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Biomedical subjects

J M Jennings

Publications and source records attributed to J M Jennings.

15 recordsLinked to original sources

Alzheimer's disease amyloid propagation by a template-dependent dock-lock mechanism.

Amyloid plaques composed of the peptide Abeta are an integral part of Alzheimer's disease (AD) pathogenesis. We have modeled the process of amyloid plaque growth by monitoring the deposition of soluble Abeta onto amyloid in AD brain tissue or synthetic amyloid fibrils and show that it is mediated by two distinct kinetic processes. In the first phase, "dock", Abeta addition to the amyloid template is fully reversible (dissociation t(1/2) approximately 10 min), while in the second phase, "lock", the deposited peptide becomes irreversibly associated (dissociation t(1/2) >> 1000 min) with the template in a time-dependent manner. The most recently deposited peptide dissociates first while Abeta previously deposited becomes irreversibly "locked" onto the template. Thus, the transition from monomer to neurotoxic amyloid is mediated by interaction with the template, a mechanism that has also been proposed for the prion diseases. Interestingly, two Abeta peptides bearing primary sequence alterations implicated in heritable Abeta amyloidoses displayed faster lock-phase kinetics than wild-type Abeta. Inhibiting the initial weak docking interaction between depositing Abeta and the template is a viable therapeutic target to prevent the critical conformational transition in the conversion of Abeta((solution)) to Abeta((amyloid)) and thus prevent stable amyloid accumulation. While thermodynamics suggest that inhibiting amyloid assembly would be difficult, the present study illustrates that the protein misfolding diseases are kinetically vulnerable to intervention.

Amino Acid Substitution↗

Signature-tagged and directed mutagenesis identify PABA synthetase as essential for Aspergillus fumigatus pathogenicity.

Signature-tagged mutagenesis (STM) is a method that has been used to screen for genes required for in vivo survival of pathogenic bacteria, but has not been used to investigate a eukaryotic pathogen in an animal model of disease. We have adapted STM to identify genes required for in vivo growth of the opportunistic fungal pathogen Aspergillus fumigatus. Using a mouse model of invasive pulmonary aspergillosis, we have isolated several mutant strains with defects in their ability to replicate in vivo. One strain unable to cause lethal infection was further characterized and found to have an insertion into the promoter of a gene (pabaA) encoding para-aminobenzoic acid synthetase, an enzyme catalyzing a late step in the biosynthesis of folate. The complete inability of this strain, and other pabaA- strains constructed in this study by targeted gene deletion, to cause lethal infection in mice confirms the importance of the folate synthesis pathway for in vivo survival of this pathogen. The successful application of STM to A. fumigatus demonstrates that in vivo genetic analysis of eukaryotic pathogens is feasible and could result in the identification of potential targets, such as para-aminobenzoic acid synthetase, for novel antifungal therapies.

Animals↗

Functional network differences in schizophrenia: a rCBF study of semantic processing.

Studies of regional cerebral blood flow in patients with schizophrenia have led to the idea that dysfunctional neurocircuitry may play a role in patients' cognitive deficits. The present PET study was designed to explore this idea by comparing the functional neural networks associated with semantic processing for patients and normal controls through structural equation modeling (path analysis). The patients showed significantly different neural interactions among frontal regions, between the frontal and temporal cortices, and between the frontal lobe and anterior cingulate than controls. These discrepancies were especially striking given there were minimal group differences in task performance. Results suggest that schizophrenia involves a neural abnormality that is evident in functional networks during cognitive performance.

Adult↗

Mapping neural interactivity onto regional activity: an analysis of semantic processing and response mode interactions.

