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Biomedical subjects

J A Lees

Publications and source records attributed to J A Lees.

At least 19 recordsLinked to original sources

Surgical treatment of severe autistic regression in childhood epilepsy.

We report 2 children with partial epilepsy who manifested social and language regression and partial recovery after surgical treatment. One child had seizures since the first 2 weeks of life, caused by a right temporal dysembryoplastic neuroepithelial tumor and regression in the latter part of the first year; seizures were relieved and some functions were recovered after temporal lobe resection at 12 months of age. The second child developed epilepsy at 3 years 3 months, and between 5 years 9 months and 6 years 1 month he became aphasic (Landau-Kleffner syndrome) and lost social functioning, manifesting a very severe behavior disorder. He exhibited a significant improvement in communication, social functioning, and behavior after left multiple subpial transections. Both children manifested evidence of subclinical seizure activity in both temporal lobes. Their clinical picture was one of combined language and autistic regression, and the autistic features demonstrated a clear response to surgical treatment. We suggest that in pediatric epilepsy surgical programs, autistic regression should prompt urgent investigation if drug treatment is not effective.

Autistic Disorder

Specific regulation of E2F family members by cyclin-dependent kinases.

The transcription factor E2F-1 interacts stably with cyclin A via a small domain near its amino terminus and is negatively regulated by the cyclin A-dependent kinases. Thus, the activities of E2F, a family of transcription factors involved in cell proliferation, are regulated by at least two types of cell growth regulators: the retinoblastoma protein family and the cyclin-dependent kinase family. To investigate further the regulation of E2F by cyclin-dependent kinases, we have extended our studies to include additional cyclins and E2F family members. Using purified components in an in vitro system, we show that the E2F-1-DP-1 heterodimer, the functionally active form of the E2F activity, is not a substrate for the active cyclin D-dependent kinases but is efficiently phosphorylated by the cyclin B-dependent kinases, which do not form stable complexes with the E2F-1-DP-1 heterodimer. Phosphorylation of the E2F-1-DP-1 heterodimer by cyclin B-dependent kinases, however, did not result in down-regulation of its DNA-binding activity, as is readily seen after phosphorylation by cyclin A-dependent kinases, suggesting that phosphorylation per se is not sufficient to regulate E2F DNA-binding activity. Furthermore, heterodimers containing E2F-4, a family member lacking the cyclin A binding domain found in E2F-1, are not efficiently phosphorylated or functionally down-regulated by cyclin A-dependent kinases. However, addition of the E2F-1 cyclin A binding domain to E2F-4 conferred cyclin A-dependent kinase-mediated down-regulation of the E2F-4-DP-1 heterodimer. Thus, both enzymatic phosphorylation and stable physical interaction are necessary for the specific regulation of E2F family members by cyclin-dependent kinases.

CDC2-CDC28 Kinases

E2F-4 switches from p130 to p107 and pRB in response to cell cycle reentry.

The E2F transcription factor couples the coordinate expression of cell cycle proteins to their appropriate transition points. Its activity is controlled by the cell cycle regulators pRB, p107, and p130. These bind to E2F at defined but distinct stages of the cell cycle. Using specific antisera, we have identified the DP and E2F components of each of these species. Although present at very different levels, DP-1 and DP-2 are evenly distributed among each of these complexes. In contrast, the individual E2Fs have distinctly different binding profiles. Consistent with previous studies, E2F-1, E2F-2, and E2F-3 bind specifically to the retinoblastoma protein. In each case, their expression and DNA binding activity are restricted to post-G1/S fractions. Surprisingly, E2F-1 and E2F-3 make unequal contributions to the pRB-associated and free E2F activity, suggesting that these proteins perform different cell cycle functions. Most significantly, this study showed E2F-4 accounts for the vast majority of the endogenous E2F activity. In arrested cells, E2F-4 is sequestered by the p130 protein. However, as the cells pass the G1-to-S transition, the levels of pRB and p107 increase and E2F-4 now associates with both of these regulators. Despite this, a considerable amount of E2F-4 exists as free E2F. In G1 cells, this accounts for almost all of the free activity. Once the cells enter S phase, free E2F is composed of an equal mixture of E2F-4 and E2F-1.

Antibodies, Monoclonal

The pRB-related protein p107 contains two growth suppression domains: independent interactions with E2F and cyclin/cdk complexes.

