The sensory core and the medieval foundations of early modern perceptual theory.
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Biomedical subjects
Publications and source records attributed to W Epstein.
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Transient and catabolite repression with changes in intracellular concentrations of cyclic adenosine 3',5-monophosphate is produced by glycerol and by glucose-6-phosphate in a strain with a partial deletion of the structural gene for enzyme I of the phosphoenolpyruvate:sugar phosphotransferase system.
A K+ -stimulated ATPase in membranes of Escherichia coli has been identified as an activity of the Kdp system, and ATP-driven K+ transport system. Three characteristics support association of the ATPase with the Kdp system: (i) ATPase and Kdp transport are both repressed by growth in media containing high concentrations of K+; (ii) the ATPase and Kdp system accept only K+ as substrate, neither requires Na+ nor accepts Rb+ as a substrate; (iii) the affinity of the ATPase and that of th Kdp system for K+ is similar and is altered by mutations in the structural genes of the Kdp system. Discovery of an ATPase associated with a bacterial transport system suggests functional similarities with the ATP-driven transport systems of animal cells.
The three structural proteins of the ATP-driven Kdp potassium transport system of Escherichia coli [Rhoads, D. B., Waters, F. B. & Epstein, W. (1976) J. Gen. Physiol. 67, 325-341] have been identified and found to be located in the inner membrane. The high-affinity repressible Kdp system in one of four potassium transport systems in E. coli. The Kdp proteins were identified both in growing cells as well as in heavily UV-irradiated cells infected with transducing phages carrying the kdp operon. Although all previously identified ATP-driven transport systems of Gram-negative bacteria have been shown to contain a periplasmic protein component, no evidence was found for such a component or for an outer membrane component of the Kdp system. The molecular weights of the three inner membrane proteins, KdpA, KdpB, and KdpC, were determined to be 47,000, 90,000 and 22,000, respectively.
Kinetics of K exchange in the steady state and of net K uptake after osmotic upshock are reported for the four K transport systems of Escherichia coli: Kdp, TrkA, TrkD, and TrkF. Energy requirements for K exchange are reported for the Kdp and TrkA systems. For each system, kinetics of these two modes of K transport differ from those for net K uptake by K-depleted cells (Rhoads, D. B. F.B. Walters, and W. Epstein. 1976. J. Gen. Physiol. 67:325-341). The TrkA and TrkD systems are inhibited by high intracellular K, the TrkF system is stimulated by intracellular K, whereas the Kdp system is inhibited by external K when intracellular K is high. All four systems mediate net K uptake in response to osmotic upshock. Exchange by the Kdp and TrkA systems requires ATP but is not dependent on the protonmotive force. Energy requirements for the Kdp system are thus identical whether measured as net K uptake or K exchange, whereas the TrkA system differs in that it is dependent on the protonmotive force only for net K uptake. We suggest that in both the Kpd and TrkA systems formation of a phosphorylated intermediate is necessary for all K transport, although exchange transport may not consume energy. The protonmotive-force dependence of the TrkA system is interpreted as a regulatory influence, limiting this system to exchange except when the protonmotive force is high.
The kdp genes code for a high-affinity and repressible K+ transport system. The regulation and organization of the kdp genes were analyzed by studies of constitutive mutants and of strains in which bacteriophage lambda is integrated into the kdp genes. The polar effects of lambda integration demonstrate that three of the kdp genes form an operon, kdpABC, read from A to C. The kdpD gene is a separate transcription unit and is the site of mutations making expression of the kdp genes partially constitutive. The constitutive mutants are dominant to kdpD+ in diploids. These findings, the fact that kdpD mutations identified previously are Kdp-, and the existence of intracistronic complementation between some kdpD mutations indicate that the kdpD gene product is an oligomeric positive regulator of the kdp genes. Deletions extending clockwise from kdp as far as the gltA locus were isolated from strains with bacteriophage lambda integrated into kdpD. Plaque-forming transducing lambda phages carrying the kdpABC operon were isolated.
