Intrinsic and GTPase-activating protein-stimulated Ras GTPase assays.
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Biomedical subjects
Publications and source records attributed to G Bollag.
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Full-length neurofibromin is a GTPase activating protein (GAP) for the Ras proto-oncogene product. Regulation of neurofibromin activity therefore has important implications for cell growth. Neurofibromin co-purifies with tubulin when expressed in insect cells. The interaction between neurofibromin and tubulin is sensitive to the microtubule depolymerizing agent colchicine. Neurofibromin GAP activity is inhibited even at low concentrations of tubulin. However, maximal inhibition of GAP activity is only approximately 70%, suggesting that the neurofibromin-tubulin complex retains residual GAP activity. This decreased activity is reflected by a 4-fold decrease in its affinity for Ras. A truncated mutant of neurofibromin with reduced sensitivity to tubulin localizes some tubulin-binding determinants to an 80 residue segment immediately N-terminal to the GAP-related domain. Since tubulin is an abundant protein in eukaryotic cells, the tubulin-neurofibromin interaction may regulate the Ras signalling pathway.
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The neurofibromatosis 1 (NF1) gene product, neurofibromin, contains a GTPase-activating protein (GAP)-related domain, or NF1 GRD, that is able to down-regulate p21ras by stimulating its intrinsic GTPase. Since p21ras.GTP is a major regulator of growth and differentiation, mutant neurofibromins resulting from somatic mutations in the NF1 gene might interfere with ras signaling pathways and contribute to the development of tumors. We describe an amino acid substitution in the NF1 GRD, altering Lys-1423, that has occurred in three tumor types: colon adenocarcinoma, myelodysplastic syndrome, and anaplastic astrocytoma, and in one family with neurofibromatosis 1. The GAP activity of the mutant NF1 GRD is 200- to 400-fold lower than that of wild type, whereas binding affinity is unaffected. Thus, germline mutations in NF1 that cause neurofibromatosis 1 can also occur in somatic cells and contribute to the development of sporadic tumors, including tumors not associated with neurofibromatosis 1.
Since Ras proteins negotiate many signalling pathways leading to cell growth or differentiation, the regulation of Ras activity is vital to cellular health. Ras activity, which derives from a collaboration between Ras and GTP, is terminated by the GTPase activating protein (GAP)-catalyzed hydrolysis of the GTP. Hence, a simple regulatory scheme emerges: extracellular signals control Ras activity via membrane receptors and GAPs. However, the signalling scenario is probably not so simple. In looking for factors which interpret Ras activity, researchers have been led to the same factors which also regulate Ras activity, namely the GAPs. Therefore, it may be that Ras proteins are actually regulators of GAPs.
The ras-encoded p21ras proteins bind GTP very tightly, but catalyse hydrolysis to GDP very slowly. In humans, two genes encode proteins that stimulate this GTPase activity (GAP, or GTPase-activating proteins), one of relative molecular mass 120,000, referred to as p120-GAP, and another NF1-GAP, which is encoded by the neurofibromatosis type-1 gene. Both GAPs are widely expressed in mammalian tissues. Here we show that although they will both bind oncogenic mutants of p21ras, neither will stimulate their GTPase activity. NF1-GAP binds to the p21ras proteins up to 300 times more efficiently than p120-GAP. The two GAPs are inhibited to different extents by certain lipids: micromolar concentrations of arachidonate, phosphatidate and phosphatidylinositol-4,5-bisphosphate affect only NF1-GAP. This inhibition does not compete with p21ras, and lipid-inactivated NF1-GAP can still bind p21ras. We used the detergent dodecyl maltoside, which inhibits only NF1-GAP, to distinguish between the two activities in cell extracts and found both types present together in several mammalian cell lines. In contrast, GAP activity in extracts of Xenopus oocytes was not affected by dodecyl maltoside. By these criteria, the mammalian cells contain both GAP activities and the oocytes have only p120-like GAP activity. These results indicate that more than one GAP regulates p21ras in the same cell.
We propose a model for dual effector functions of the known ras GAPs p120-GAP and NF1-GAP. This model is consistent with known biological and biochemical effects of GAPs in mammalian cells, but it is clearly not a proven hypothesis, and several difficulties remain in making this model convincing. One is the apparent difference between mammalian cells and yeasts, in which GAPs do not have a demonstrable effector function. The other is the difficulty of eliminating the possibility that other effectors exist that do not have GAP activity and do not bind ras p21 sufficiently tightly to allow detection through physical association. We hope that further analysis of GAP function will clarify the roles of these proteins, allowing at least a partial description of ras action in normal and malignant mammalian cells.
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The neurofibromatosis type 1 (NF1) protein contains a region of significant sequence similarity to ras p21 GTPase-activating protein (GAP) and the yeast IRA1 gene product. A fragment of NF1 cDNA encoding the GAP-related domain (NF1 GRD) was expressed, immunoaffinity purified, and assayed for effects on N-ras p21 GTPase activity. The GTPase of wild-type ras p21 was stimulated by NF1 GRD, but oncogenic mutants of ras p21 (Asp-12 and Val-12) were unaffected, and the GTPase of an effector mutant (Ala-38) was only weakly stimulated. NF1 GRD also down-regulated RAS function in S. cerevisiae. The affinity of NF1 GRD for ras p21 was estimated to be 250 nM: this is more than 20-fold higher than the affinity of GAP for ras p21. However, its specific activity was about 30 times lower. These kinetic measurements suggest that NF1 may be a significant regulator of ras p21 activity, particularly at low ras p21 concentrations.
The termination signal that limits transcription through the early region of bacteriophage T3 (T3Te) has been cloned and sequenced. The nucleotide sequence of T3Te is identical with that of T7Te, with the exception of a single G to U substitution in the 3' tail of the terminated transcript, and addition of an AC to the loop in the terminator stem-loop, enlarging the loop to six residues. Previous studies of the properties of T3Te have shown that this site is rho independent and is highly efficient for termination in vivo, but is used poorly in vitro during transcription with purified Escherichia coli RNA polymerase. In contrast, the equivalent site in bacteriophage T7 (T7Te) is an efficient termination signal both in vivo and in vitro. However, T3Te becomes an efficient termination site in vitro in the presence of preparations of tau factor. This factor also alters the sites of RNA chain termination found in vitro at T3Te. Transcripts formed in the presence of tau are several nucleotides shorter than those produced with RNA polymerase alone, and have 3' termini that are almost identical with transcripts found in vivo. These latter results are similar to our earlier findings with T7Te, and suggest that other rho independent terminators may act with transcription termination factors in vivo.
A hybrid receptor has been constructed that is composed of the extracellular domain of the human insulin receptor fused to the transmembrane and cytoplasmic domains of the bacterial aspartate chemoreceptor. This hybrid protein can be expressed in rodent (CHO) cells and displays several functional features comparable to wild-type insulin receptor. It is localized to the cell surface, binds insulin with high affinity, forms oligomers, and is recognized by conformation-specific monoclonal antibodies. Although most of the expressed protein accumulates as a 180-kDa proreceptor, some processed 135-kDa receptor can be detected on the cell surface by covalent cross-linking. Expression of the hybrid receptor inhibits the insulin-activated uptake of 2-deoxyglucose by CHO cells. Thus, this hybrid is partially functional and can be processed; however, it is incapable of native transmembrane signaling. The results indicate that the intact domains of different types of receptors can retain some of the native features in a hybrid molecule but specific requirements will need to be satisfied for transmembrane signaling.
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