Neuroimaging studies of cognition have typically been designed to identify brain regions that are active during a cognitive process. However, identifying how brain regions interact may be equally important. In a recent study we found that the pattern of activation associated with a semantic task differed depending on how subjects made a response, suggesting that there was an interaction between the neural systems underlying response mode and semantic processing (J. M. Jennings et al., 1997, NeuroImage 5, 229-239). This result raises two important questions, which we examined here: (1) How did the regions underlying semantic performance influence one another, or interact, to produce a different pattern of activation in each case? (2) What can be learned about the neurobiology of semantic processing when different regions are identified as a function of response? We addressed these questions using structural equation modeling. This technique produced functional network models representing the effect of different regions on each other during the semantic task for each response. A common network of regions associated with semantic processing was observed and included the left inferior frontal and left superior temporal cortices, with other regions brought into that network depending on response (e.g., right middle frontal). Moreover, changes in the influences among these regions across response condition predicted the pattern of activation found previously. These results show how an arbitrary response can affect the neural pathways associated with a cognitive process, likely due to the parallel and reentrant organization of the brain, and emphasize the importance of examining functional connections when studying cognition.

Adult↗

Age-related differences in neural activity during memory encoding and retrieval: a positron emission tomography study.

Positron emission tomography (PET) was used to compare regional cerebral blood flow (rCBF) in young (mean 26 years) and old (mean 70 years) subjects while they were encoding, recognizing, and recalling word pairs. A multivariate partial-least-squares (PLS) analysis of the data was used to identify age-related neural changes associated with (1) encoding versus retrieval and (2) recognition versus recall. Young subjects showed higher activation than old subjects (1) in left prefrontal and occipito-temporal regions during encoding and (2) in right prefrontal and parietal regions during retrieval. Old subjects showed relatively higher activation than young subjects in several regions, including insular regions during encoding, cuneus/precuneus regions during recognition, and left prefrontal regions during recall. Frontal activity in young subjects was left-lateralized during encoding and right-lateralized during recall [hemispheric encoding/retrieval asymmetry (HERA)], whereas old adults showed little frontal activity during encoding and a more bilateral pattern of frontal activation during retrieval. In young subjects, activation in recall was higher than that in recognition in cerebellar and cingulate regions, whereas recognition showed higher activity in right temporal and parietal regions. In old subjects, the differences in blood flow between recall and recognition were smaller in these regions, yet more pronounced in other regions. Taken together, the results indicate that advanced age is associated with neural changes in the brain systems underlying encoding, recognition, and recall. These changes take two forms: (1) age-related decreases in local regional activity, which may signal less efficient processing by the old, and (2) age-related increases in activity, which may signal functional compensation.

Adult↗

Cognitive subtractions may not add up: the interaction between semantic processing and response mode.

Determining the areas of brain activity associated with cognitive processing has typically relied on the use of a subtraction paradigm, which is based on the premise that the neural processes underlying behavior are additive. If the additivity assumption is valid then brain regions associated with a semantic processing task should be the same regardless of how participants make a response. To investigate this proposition, participants underwent six PET scans, in which they made semantic or letter word judgments, responding "yes" or "no" in three different modes: mouse-clicking, spoken response, or silent thought. Analyses showed an increase in regional cerebral blood flow associated with semantic processing in the left inferior frontal cortex, anterior cingulate, and right cerebellum for all three response conditions. However, there was a significant interaction: the greatest increase was observed in the mouse-click condition and the weakest change seen with silent thought. Moreover, other areas of the brain were uniquely activated for each response mode. The results indicate that different areas of the brain were recruited for semantic processing depending on how participants had to organize their responses. Implications for the additivity assumption and methods of analysis to be used in conjunction with the subtraction technique are discussed.

Adult↗

An opposition procedure for detecting age-related deficits in recollection: telling effects of repetition.

In 2 experiments, the advantages of placing automatic and consciously controlled memory processes in opposition to study age-related declines in memory performance were examined. Drawing on the common memory failure of mistakenly repeating oneself, a task was designed in which participants had to rely on conscious memory (recollection) to avoid repetition errors. Recollection proved to be severely affected by aging; older adults showed significantly more repetition errors than did younger adults, even at very short retention intervals. These results contrast sharply with the small age differences found with a standard recognition test. Moreover, L. L. Jacoby's (1991) process-dissociation procedure (Experiment 2) showed that automatic memory processes were unaffected with age and could support recognition performance in older adults. The advantages of the opposition procedure for studying memory in older adults relative to other measures are discussed.

