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Biomedical subjects

B Feuer

Publications and source records attributed to B Feuer.

5 recordsLinked to original sources

Cooperative transformation of NIH3T3 cells by G alpha12 and Rac1.

The heterotrimeric G-protein, G alpha12, together with the closely-related G alpha13, are members of the G12 class of alpha-subunits important in mediating the signaling from seven transmembrane domain-spanning receptors. Recent evidence implicating both G alpha12 and G alpha13 in the activation of signaling pathways involving members of the RHO gene family led us to examine the role of Rac1, RhoA and Cdc42Hs in the transforming properties of G alpha12. Asparagine 17 (Asn 17) dominant inhibitory mutants of Rac1, and to a lesser extent RhoA, block focus forming ability of the GTPase-deficient mutant of G alpha12 (G alpha12 Leu 229) in NIH3T3 cells. In turn, wild-type G alpha12 cooperates well with Rac1 Val 12 but not with RhoA Leu 63 mutant in transforming NIH3T3 cells. Interestingly, the morphology of foci induced by G alpha12 and RhoA mutants are strikingly similar and is distinct from those displayed by Rac1 Val 12 mutant. The fact that G alpha12's ability to induce mitogenesis in NIH3T3 cells is not significantly perturbed by C3 ribosyltransferase suggested that RhoA does not play a major role in G alpha12-induced mitogenic events. Activated mutant of Rac1 has previously been demonstrated to stimulate the activity of the stress-induced c-Jun N-terminal kinase/stress-activated protein kinases (JNK/SAPKs). Transient co-transfection of Rac1 Val 12 mutant with the wild-type G alpha12 in COS7 cells leads to the further activation of an exogenously expressed hemagglutinin(HA)-tagged JNK. Furthermore, the cooperation between G alpha12 and Rac1 in cellular transformation is correlated with their ability to stimulate transcription from c-fos serum response element (SRE).

3T3 Cells↗

Amplitude of rippling in the P beta phase of dipalmitoylphosphatidylcholine bilayers.

We present x-ray diffraction results of dipalmitoylphosphatidylcholine (DPPC) multilayers in three structural phases. Using pure DPPC, precision temperature control, and high angular resolution methods, we have discovered splitting of the first diffraction order due to multilayering in the P(beta) phase. This splitting permits us to calculate the amplitude of ripples in this phase. The amplitude is large enough to suggest a structural mechanism for rippling.

Lipid Bilayers↗

Luminescence and binding studies on tRNA-Phe.

The phenylalanine transfer RNA of baker's yeast (tRNA(Phe)) contains a base Y of unknown molecular structure next to the anticodon triplet. Since the base Y fluoresces at room temperature (lambda(max) = 431 nm), its emission properties offer a unique tool for studying conformational and binding properties of tRNA(Phe). The results obtained by these experiments include the following: (1) The quantum yield of fluorescence of Y in tRNA(Phe) (phiF) is 0.07 +/- 0.01 at high Mg(2+) concentrations (>10(-2)M) and about half that at 10(-3)M or less, indicating a [Mg(2+)]-dependent conformational change of the anticodon loop. (2) The fluorescence of Y isolated from tRNAPhe (Y(+)) is red-shifted by 15 nm compared to Y in tRNA(Phe) which suggests a stacked (more hydrophobic) environment for Y in the intact anticodon loop. phiF of Y(+) is 0.035. (3) The solvent isotope effect phiF(D(2)O)/phiF(H(2)O) is 1.5 for tRNA(Phe) and 1.9 for Y(+) i.e., Y in tRNA is still hydrated. (4) The temperature dependence of phiF in a polar glass shows that quenching occurs only at temperatures at which the glass has sufficiently low viscosity to permit solvent shell relaxation in the excited state. The low-temperature (80 degrees K) fluorescence is blue shifted (lambda(max) = 409 nm) and the phosphorescence has a decay time of 1.5 seconds, a threshold at 392 nm and a spectral shape like that of guanine. (5) In the presence of 10(-2)M Mg(2+) penta-uridylate, which contains the codon triplet, a small blue shift and a decrease in phiF are observed. This shift can be used to establish the formation of a binary complex between the codon and the anticodon with an association constant of 4 x 10(2)M(-1), approximately. A similar complex is formed with poly-uridylate but not with poly-cytidylate. In the absence of Mg(2+) the binary complex is not formed.

Binding Sites↗