Unregulated expression of either the retinoblastoma protein (pRB) or the related protein p107 can cause growth arrest of sensitive cells in the G1 phase of the cell cycle. However, growth arrests mediated by p107 and pRB are not identical. Through structure-function and co-expression analyses we have dissected the p107 molecule into two domains that independently are able to block cell cycle progression. One domain corresponds to the sequences needed for interaction with the transcription factor E2F, and the other corresponds to the interaction domain for cyclin A or cyclin E complexes. In cervical carcinoma cell line C33A, which was previously shown to be sensitive to p107 but resistant to pRB growth suppression, only the cyclin binding domain is active as a growth suppressor. Furthermore, we show that these two independent domains are functional in untransformed mouse fibroblasts. Together, these results provide experimental evidence for the presence of two functional domains in p107 and pinpoint an important functional difference between p107 and pRB.

3T3 Cells

In vivo association of E2F and DP family proteins.

The mammalian transcription factor E2F plays an important role in regulating the expression of genes that are required for passage through the cell cycle. This transcriptional activity is inhibited by association with the retinoblastoma tumor suppressor protein (pRB) or its relatives p107 and p103. The first cDNA from the E2F family to be cloned was designated E2F-1, and multiple E2F family members have now been identified. They bind to DNA as heterodimers, interacting with proteins known as DP. Here we demonstrate that DP is also a family of polypeptides with at least two members (hDP-1 and hDP-2). Both hDP-1 and hDP-2 bind to all E2F family members in vivo, and each complex is capable of activating transcription. However, the various E2F/DP complexes display strong differences in the ability to bind to either pRB or p107 in vivo, and the specificity of pRB or p107 binding is mediated by the E2F subunit.

Amino Acid Sequence

Differential regulation of E2F transactivation by cyclin/cdk2 complexes.

The mammalian transcription factor E2F plays a critical role in the expression of genes required for cellular proliferation. To understand how E2F is regulated, we have developed a reconstituted in vitro transcription assay. Using this E2F-responsive assay, we can demonstrate that E2F-mediated transcription can be directly repressed by the tumor suppressor protein pRB. This inhibition is abolished by phosphorylation of pRB with either cyclin A/cdk2 or cyclin E/cdk2. However, these cyclin/kinase complexes exhibit differences in the ability to phosphorylate E2F. Only cyclin A/cdk2 can phosphorylate E2F effectively, and this phosphorylation abolishes its ability to bind DNA and mediate trans-activation. Thus, this in vitro transcriptional assay allows activation and inactivation of E2F transcription, and our findings demonstrate how transcriptional regulation of E2F can be linked to cell cycle-dependent activation of kinases.

CDC2-CDC28 Kinases

Distinct sub-populations of the retinoblastoma protein show a distinct pattern of phosphorylation.

Phosphorylation of the retinoblastoma protein (pRB) is assumed to regulate its growth-controlling function. Moreover, hypophosphorylated and hyperphosphorylated forms of pRB can be distinguished by virtue of the distinct affinities with which they bind to the cell nucleus. This property allows the identification of individual cell nuclei that contain pRB in one or the other form. We show here that after cells emerge from a quiescent (G0) state, conversion of their complement of pRB into a hyperphosphorylated form occurs in late G1, preceding entry into S phase by several hours. Thus, contrary to earlier reports, pRB phosphorylation is not co-ordinated with the G1-S transition and may not directly regulate it. A distinct set of phosphopeptides is found exclusively in those forms of pRB that show the loose nuclear association characteristic of the hyperphosphorylated form of pRB. Another set of phosphopeptides is found with both hypophosphorylated and hyperphosphorylated forms. This suggests the existence of distinct patterns of phosphorylation that are associated with different subsets of pRB molecules. We conclude that substantial phosphorylation of pRB exists in G1 even prior to the hyperphosphorylation point. Cyclin-dependent kinases can cause a liberation of pRB from cell nuclei in vitro. Phosphorylation by members of this kinase family is therefore likely to be directly involved in the change in nuclear affinity in vivo and the associated changes in pRB functioning.

Adenovirus E1A Proteins

Heterodimerization of the transcription factors E2F-1 and DP-1 leads to cooperative trans-activation.

