scholarly journals Induction of transcription factor AP-1 by adenovirus E1A protein and cAMP.

1989 ◽  
Vol 3 (12a) ◽  
pp. 1991-2002 ◽  
Author(s):  
U Muller ◽  
M P Roberts ◽  
D A Engel ◽  
W Doerfler ◽  
T Shenk
1991 ◽  
Vol 88 (12) ◽  
pp. 5124-5128 ◽  
Author(s):  
N. Horikoshi ◽  
K. Maguire ◽  
A. Kralli ◽  
E. Maldonado ◽  
D. Reinberg ◽  
...  

Cell ◽  
1988 ◽  
Vol 53 (6) ◽  
pp. 907-920 ◽  
Author(s):  
Warren K. Hoeffler ◽  
Robert Kovelman ◽  
Robert G. Roeder

1995 ◽  
Vol 129 (3) ◽  
pp. 779-788 ◽  
Author(s):  
R S Slack ◽  
I S Skerjanc ◽  
B Lach ◽  
J Craig ◽  
K Jardine ◽  
...  

The retinoblastoma (RB) protein is present at low levels in early mouse embryos and in pluripotent P19 embryonal carcinoma cells; however, the levels of RB rise dramatically in neuroectoderm formed both in embryos and in differentiating cultures of P19 cells. To investigate the effect of inactivating RB and related proteins p107 and p130, we transfected P19 cells with genes encoding mutated versions of the adenovirus E1A protein that bind RB and related proteins. When these E1A-expressing P19 cells were induced to differentiate into neuroectoderm, there was a striking rise in the expression of c-fos and extensive cell death. The ultrastructural and biochemical characteristics of the dying cells were indicative of apoptosis. The dying cells were those committed to the neural lineages because neurons and astrocytes were lost from differentiating cultures. Cell death was dependent on the ability of the E1A protein to bind RB and related proteins. Our results suggest that proteins of the RB family are essential for the development of the neural lineages and that the absence of functional RB activity triggers apoptosis of differentiating neuroectodermal cells.


1993 ◽  
Vol 13 (11) ◽  
pp. 7029-7035
Author(s):  
M A Ikeda ◽  
J R Nevins

The adenovirus E1A protein can disrupt protein complexes containing the E2F transcription factor in association with cellular regulatory proteins such as the retinoblastoma gene product (Rb) and the Rb-related p107 protein. Previous experiments have shown that the CR1 and CR2 domains of E1A are required for this activity. We now demonstrate that the CR2 domain is essential for allowing E1A to interact with the E2F-Rb or the E2F-p107-cyclin A-cdk2 complex. Multimeric complexes containing E1A can be detected when the CR1 domain has been rendered inactive by mutation. In addition, the E1A CR1 domain, but not the CR2 domain, is sufficient to prevent the interaction of E2F with Rb or p107. On the basis of these results, we suggest a model whereby the CR2 domain brings E1A to the E2F complexes and then, upon a normal equilibrium dissociation of Rb or p107 from E2F, the E1A CR1 domain is able to block the site of interaction on Rb or p107, thereby preventing the re-formation of the complexes.


Nature ◽  
1989 ◽  
Vol 338 (6210) ◽  
pp. 39-44 ◽  
Author(s):  
James W. Lillie ◽  
Michael R. Green

1993 ◽  
Vol 13 (12) ◽  
pp. 7267-7277 ◽  
Author(s):  
A R Fattaey ◽  
E Harlow ◽  
K Helin

The transcription factor E2F is present in independent complexes with the product of the retinoblastoma susceptibility gene, pRB, and a related gene product, p107, in association with the cyclin A-cdk2 or the cyclin E-cdk2 kinase complex. pRB and p107 can negatively regulate E2F activity, since overexpression of pRB or p107 in cells lacking a functional pRB leads to the repression of E2F activity. The products of the adenovirus E1A gene can disrupt E2F complexes and result in free and presumably active E2F transcription factor. The regions of E1A required for this function are also essential for binding to a number of cellular proteins, including pRB and p107. Through the use of a number of glutathione S-transferase fusion proteins representing different regions of E1A, as well as in vivo expression of E1A proteins containing deletions of either conserved region 1 (CR1) or CR2, we find that CR2 of E1A can form stable complexes with E2F. E1A proteins containing both CR1 and CR2 also associate with E2F, although the presence of these proteins results in the release of free E2F from its complexes. In vitro reconstitution experiments indicate that E1A-E2F interactions are not direct and that pRB can serve to facilitate these interactions. Complexes containing E1A, p107, cyclin A, and E2F were identified in vivo, which indicates that E1A may associate with E2F through either p107 or pRB. Peptide competition experiments demonstrate that the pRB-binding domain of the human E2F-1 protein can compete with the CR1 but not CR2 domain of E1A for binding to pRB. These results indicate that E1A CR1 and E2F-1 may bind to the same or overlapping sites on pRB and that E1A CR2 binds to an independent region. On the basis of our results, we propose a two-step model for the release of E2F from pRB and p107 cellular proteins.


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