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Depressed or demented: common CNS drug targets?!

A body of evidence emerging in antidepressant and antidementia research has revealed a convergence of molecular events known to regulate neuronal plasticity in learning and memory with molecular actions of drugs for the treatment of depression. Many antidepressants are reported to have positive impact on learning and memory. These include agents acting through monoaminergic neurotransmitter systems, non-monoaminergic transmitter systems, and hormones. On the other hand, agents that appear to have memory-enhancing or antidementia value are frequently found to exhibit antidepressant activity in patients and animal depression models. It is becoming clear that the comorbidity of depression and dementia does not occur by chance, but rather is an inevitable consequence of pathologic relationships between the conditions. Molecular mechanisms and cascades that underlie memory may be shared by mood regulation and are vulnerable to stress and injuries. This review focuses on recent findings regarding effects of a variety of agents on dementia and depression and their common molecular mechanisms as well as their differences. A better understanding of the key underlying molecular components whose changed activities have dramatic influences on mood and cognition may lead to the development of novel and more effective therapeutic agents for the treatment of depression and dementia. In this review, some of the recent findings that suggest novel therapeutic strategies are also highlighted.

Animals↗

Plasticity of catecholaminergic neurons in aged rat brain: reinnervation and functional recovery after axotomy.

Regenerative growth at the lesion site, reinnervation of a target nucleus and functional manifestations of recovery were studied in aged (20 and 30 months old) rats subjected to long-term transection of catecholaminergic (CA) fibers which contact and influence neurons of the supraoptic nucleus (SON). Small bilateral knife cuts were placed stereotaxically just caudal and medial to the SON. CA histofluorescence, induced by formaldehyde-glutaraldehyde (FAGLU) or aluminum-formaldehyde (ALFA) methods, was examined in hypothalamus at 2, 14, 21 and 60 days postsurgically. Water consumption, and urine volume and osmolality, were monitored presurgically, and through survival times. Subtotal CA denervation in the SON, and typical axonal transmitter "pile-up" at the lesion site, were evident two days after surgery. Among these degenerative profiles, which persisted for up to three weeks, fine-sized new fibers were apparent at the lesion, beginning between 2 and 14 days, and persisting throughout the period studied. At 21 days, and progressively thereafter, SON neurons were rimmed with fluorescent varicosites. Water consumption initially was depressed, but returned to presurgical mean levels by nine days. Urine volume returned to normal by 32 days. Urine osmolality showed a recovery by approximately three weeks. These functional parameters rebounded to levels higher than presurgical means among 20 month old, but not 30 month old, rats beyond 6 weeks survival, concurrent with a morphological hyperinnervation. The results reaffirm morphological regeneration, and support reinnervation and functional recovery, which extend considerably into the aging process.

Afferent Pathways↗

Human interleukin-2-activated adherent natural killer cells recognize a conserved antigen found on tumor cells and protozoan parasites.

Plastic adherent interleukin-2-activated human natural killer (NK) cells (ALAK) lyse many different histological types of tumor target cells. In order to effect their function as cytotoxic mediators of innate immunity, ALAKs may 'recognize' antigen(s) of protozoan parasites, select virus-infected cells and they may release certain cytokines in response to bacterial antigens. In the present study, we demonstrate that CD3-/CD56dim/CD16dim/monoclonal antibody 5C6bright human ALAKs bind to an antigenic determinant on tumor cells independent of target cell H-2 allotype expression. The conserved antigen was originally obtained from the protozoan Tetrahymena pyriformis, however it is also located on the membranes of many ALAK-sensitive tumor cells. The sequence of this protein, i.e. NK target antigen/NKTag, was previously deduced from cDNA. One ALAK cognate determinant of NKTag was identified by inhibition of cytotoxicity using NKTag-derived synthetic peptides. Biotinylated synthetic peptide [amino acids (aa) 58-74] bound to ALAKs, and synthetic peptides corresponding to this sequence inhibited ALAK lysis of U937 target cells. Inhibition effects of peptide binding were nonreversible. To determine the requirements for recognition by ALAKs of this antigenic determinant, the cognate peptide aa 55-74 was truncated to 17-, 14-, 10-, 7- and 6-mer lengths and tested for inhibition of cytotoxicity. All inhibited except the 6-mer. A possible mechanism of peptide inhibition of cytotoxicity following ALAK binding to an antigenic determinant was a requirement for recognition of one anchor peptide (arginine) and receptor occupancy by a minimum of five to six additional amino acids. In antibody-dependent cell-mediated cytotoxicity experiments, synthetic peptide (aa 68-74) inhibited ALAK killing of anti-H-2d-sensitized P815 targets. This same peptide also inhibited conventional lysis of nonsensitized P815 and IM-9 targets. However, the cognate synthetic peptide (aa 58-74) did not inhibit conjugate formation between ALAKs and U937 target cells. These data demonstrate that ALAK binding to a soluble monomeric peptide inhibited cytotoxicity. Peptide binding appeared to negatively regulate cytotoxicity, and the inhibitory effects following peptide binding were nonreversible. Effector:target cell conjugate formation was not affected by peptide binding, however, recognition was required because inhibition was specific for the amino acid sequence of the synthetic peptide.

