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B Roberg

Publications and source records attributed to B Roberg.

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The orientation of phosphate activated glutaminase in the inner mitochondrial membrane of synaptic and non-synaptic rat brain mitochondria.

When rat brain synaptic and non-synaptic mitochondria were incubated with [14C]glutamine, [14C]glutamate was rapidly released to the incubation medium, and the release was stimulated by phosphate, whereas [14C]glutamate accumulated very slowly in the mitochondria and independently of the addition of phosphate. The specific activity of [14C]glutamate (dpm.nmol glutamate-1) in the incubation medium quickly reached the level of added [14C]glutamine, but the specific activity of [14C]glutamate in the mitochondria was found to be only 10-15% of that level. This indicates that glutamine-derived glutamate was released directly to the incubation medium, without being mixed with a general pool of endogenous glutamate in the mitochondria. Furthermore, there was no correlation between rate of glutamine hydrolysis and the uptake of glutamine into the mitochondria, as measured by the uptake of [3H]glutamine and glutamine induced mitochondrial swelling when calcium plus phosphate or asparagine were added. Glutamine hydrolysis was also not stimulated by partial disruption of the mitochondria following sonication, which should be expected if the rate of glutamine hydrolysis were limited by glutamine uptake. In addition, glutamine hydrolysis was strongly inhibited by mersalyl which is known to be impermeable to the inner mitochondrial membrane. Moreover, it is indicated that the enzyme was not an integral membrane protein. Thus, following fractionation of a Triton X-114 extract of brain synaptosomes, a major fraction of both the protein, as measured by immunoblot technique, and the enzyme activity were detected in the water phase. Our results therefore indicate that the whole molecule of phosphate activated glutaminase is externally localized in the inner mitochondrial membrane.

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Glutamine transport in brain mitochondria.

Gln is transported into rat brain synaptic and non-synaptic mitochondria by a protein catalyzed process. The uptake is significantly higher in synaptic than in non-synaptic mitochondria. The transport is inhibited by the amino acids Glu, Asn and Asp, and by the TCA cycle intermediates succinate, malate and 2-OG. The inhibition by 2-OG is counteracted by AOA and is therefore assumed to be due to transamination of 2-OG, whereby Glu is formed. This presumes that Glu also binds to an inhibitory site on the matrix face of the inner membrane. The transport is complex and cannot be explained by the simple uniport mechanism which has been proposed for renal (Schoolwerth and LaNoue, 1985), and liver mitochondria (Soboll et al., 1991). Thus, Gln transport is stimulated by respiration and by the proton electrochemical gradient. Since it is indicated that both the neutral Gln zwitterion and the Gln anion are transported, there are probably different uptake mechanisms, but not necessarily different carriers. Gln may be transported by an electroneutral mechanism as a proton compensated anion, as well as electrophoretically as a zwitterion with a proton, and probably also by diffusion as a zwitterion. The properties of the brain mitochondrial Gln uptake mechanisms are also not identical with those of a purified renal Gln transporter. It is possible that the Gln transport is controlled by more than one protein, which may be situated on distinct species in a heterogeneous mitochondrial population. Since Gln is assumed to participate in energy production as well as in the synthesis of nucleic acid components and proteins in brain mitochondria, the control of Gln uptake in these organelles may be important.

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