Adolescent↗

Zinc-induced aggregation of human and rat beta-amyloid peptides in vitro.

The major pathological feature of Alzheimer's disease is the presence of a high density of amyloid plaques in the brain tissue of patients. The plaques are predominantly composed of human beta-amyloid peptide (A beta), a 39-43-mer peptide the neurotoxicity of which is related to its aggregation state. Previous work has demonstrated that certain metals that have been implicated as risk factors for Alzheimer's disease (Al, Fe, and Zn) also cause substantial aggregation of A beta. In particular, we reported that zinc cations at concentrations of > 10(-4) M dramatically accelerate the rate of A beta aggregation at physiological peptide concentrations at 37 degrees C in vitro. In the present study, we investigate the effect of Zn2+ on aggregation of radiolabeled and unlabeled human and rat A beta over a wide range of peptide concentrations in the presence and absence of salt and blocking protein. Aggregation was assayed by centrifugation and filtration using amino acid analysis, immunoassay, and gamma-counting for quantification over a wide range of concentrations of Zn2+ and A beta above and below physiological values. The results of this study demonstrate the following: (a) Radioiodinated A beta accurately tracked unlabeled A beta, (b) zinc concentrations of at least 10(-4) M were required to induce significant aggregation of A beta, and (c) rat and human A beta species were cleared from aqueous solutions by similar concentrations of zinc. These results stand in significant quantitative disagreement (approximately 100-fold in zinc concentration) with one previous study that reported significant aggregation of A beta by < 1 microM Zn2+. Differences between the present study and the latter study from another laboratory appear to result from inappropriate reliance on optical density to measure A beta concentrations and nonspecific loss of A beta to plastic in the absence of blocking protein.

Amyloid beta-Peptides↗

Evaluation of the Etest for antimicrobial spectrum and potency determinations of anaerobes associated with bacterial vaginosis and peritonitis.

One hundred ninety-seven anaerobic organisms (24 Gardnerella vaginalis, 16 Mobiluncus spp., 19 Peptostreptococcus spp., 20 Lactobacillus spp., 20 Prevotella bivia/disiens, 81 Bacteroides fragilis group, 12 Clostridium spp., and five Fusobacterium spp.) were processed by the Etest (AB Biodisk, Solna, Sweden) and a reference (Brucella blood agar) method against 10 antimicrobial agents. For the bacterial vaginosis-associated pathogens, the Etest was more reproducible and correlated acceptably with the reference agar test: within +/- 1 log2 dilution for 74.4% of Mobiluncus spp. to 96.0% for Peptostreptococcus spp. (all organisms, 83.4%). The quantitative correlation +/- 2 log2 dilution steps between test results was 94.3%. Results with B. fragilis group strains demonstrated 97.3% correlation (+/- 2 log2 dilution) with a trend toward slightly lower Etest minimum inhibitory concentrations for ampicillin-sulbactam, cefotaxime, imipenem, and clindamycin. The absolute qualitative interpretive agreement between Etest and the reference agar dilution method results was 94.4%, with only a 0.4% false-susceptible error rate. The Etest appears to be a very practical, quantitatively accurate, alternative procedure for clinical microbiology laboratories routinely testing the susceptibilities of anaerobes and, by these presented data, organisms associated with female tract infections.

Anti-Bacterial Agents↗

Automatic versus intentional uses of memory: aging, attention, and control.

In 2 experiments, the authors used a process dissociation procedure (Jacoby, 1991) to separately examine the effects of aging on automatic and consciously controlled memory processes. In Experiment 1, a group of young adults in either a full-attention or divided-attention condition were compared with a group of elderly adults on a fame judgment task. Both age and divided attention had a detrimental effect on consciously controlled memory processing but left automatic processing intact. In Experiment 2, the same age-related pattern was found using a more demanding forced-choice recognition paradigm.

Adolescent↗