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1. The K+ requirment of Escherichia coli is only partially fulfilled by Rb+. The molar growth yield on Rb+ was about 5% of that on K+ and the growth rate in Rb+-supplemented media is lower thatn in K+ influx by any of the four K+ transport systems of E. coli. The high-affinity Kdp system (Km = 2 micron) is poorly traced by 86Rb+. It discriminates against a 86Rb+ tracer at least 1000-fold. The two moderate affinity systems, the high-rate TrkA system (Km = 1.5 mM) and the moderate rate TrkD system (Km = 0.5 mM), discriminate against a 86Rb+ tracer by approximately 10-fold and 25-fold, respectively. 86Rb+ is preferred by the low-rate TrkF system and overestimates its K+ influx by 40%.
Energy coupling for three K+ transport systems of Escherichia coli K-12 was studied by examining effects of selected energy sources and inhibitors in strains with either a wild type or a defective (Ca2+, Mg2+)-stimulated ATPase. This approach allows discrimination between transport systems coupled to the proton motive force from those coupled to the hydrolysis of a high energy phosphate compound (ATP-driven). The three K+ transport systems here studied are: (a) the Kdp system, a repressible high affinity (Km=2 muM) system probably coded for by four linked Kdp genes; (b) the Trka system, a constitutive system with high rate and modest affinity (Km=1.5 mM) defined by mutations in the single trkA gene; and (c) the TrkF system, a nonsaturable system with a low rate of uptake (Rhoads, D.B., Waters, F.B., and Epstein, W. (1976) J. Gen. Physiol. 67, 325-341). Each of these systems has a different mode of energy coupling: (a) the Kdp system is ATP-driven and has a periplasmic protein component; (b) the TrkF system is proton motive force-driven; and (c) the TrkA system is unique among bacterial transport systems described to date in requiring both the proton motive force and ATP for activity. We suggest that this dual requirement represents energy fueling by ATP and regulation by the proton motive force. Absence of ATP-driven systems in membrane vesicles is usually attributed to the requirement of such systems for a periplasmic protein. This cannot explain the failure to demonstrate the TrkA system in vesicles, since this system does not require a periplasmic protein. Our findings indicate that membrane vesicles cannot couple energy to ATP-driven transport systems. Since vesicles can generate a proton motive force, the inability of vesicles to generate ATP or couple ATP to transport (or both) must be invoked to explain the absence of TrkA in vesicles. The TrkF system should function in vesicles, but its very low rate may make it difficult to identify.
Shape and slant judgments of rotated or frontoparallel ellipses were elicited from three groups of 10 subjects. A masking stimulus was introduced to control processing time. Backward masking trials were presented with interstimulus intervals of 0,25 and 50 msec. Reduction of processing time altered shape judgments in the direction of projective shape and slant judgments in the direction of frontoparallelness. This finding is consistent with the shape-slant invariance hypothesis. In order to study the effects of processing load, one group of subjects was given prior knowledge of the kind of judgment to be made on each trial, one group had no prior knowledge, and a third group made both judgments on each trial. The effects of the processing load manipulation were interpreted in terms of the role of attention in perceptual encoding. Consistent with previous findings, allocation of attention did not affect perceptual encoding.
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Patients with end-stage renal disease secondary to SLE with or without preceding nonrenal disease manifestations, should have dialysis and/or transplantation offered to them. There is no increased risk of allograft rejection. Neither does there appear to be excessive risk of recrudescence of SLE disease activity.
The nature of the interaction of glucose with toluene-treated cells of Escherichia coli leading to inhibition of adenylate cyclase was examined by the use of analogues. Those analogues with variations of the substituents about carbon atoms 1 or 2 (e.g. alpha-methylglucoside or 2-deoxyglucose) are inhibitory, and they are also substrates of the phosphoenolpyruvate-dependent sugar phosphotransferase system. Analogues with changes in other parts of the molecule (e.g. 3-O-methylglucose or galactose), L-glucose and several disaccharides and pentoses, do not inhibit adenylate cyclase and are not substrates of the phosphotransferase system. This correlation suggests some functional relationship between the adenylate cyclase and phosphotransferase systems. Further studies were done with mutants defective in glucose enzymes II of the phosphotransferase system (designated GPT and MPT); these two activities are measured by phosphorylation of alpha-methyl-glucoside and 2-deoxyglucose, respectively. The wild-type parent phosphorylates both analogues, and both inhibit adenylate cyclase. In the GPT- mutant, alpha-methylglucoside does not inhibit adenylate cyclase and is not phosphorylated, while 2-deoxyglucose is inhibitory and phosphorylated. In the GPT- MPT- double mutant, adenylate cyclase activity is present, but neither alpha-methylglucoside nor 2-deoxyglucose inhibits adenylate cyclase, and neither sugar is phosphorylated. These studies demonstrate that glucose inhibition of adenylate cyclase in toluene-treated cells requires an interaction of this sugar with either the GPT or mpt enzyme II of the phosphotransferase system.