Adjuvants, Immunologic↗

Expression of phosphoenolpyruvate carboxylase and phosphoenolpyruvate carboxylase kinase genes. Implications for genotypic capacity and phenotypic plasticity in the expression of crassulacean acid metabolism.

In plants with crassulacean acid metabolism (CAM), dark CO2 uptake is mediated by phosphoenolpyruvate carboxylase (PEPC), an enzyme that can be regulated at transcriptional and posttranslational levels. Reversible phosphorylation of PEPC is catalyzed by a dedicated PEPC kinase, which in turn is regulated at the transcriptional level over the 24-h cycle in CAM plants. PEPC kinase controls the day/night regulation of PEPC during the CAM cycle, thus facilitating plasticity for optimizing CO2 uptake under different environmental conditions. To understand the importance of PEPC kinase in relation to its target PEPC in terms of CAM performance, the expression of the genes encoding the two enzymes was investigated in four species of Clusia that have photosynthetic patterns ranging from C3 photosynthesis to constitutive CAM. By linking changes in the expression of PEPC and PEPC kinase to day/night patterns of leaf gas exchange, organic acid, and soluble sugar contents under different environmental conditions, the genetic and metabolic limitations to CAM plasticity were assessed. The results indicate that PEPC expression is a major factor underpinning the genotypic capacity for CAM and that PEPC kinase expression does not appear to limit CAM. The day/night regulation of Ppck transcript abundance was found to be a consequence of CAM and the day/night cycling of associated metabolites, rather than the primary controlling factor for the temporal separation of carboxylation processes.

Amino Acid Sequence↗

Olfactory development in invertebrates. On the scent of central developmental issues.

Invertebrate olfactory systems offer many advantages for cellular and molecular studies of development and for functional studies of developmental plasticity. For example, nematodes have chemical senses that can be studied using genetic approaches. Arthropods, which include insects and crustacea, have the advantages that certain neurons can be reliably identified from one individual to another, and that olfactory receptor neurons are located on peripheral appendages and thus can be manipulated independently of their brain targets even very early in development. Among the insects, olfactory learning can be displayed and used as a basis for studying olfactory plasticity in bees; genes are especially tractable in flies; individual growth cones can be visualized in the grasshopper embryo; and receptor neurons and glomeruli of known olfactory specificity and behavioral significance can be followed during early development in moths. In addition, many insect nervous systems are amenable to organ culture and dissociated-cell culture, opening the door to experimental studies of cellular interactions that can not be performed in situ. Recent research in the moth Manduca sexta attempts to identify the nature of the interactions between olfactory sensory axons, olfactory neurons of the brain, and glial cells in the creation of the array of glomeruli that underlie olfaction in the adult. Results indicate that timing of the ingrowth of olfactory receptor axons is critical for normal glomerulus development, that a subset of axons expresses a fasciclin II-like molecule that may play a role in guidance of their growth, and that glial cells must surround developing glomeruli in order to stabilize the 'protoglomerular' template made by receptor axon terminals. Moreover, glial cells are dye-coupled to each other early in glomerulus development and gradually become uncoupled. Electrical activity in neurons is not necessary for glomerulus formation; and some intercellular interactions, perhaps involving soluble factors, appear to involve tyrosine phosphorylation. In sum, a detailed picture is emerging of the cellular interactions that lead to the formation of glomeruli.

