Structural and Dynamic Characterization of the Molecular Hub Early Region 1A (E1A) from Human Adenovirus
The small‐DNA human adenovirus encodes one of the most versatile molecular hubs, the E1A protein. This protein is essential for productive viral infection in human cells and a vast amount of biologically relevant data are available on its interactions with host proteins. Up to now, however, no high‐...
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Veröffentlicht in: | Chemistry : a European journal 2016-09, Vol.22 (37), p.13010-13013 |
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Zusammenfassung: | The small‐DNA human adenovirus encodes one of the most versatile molecular hubs, the E1A protein. This protein is essential for productive viral infection in human cells and a vast amount of biologically relevant data are available on its interactions with host proteins. Up to now, however, no high‐resolution structural and dynamic information on E1A is available despite its important biological role. Among the different spliced variants of E1A, two are expressed at high level in the early stage of infection. These are 243 and 289 residues isoforms. Herein, we present their NMR characterization, showing that they are both highly disordered, but also demonstrate a certain heterogeneous behavior in terms of structural and dynamic properties. Furthermore, we present the characterization of the isolated domain of the longer variant, known as CR3. This study opens the way to understanding at the molecular level how E1A functions.
Combination of 1H and 13C direct‐detected NMR experiments enabled the structural and dynamic characterization of the human adenovirus early region 1A (E1A) protein to be obtained, the first protein expressed by the virus upon infection. This represents an important step forward in the understanding of the molecular basis of its functional properties (see picture). |
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ISSN: | 0947-6539 1521-3765 |
DOI: | 10.1002/chem.201602510 |