The product of the recA gene of E. coli has been identified by labeling proteins synthesized in UV-treated cells after infection with specialized transducing phages carrying the recA gene. Following infection of UV-treated cells by lambda precA, which carries the recA+ gene, a major protein with a molecular weight of 43,000 is detected on polyacrylamide gels containing sodium dodecyl sulfate. This protein is also made after infection of suppressing hosts by lambda precA99, which carries an amber recA- mutation, but is not synthesized after infection of nonsuppressing hosts by this transducing phage. A spontaneous recatrevertant of lambda preca99 induces synthesis of this protein after infection of a nonsuppressing host. The product of the recA gene is a soluble protein found in a complex with a molecular weight of approximately 150,000 after mild detergent lysis of cells.
Analysis of K transport mutants indicates the existence of four separate K uptake systems in Escherichia coli K-12. A high affinity system called Kdp has a Km of 2 muM, and Vmax at 37 degrees C of 150 mumol/g min. This system is repressed by growth in high concentrations of K. Two constitutive systems, TrkA and TrkD, have Km's of 1.5 and 0.5 mM and Vmax's of 550 and 40 at 37 and 30 degrees C, respectively. Mutants lacking all three of these saturable systems take up K slowly by a process, called TrkF, whose rate of transport is linearly dependent on K concentration up to 105 mM. On the whole, each of these systems appears to function as an independent path for K uptake since the kinetics of uptake when two are present is the sum of each operating alone. This is not true for strains having both the TrkD and Kdp systems, where presence of the latter results in K uptake which saturates at a K concentration well below 0.1 mM. This result indicates some interaction between these systems so that uptake now has the affinity characteristic of the Kdp system. All transport systems are able to extrude Na during K uptake. The measurements of cell Na suggest that growing cells of E. coli have very low concentrations of Na, considerably lower than indicated by earlier studies.
Six patients with intradermal metastases of malignant melanoma were treated with intralesional bacile Calmette-Guérin (BCG). Four patients showed a good response with regression of injected, and in some cases, uninjected lesions, whereas two developed metastatic viscereal disease and died. Three of the six patients had complete regression of all lesions, and one exhibited complete regression of untreated lesions. All remain free of disease. The fourth patient had complete regression of injected and of some untreated lesions, but developed widespread dissemination and died. Preliminary experiments suggest the presence of a blocking factor in his sera which abrogates the lymphocyte stimulation in response to melanoma antigens. Three of four responders (i.e. those patients in whom treated lesions decreased in size by more than 50% for more than 1 month) showed a dramatic increase in lymphocyte stimulation to melanoma antigens. All responders (four out of four) had a marked increase to phytohemagglutinin (PHA), whereas non responders had no increase in lymphocyte stimulation either to melanoma antigens or PHA. Two of four responders showed inhibition of leukocyte migration to melanoma antigens before BCG, and two of four responders were positive after BCG. Of the nonresponders, one was positive and one negative before BCG; this remained the same after. There was a marked increase in active rosette forming cells in all responders and in one of the two nonresponders. Histopathologic studies at 3 hours, 6 hours, 24 hours, 14 days, and 4 weeks after BCG showed a definite sequence of events occurred, progressing from 1) inflammatory cell response at the periphery of the lesion, disruption of melanogenesis, extensive dumping of pigment from melanoma cells, proceeding to actual cell death at 24 hours, to 2) macrophages containing melanin and granulomas replacing tumor by 2 weeks. These studies suggest that BCG activates both specific and nonspecific immune responses. Thus, in vitro parameters of cellular immunity, including migration inhibitory factor production and inhibition of leukocyte migration, are affected by intralesional BCG, and some, particularly the lymphocyte stimulation and rosette test, seem to correlate with the clinical response of the patients.