Animals↗

The current management of tibial fractures: are clinical guidelines effective?

BACKGROUND: The production of clinical guidelines is increasing and will continue to do so with the introduction of clinical governance. In 1997, the British Orthopaedic Association (BOA) and the British Association of Plastic Surgeons (BAPS) published joint guidelines on the management of open tibial fractures. It is not known whether these guidelines reached their target audience, or indeed influenced clinical practice. METHODS: We determined the effectiveness of these guidelines by sending a postal questionnaire survey to 172 orthopaedic surgeons. RESULTS: Only 57% of consultants were aware of the guidelines, 70% of registrars and 25% of staff grades. Less than 29% of orthopaedic consultants would choose to consult the plastic surgical team pre-operatively in the management of an open tibial fracture and only 43% would seek plastic surgical involvement at all. The primary aim of increasing multidisciplinary communication has not been achieved. CONCLUSIONS: The awareness of, and adherence to, these guidelines is sub-optimal. This clearly has implications for both the future management of open tibial fractures and the further production of guidelines.

Compartment Syndromes↗

Plasticity and the functional reorganization of the human brain.

Stroke is a leading cause of long-term disability in adults worldwide. The mechanisms of impairment and recovery are not well understood, but there is growing interest in the role that central nervous system reorganization might play. Functional magnetic resonance imaging and transcranial magnetic stimulation allow the non-invasive study of the working human brain, and studies in humans suggest that functionally relevant adaptive changes occur in cerebral networks following stroke. An understanding of how these changes influence the recovery process will facilitate the development of novel therapeutic techniques that are based on neurobiological principles and which are designed to minimise impairment in appropriately targeted patients suffering from stroke.

Brain↗

Plastic changes in Ara C-treated and "transplanted" coeruleocerebellar cultures.

Locus coeruleus axons project to cerebellar cortex in coeruleocerebellar cultures, where they make functional contacts, and also appear as fine fibers in the outgrowth zones. The predominant catecholamine of locus coeruleus neurons in culture is dopamine. When coeruleocerebellar cultures are exposed to cytosine arabinoside to destroy cerebellar granule cells and functionally compromise glia, there is a resultant increase of Purkinje cell survival and a sprouting of Purkinje cell recurrent axon collaterals, plus an increase of catecholaminergic axons accompanied by a doubling of tissue dopamine content. If such reorganized cultures are transplanted with granule cells and glia, a second round of plastic changes ensues in which the Purkinje cell population and the recurrent axon collaterals are reduced to control levels, but catecholaminergic axons and dopamine content remain increased. The maintenance of catecholaminergic axons does not appear to depend on the persistence of target neurons.

Animals↗

Local protein synthesis and its role in synapse-specific plasticity.

Long-lasting forms of learning-related synaptic plasticity require transcription and yet occur in a synapse-specific manner, indicating that there are mechanisms to target the products of gene expression to some but not other synapses of a given cell. Studies in a variety of systems have indicated that mRNA localization and synaptically regulated local protein synthesis constitute one such mechanism. The cellular and molecular mechanisms underlying RNA localization and regulated translation in neurons are just beginning to be delineated, and appear to be similar to those used in asymmetric non-neuronal cells.

Animals↗

Discovering hidden candidate plastic-degrading enzymes: Combined multi-omics and machine learning strategy.

