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Institution

Kettering University

EducationFlint, Michigan, United States
About: Kettering University is a education organization based out in Flint, Michigan, United States. It is known for research contribution in the topics: Cancer & RNA. The organization has 6842 authors who have published 7689 publications receiving 337503 citations. The organization is also known as: GMI Engineering & Management Institute & General Motors Institute.
Topics: Cancer, RNA, Antigen, DNA, Population


Papers
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Journal ArticleDOI
01 Dec 1997-Blood
TL;DR: Results showed that flavopiridol downregulates bcl-2 mRNA and bCl-2 protein expression within 24 hours, suggesting an additional mechanism of action of this new flavone which might be useful as an agent in the treatment of chronic lymphoid malignancies.

215 citations

Journal ArticleDOI
TL;DR: In this paper, the development of texture and boundary character during annealing, three-dimensional grain crystallography and crystallographically mediated grain boundary properties were incoporated into a finite temperature Monte Carlo model for grain growth.

215 citations

Journal ArticleDOI
TL;DR: It is proposed that the cellular and DNA virus capping enzymes and ATP‐dependent ligases constitute a protein superfamily evolved from a common ancestral enzyme, and more extensive similarity to the ligases than they do to the poxvirus cappers.
Abstract: mRNA capping entails GMP transfer from GTP to a 5' diphosphate RNA end to form the structure G(5')ppp(5')N. A similar reaction involving AMP transfer to the 5' monophosphate end of DNA or RNA occurs during strand joining by polynucleotide ligases. In both cases, nucleotidyl transfer occurs through a covalent lysyl-NMP intermediate. Sequence conservation among capping enzymes and ATP-dependent ligases in the vicinity of the active site lysine (KxDG) and at five other co-linear motifs suggests a common structural basis for covalent catalysis. Mutational studies support this view. We propose that the cellular and DNA virus capping enzymes and ATP-dependent ligases constitute a protein superfamily evolved from a common ancestral enzyme. Within this superfamily, the cellular capping enzymes display more extensive similarity to the ligases than they do to the poxvirus capping enzymes. Recent studies suggest that eukaryotic RNA viruses have evolved alternative pathways of cap metabolism catalysed by structurally unrelated enzymes that nonetheless employ a phosphoramidate intermediate. Comparative analysis of these enzymes, particularly at the structural level, should illuminate the shared reaction mechanism while clarifying the basis for nucleotide specificity and end recognition. The capping enzymes merit close attention as potential targets for antiviral therapy.

214 citations

Journal ArticleDOI
TL;DR: This review provides the first comprehensive overview of the underlying mechanisms that modulate SMC secretion, alignment, contraction, proliferation, apoptosis, differentiation, and migration in response to 2-dimensional laminar, pulsatile, and oscillating flow shear stresses and 3D interstitial flow.
Abstract: Understanding how vascular wall endothelial cells (ECs), smooth muscle cells (SMCs), and fibroblasts (FBs) sense and transduce the stimuli of hemodynamic forces (shear stress, cyclic strain, and hydrostatic pressure) into intracellular biochemical signals is critical to prevent vascular disease development and progression. ECs lining the vessel lumen directly sense alterations in blood flow shear stress and then communicate with medial SMCs and adventitial FBs to regulate vessel function and disease. Shear stress mechanotransduction in ECs has been extensively studied and reviewed. In the case of endothelial damage, blood flow shear stress may directly act on the superficial layer of SMCs and transmural interstitial flow may be elevated on medial SMCs and adventitial FBs. Therefore, it is also important to investigate direct shear effects on vascular SMCs as well as FBs. The work published in the last two decades has shown that shear stress and interstitial flow have significant influences on vascular SMCs and FBs. This review summarizes work that considered direct shear effects on SMCs and FBs and provides the first comprehensive overview of the underlying mechanisms that modulate SMC secretion, alignment, contraction, proliferation, apoptosis, differentiation, and migration in response to 2-dimensional (2D) laminar, pulsatile, and oscillating flow shear stresses and 3D interstitial flow. A mechanistic model of flow sensing by SMCs is also provided to elucidate possible mechanotransduction pathways through surface glycocalyx, integrins, membrane receptors, ion channels, and primary cilia. Understanding flow-mediated mechanotransduction in SMCs and FBs and the interplay with ECs should be helpful in exploring strategies to prevent flow-initiated atherosclerosis and neointima formation and has implications in vascular tissue engineering.

214 citations


Authors

Showing all 6853 results

NameH-indexPapersCitations
Joan Massagué189408149951
Chris Sander178713233287
Timothy A. Springer167669122421
Murray F. Brennan16192597087
Charles M. Rice15456183812
Lloyd J. Old152775101377
Howard I. Scher151944101737
Paul Tempst14830989225
Pier Paolo Pandolfi14652988334
Barton F. Haynes14491179014
Jedd D. Wolchok140713123336
James P. Allison13748383336
Harold E. Varmus13749676320
Scott W. Lowe13439689376
David S. Klimstra13356461682
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Performance
Metrics
No. of papers from the Institution in previous years
YearPapers
20238
202216
2021211
2020234
2019204
2018225