425 research outputs found

    Frustration in Biomolecules

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    Biomolecules are the prime information processing elements of living matter. Most of these inanimate systems are polymers that compute their structures and dynamics using as input seemingly random character strings of their sequence, following which they coalesce and perform integrated cellular functions. In large computational systems with a finite interaction-codes, the appearance of conflicting goals is inevitable. Simple conflicting forces can lead to quite complex structures and behaviors, leading to the concept of "frustration" in condensed matter. We present here some basic ideas about frustration in biomolecules and how the frustration concept leads to a better appreciation of many aspects of the architecture of biomolecules, and how structure connects to function. These ideas are simultaneously both seductively simple and perilously subtle to grasp completely. The energy landscape theory of protein folding provides a framework for quantifying frustration in large systems and has been implemented at many levels of description. We first review the notion of frustration from the areas of abstract logic and its uses in simple condensed matter systems. We discuss then how the frustration concept applies specifically to heteropolymers, testing folding landscape theory in computer simulations of protein models and in experimentally accessible systems. Studying the aspects of frustration averaged over many proteins provides ways to infer energy functions useful for reliable structure prediction. We discuss how frustration affects folding, how a large part of the biological functions of proteins are related to subtle local frustration effects and how frustration influences the appearance of metastable states, the nature of binding processes, catalysis and allosteric transitions. We hope to illustrate how Frustration is a fundamental concept in relating function to structural biology.Comment: 97 pages, 30 figure

    Probing the Pro- and Anti-Coagulant Interactions of Thrombin

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    Integration has become both a key policy objective related to the resettlement of refugees and other migrants, and a matter of significant public discussion. Coherent policy development and productive public debate are, however, both threatened by the fact that the concept of integration is used with widely differing meanings. Based on review of attempted definitions of the term, related literature and primary fieldwork in settings of refugee settlement in the UK, the paper identifies elements central to perceptions of what constitutes 'successful' integration. Key domains of integration are proposed related to four overall themes: achievement and access across the sectors of employment, housing, education and health; assumptions and practice regarding citizenship and rights; processes of social connection within and between groups within the community; and structural barriers to such connection related to language, culture and the local environment. A framework linking these domains is presented as a tool to foster debate and definition regarding normative conceptions of integration in resettlement settings. The Author [2008]. Published by Oxford University Press. All rights reserved.sch_iih21pub75

    Function and Dynamics of Thrombin by NMR

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    Enhanced conformational space sampling improves the prediction of chemical shifts in proteins.

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    A biased-potential molecular dynamics simulation method, accelerated molecular dynamics (AMD), was combined with the chemical shift prediction algorithm SHIFTX to calculate (1)H(N), (15)N, (13)Calpha, (13)Cbeta, and (13)C' chemical shifts of the ankyrin repeat protein IkappaBalpha (residues 67-206), the primary inhibitor of nuclear factor kappa-B (NF-kappaB). Free-energy-weighted molecular ensembles were generated over a range of acceleration levels, affording systematic enhancement of the conformational space sampling of the protein. We have found that the predicted chemical shifts, particularly for the (15)N, (13)Calpha, and (13)Cbeta nuclei, improve substantially with enhanced conformational space sampling up to an optimal acceleration level. Significant improvement in the predicted chemical shift data coincides with those regions of the protein that exhibit backbone dynamics on longer time scales. Interestingly, the optimal acceleration level for reproduction of the chemical shift data has previously been shown to best reproduce the experimental residual dipolar coupling (RDC) data for this system, as both chemical shift data and RDCs report on an ensemble and time average in the millisecond range

    Functional dynamics of the folded ankyrin repeats of I kappa B alpha revealed by nuclear magnetic resonance.

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    Inhibition of nuclear factor kappaB (NF-kappaB) is mainly accomplished by IkappaB alpha, which consists of a signal response sequence at the N-terminus, a six-ankyrin repeat domain (ARD) that binds NF-kappaB, and a C-terminal PEST sequence. Previous studies with the ARD revealed that the fifth and sixth repeats are only partially folded in the absence of NF-kappaB. Here we report NMR studies of a truncated version of IkappaB alpha, containing only the first four ankyrin repeats, IkappaB alpha(67-206). This four-repeat segment is well-structured in the free state, enabling full resonance assignments to be made. H-D exchange, backbone dynamics, and residual dipolar coupling (RDC) experiments reveal regions of flexibility. In addition, regions consistent with the presence of micro- to millisecond motions occur periodically throughout the repeat structure. Comparison of the RDCs with the crystal structure gave only moderate agreement, but an ensemble of structures generated by accelerated molecular dynamics gave much better agreement with the measured RDCs. The regions showing flexibility correspond to those implicated in entropic compensation for the loss of flexibility in ankyrin repeats 5 and 6 upon binding to NF-kappaB. The regions showing micro- to millisecond motions in the free protein are the ends of the beta-hairpins that directly interact with NF-kappaB in the complex

    Mortar Board: A Century of Scholars, Chosen for Leadership, United to Serve

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    Mortar Board National College Senior Honor Society has a unique place in the history of higher education and indeed in the history of the United States. Founded in 1918, with inaugural chapters at Cornell University, University of Michigan, The Ohio State University, and Swarthmore College, Mortar Board was the first national organization to honor senior college women. Before women had the right to vote in the United States, Mortar Board members were leading their society to prominence across the country. In a real sense, Mortar Board grew up with the US higher education system and grew in step with women’s emergence as recognized leaders nationally. As a result, the history of Mortar Board members and their accomplishments provides readers with a unique window into women’s issues on campuses during the twentieth century, the importance of college student organizations to the quality of student life, and the effect of world events on American college students. Accepting men into its ranks since 1975, Mortar Board has grown into a comprehensive national college senior honor society comprised of students who exemplify Mortar Board’s founding Ideals of scholarship, leadership, and service. In preparation for its centennial, volunteers poured over fifty thousand photos, memos, and files to prepare its first-ever history. The result is a beautifully accurate, sometimes humorous, and always enlightening portrayal of college life in the United States over the last one hundred years.https://docs.lib.purdue.edu/purduepress_previews/1012/thumbnail.jp

    Kinetic Enhancement of NF-KB/DNA Dissociation by IkBalpha

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