Plastic pollution poses a major threat to the stability of natural ecosystems as well as human health. Microbial enzymes have long been considered a potential resource for targeted biodegradation but, except for a few successful cases, the discovery of efficient enzymes has proved challenging. Aiming to accelerate the process, we propose an approach combining metagenomics, metatranscriptomics and semi-supervised learning that selects promising plastic-degrading candidate enzymes from the proteome of relevant microorganisms. Tested on a dataset of over 10,000 microbial proteins, ranking models consistently prioritize known plastic-degrading enzymes, achieving an area under the cumulative distribution function curve above 0.96, with leave-one-family-out cross-validation indicating that performance is largely retained across protein families. As a case study, this work focuses on mixed microbial cultures exposed for extended periods to polyethylene, polyethylene terephthalate, and polyurethane substrates. The prevalent species after selective enrichment were functionally characterized, finding Rhodococcus aetherivorans as the most relevant species in two of the five cultures under investigation. Among the top-ranked proteins, several have high structural similarity with known enzymes despite not being identified by sequence similarity search. Moreover, according to metatranscriptomics results, several of these enzymes were found to be expressed at the same level or above that of annotated enzymes, suggesting that they may have functional relevance. Overall, this work highlights the potential of integrating multi-omics with data-driven methods for enzyme discovery and for accelerating the development of biotechnological solutions to plastic pollution.

Biodegradation, Environmental↗

The effector cells in human peripheral blood mediating mitogen-induced cellular cytotoxicity and antibody-dependent cellular cytotoxicity.

The identity of the effector cells in human peripheral blood capable of mediating mitogen-induced cellular cytotoxicity (MICC) and antibody-dependent cellular cytotoxicity (ADCC) was investigated utilizing effector cell populations consisting of purified polymorphonuclear leukocytes, macrophages, lymphocytes, and cell surface immunoglobulin (sIg)-negative and sIg-positive lymphocyte subpopulations obtained by Sephadex anti-Fab immunoabsorbent column fractionation techniques. Chicken erythrocytes (CRBC) and Chang liver cells were used as target cells in both cytotoxicity assays. With CRBC targets MICC was mediated by polymorphonuclear leukocytes, macrophages, sIg-positive lymphocytes (B cells), and sIg-negative lymphocytes. On the contrary, with Chang liver cells as targets, MICC was mediated only by lymphocytes, and effector cells occurred exclusively in sIg-negative lymphocyte subpopulations containing thymus-derived lymphocytes (T cells). Further purification of sIg-negative lymphocyte subpopulations on antigen-antibody coated plastic surfaces yielded a nonadherent T lymphocyte population depleted of Fc receptor-bearing lymphocytes that was capable of mediating MICC against both CRBC and Chang cell targets. With use of CRBC targets, ADCC was mediated by polymorphonuclear leukocytes, macrophages, and sIg-negative lymphocyte subpopulations. However, with Chang cell targets, ADCC was mediated only by lymphocytes, and effector cells were present only in sIg-negative lymphocyte subpopulations. SIg-positive lymphocytes (B cells) and T lymphocytes were not effective in mediating ADCC against either CRBC or Chang cell targets. These studies demonstrate that the nature of the target cell employed in MICC and ADCC reactions is of critical imporatnce in defining the effector cell(s) capable of mediating cytotoxicity.

Animals↗

Targeted in vivo mutations of the AMPA receptor subunit GluR2 and its interacting protein PICK1 eliminate cerebellar long-term depression.

Cerebellar long-term depression (LTD) is a major form of synaptic plasticity that is thought to be critical for certain types of motor learning. Phosphorylation of the AMPA receptor subunit GluR2 on serine-880 as well as interaction of GluR2 with PICK1 have been suggested to contribute to the endocytic removal of postsynaptic AMPA receptors during LTD. Here, we show that targeted mutation of PICK1, the GluR2 C-terminal PDZ ligand, or the GluR2 PKC phosphorylation site eliminates cerebellar LTD in mice. LTD can be rescued in cerebellar cultures from mice lacking PICK1 by transfection of wild-type PICK1 but not by a PDZ mutant or a BAR domain mutant deficient in lipid binding, indicating the importance of these domains in PICK1 function. These results demonstrate that PICK1-GluR2 PDZ-based interactions and GluR2 phosphorylation are required for LTD expression in the cerebellum.