The E2F transcription factor has been implicated in the regulation of genes whose products are involved in cell proliferation. Two proteins have recently been identified with E2F-like properties. One of these proteins, E2F-1, has been shown to mediate E2F-dependent trans-activation and to bind the hypophosphorylated form of the retinoblastoma protein (pRB). The other protein, murine DP-1, was purified from an E2F DNA-affinity column, and it was subsequently shown to bind the consensus E2F DNA-binding site. To study a possible interaction between E2F-1 and DP-1, we have now isolated a cDNA for the human homolog of DP-1. Human DP-1 and E2F-1 associate both in vivo and in vitro, and this interaction leads to enhanced binding to E2F DNA-binding sites. The association of E2F-1 and DP-1 leads to cooperative activation of an E2F-responsive promoter. Finally, we demonstrate that E2F-1 and DP-1 association is required for stable interaction with pRB in vivo and that trans-activation by E2F-1/DP-1 heterodimers is inhibited by pRB. We suggest that "E2F" is the activity that is formed when an E2F-1-related protein and a DP-1-related protein dimerize.

Adenovirus E2 Proteins

The retinoblastoma protein binds to a family of E2F transcription factors.

E2F is a transcription factor that helps regulate the expression of a number of genes that are important in cell proliferation. Recently, several laboratories have isolated a cDNA clone that encodes an E2F-like protein, known as E2F-1. Subsequent characterization of this protein showed that it had the properties of E2F, but it was difficult to account for all of the suggested E2F activities through the function of this one protein. Using low-stringency hybridization, we have isolated cDNA clones that encode two additional E2F-like proteins, called E2F-2 and E2F-3. The chromosomal locations of the genes for E2F-2 and E2F-3 were mapped to 1p36 and 6q22, respectfully, confirming their independence from E2F-1. However, the E2F-2 and E2F-3 proteins are closely related to E2F-1. Both E2F-2 and E2F-3 bound to wild-type but not mutant E2F recognition sites, and they bound specifically to the retinoblastoma protein in vivo. Finally, E2F-2 and E2F-3 were able to activate transcription of E2F-responsive genes in a manner that was dependent upon the presence of at least one functional E2F binding site. These observations suggest that the E2F activities described previously result from the combined action of a family of proteins.

Amino Acid Sequence

A cDNA encoding a pRB-binding protein with properties of the transcription factor E2F.

The retinoblastoma protein (pRB) plays an important role in the control of cell proliferation, apparently by binding to and regulating cellular transcription factors such as E2F. Here we describe the characterization of a cDNA clone that encodes a protein with properties of E2F. This clone, RBP3, was identified by the ability of its gene product to interact with pRB. RBP3 bound to pRB both in vitro and in vivo, and this binding was competed by viral proteins known to disrupt pRB-E2F association. RBP3 bound to E2F recognition sequences in a sequence-specific manner. Furthermore, transient expression of RBP3 caused a 10-fold transactivation of the adenovirus E2 promoter, and this transactivation was dependent on the E2F recognition sequences. These properties suggest that RBP3 encodes E2F, or an E2F-like protein.

Amino Acid Sequence

Identification of a conserved region required for hormone dependent transcriptional activation by steroid hormone receptors.

The oestrogen receptor stimulates transcription by means of at least two distinct transcriptional activation domains, TAF-1 in the N-terminal domain and TAF-2 in the hormone binding domain. Here we show that TAF-2 activity requires a region in the C-terminus of the hormone binding domain between residues 538 and 552 in the mouse oestrogen receptor which is conserved among many nuclear hormone receptors. Point mutagenesis of conserved hydrophobic and charged residues significantly reduced ligand dependent transcriptional activation but had no effect on steroid or DNA binding. Mutation of the corresponding residues in the glucocorticoid receptor also abolished transcriptional activation. We therefore propose that the conserved region may be essential for ligand dependent transcriptional activation by other members of the nuclear receptor family.

3T3 Cells

The retinoblastoma protein physically associates with the human cdc2 kinase.

The protein product (pRB) of the retinoblastoma susceptibility gene functions as a negative regulator of cell proliferation, and its activity appears to be modulated by phosphorylation. Using a new panel of anti-human pRB monoclonal antibodies, we have investigated the biochemical properties of this protein. These antibodies have allowed us to detect a pRB-associated kinase that has been identified as the cell cycle-regulating kinase p34cdc2 or a closely related enzyme. Since this associated kinase phosphorylates pRB at most of the sites used in vivo, these results suggest that this kinase is one of the major regulators of pRB. The associated kinase activity follows the pattern of phosphorylation seen for pRB in vivo. The associated kinase activity is not seen in the G1 phase but appears in the S phase, and the levels continue to increase throughout the remainder of the cell cycle.

