During blood vessel formation, newly generated endothelial cells rapidly expand into primitive plexi that undergo vascular remodeling into circulatory networks, requiring coordinated growth inhibition and arterial-venous specification. Whether the mechanisms controlling endothelial cell cycle arrest and acquisition of specialized phenotypes are interdependent is unknown. Here we demonstrate that fluid shear stress, at arterial flow magnitudes, maximally activates NOTCH signaling, which upregulates GJA4 (commonly, Cx37) and downstream cell cycle inhibitor CDKN1B (p27). Blockade of any of these steps causes hyperproliferation and loss of arterial specification. Re-expression of GJA4 or CDKN1B, or chemical cell cycle inhibition, restores endothelial growth control and arterial gene expression. Thus, we elucidate a mechanochemical pathway in which arterial shear activates a NOTCH-GJA4-CDKN1B axis that promotes endothelial cell cycle arrest to enable arterial gene expression. These insights will guide vascular regeneration and engineering.