Antibodies, Monoclonal

The retinoblastoma protein is phosphorylated on multiple sites by human cdc2.

The retinoblastoma gene product (pRB) is a nuclear phosphoprotein that is thought to play a key role in the negative regulation of cellular proliferation. pRB is phosphorylated in a cell cycle dependent manner, and studies in both actively dividing and differentiated cells suggest that this modification may be essential for cells to progress through the cell cycle. Using tryptic phosphopeptide mapping we have shown that pRB is phosphorylated on multiple serine and threonine residues in vivo and that many of these phosphorylation events can be mimicked in vitro using purified p34cdc2. Using synthetic peptides corresponding to potential cdc2 phosphorylation sites, we have developed a strategy which has allowed the identification of five sites. S249, T252, T373, S807 and S811 are phosphorylated in vivo, and in each case these sites correspond closely to the consensus sequence for phosphorylation by p34cdc2. This and the observation that pRB forms a specific complex with p34cdc2 in vivo suggests that p34cdc2 or a p34cdc2-related protein is a major pRB kinase.

Amino Acid Sequence

Characterization and colocalization of steroid binding and dimerization activities in the mouse estrogen receptor.

We have identified a region within the steroid binding domain of the mouse estrogen receptor that is required for both receptor dimerization and high affinity DNA binding. Analysis of sequences in this region revealed that a heptad repeat of hydrophobic residues was conserved in all members of the nuclear receptor superfamily. Single amino acid substitutions of residues in the N-terminal half, but not the C-terminal half, of the repeat prevented receptor dimerization. Steroid binding was abolished by point mutations in the center of the conserved region, implying that the steroid binding and dimerization domains overlap. The role of this region in steroid receptor function is discussed in relation to other models of protein dimerization and DNA binding.

Amino Acid Sequence

The effect of patterns of rumen fermentation on the response by dairy cows to dietary protein concentration.

Four groups of seven dairy cows were given hay plus high-fibre concentrates based on sugar-beet feed (hay-concentrate, 40:60 w/w) or high-starch concentrates based on flaked maize (hay-concentrate, 20:80 w/w), with a crude protein (nitrogen x 6.25) content of either 160 or 220 g/kg dry matter, over weeks 4-18 of lactation. Performance during week 3 of lactation, when all cows were fed on a standard ration, was used as a covariate. For diets with a high-fibre content, higher protein concentrations led to increases in yields of milk and milk fat, with no effect on live-weight loss. For diets with a high-starch content, higher protein concentrations did not affect milk yield or composition but resulted in an increase in live weight rather than a decrease. Diets with a high-starch content led to increased proportions of propionic acid in the rumen and increased concentrations of insulin in the blood. It is concluded that the source of carbohydrate needs to be taken into account when predicting the response to protein supply by dairy cows.

Animals

A 22-amino-acid peptide restores DNA-binding activity to dimerization-defective mutants of the estrogen receptor.

We have identified residues within the estrogen receptor that are required for dimerization and high-affinity DNA binding. A 22-amino-acid peptide encompassing these residues was sufficient to restore DNA-binding activity to a mutant receptor lacking most of the hormone-binding domain. Point mutagenesis of the fusion protein confirmed that this sequence continued to mediate dimerization in a manner similar to that within the native receptor, although its position relative to the DNA-binding domain was appreciably altered.

Amino Acid Sequence

Identification of two transactivation domains in the mouse oestrogen receptor.

We have identified two discrete transactivation domains within the mouse oestrogen receptor whose relative activities vary according to the target promoter. One domain lies within the N-terminal region and is active in the absence of oestradiol. The second domain is contained within the C-terminal portion of the protein and depends upon oestrogen binding for its activity. The location and oestrogen dependence of this domain has been confirmed using chimaeric receptors containing the Lex A DNA binding domain. Although transactivation by the C-terminal domain is dependent upon ligand binding the analysis of receptor deletion mutants has demonstrated that these two functions are not entirely coincident.

Animals