Age Factors↗

Dopamine D1 receptor mutant mice are deficient in striatal expression of dynorphin and in dopamine-mediated behavioral responses.

The brain dopaminergic system is a critical modulator of basal ganglia function and plasticity. To investigate the contribution of the dopamine D1 receptor to this modulation, we have used gene targeting technology to generate D1 receptor mutant mice. Histological analyses suggested that there are no major changes in general anatomy of the mutant mouse brains, but indicated that the expression of dynorphin is greatly reduced in the striatum and related regions of the basal ganglia. The mutant mice do not respond to the stimulant and suppressive effects of D1 receptor agonists and antagonists, respectively, and they exhibit locomotor hyperactivity. These results suggest that the D1 receptor regulates the neurochemical architecture of the striatum and is critical for the normal expression of motor activity.

Analysis of Variance↗

Expression of fragile X mental retardation-1 gene with nuclear export signal mutation changes the expression profiling of mouse cerebella immortal neuronal cell.

Fragile X syndrome (FXS) is the most frequent cause of inherited mental retardation and is largely caused by a loss of expression of fragile X mental retardation protein (FMRP), encoded by fragile X retardation gene-1 (Fmr1). FMRP is a multifunction protein, with intrinsic RNA-binding properties, which is a component of ribonucleoprotein complex associated with polyribosomes. The properties of FMRP indicate that it might participate in post-transcriptional processes in the regulation of some mRNA species, including localization, stability and translational control. However, the function of FMRP related to the pathologenesis in FXS is largely unknown. Many efforts were undertaken to identify the putative specific RNA targets as well as the FMRP-related proteins and to identify the effect of FMRP absence on the corresponding proteins. Here we present our efforts using proteomics approach to explore the differential expression profiling of mouse cerebella immortal cell, in which we changed the expression of FMRP by expressing Fmr1 gene with nuclear export signal (NES) mutation. This mutation makes FMRP unable to shuttle from nucleus to cytoplasm and leads to nuclear instead of cytoplasmic location as usual, which was hypothesized to affect the pathways of groups of RNAs or proteins related with FMRP. In present study, 56 proteins were found to be differentially expressed in transfected R2 neuronal cells, including 16 decreased expressions and 40 increased expressions. The differentially expressed proteins play roles in diverse physiological processes, such as neuronal plasticity, spermatogenesis and craniofacial and limb development etc. In addition, the expressions of three mRNA identified as FMRP targets in fragile X cell were tested in present model cells. All these results provide new insights to the role of FMRP in the disease.

Active Transport, Cell Nucleus↗

D-cycloserine facilitates synaptic plasticity but impairs glutamatergic neurotransmission in rat hippocampal slices.

1. The glycine-binding site of the glutamatergic N-methyl-d-aspartate receptor subtype (NMDAr) has been proposed as a putative target for treating cognitive impairments in neurodegenerative disorders and schizophrenia. Although behavioural evidence has been accumulated showing that the partial agonist d-cycloserine (DCS) facilitated learning and memory, physiological mechanisms of the drug still remained to be characterized. In the present study, we have investigated the effects of DCS on glutamatergic neurotransmission and synaptic plasticity in CA1 region of rat hippocampal slices, using extracellular field excitatory postsynaptic potentials. 2. We showed that DCS facilitated NMDAr-mediated synaptic potentials. In addition, we found that the magnitude of NMDAr-dependent long-term depression was significantly enhanced by the agonist, while the threshold for the induction of lasting potentiations was lowered. 3. We found that DCS decreased neurotransmission mediated by alpha-amino-3-hydroxy-5-methyl-4-isoxazolepropionic acid (AMPA)/kainate subtypes of glutamate receptors. This inhibition was not prevented by the gamma-aminobutyric acid GABAA antagonist bicuculline, but was antagonized by the glycine antagonist strychnine. 4. These results, therefore, show opposite effects of DCS on NMDA and non-NMDA synaptic responses within the hippocampus. They also demonstrate that DCS facilitates long-term synaptic plasticity that may support the DCS-induced enhanced cognitive performances.

6-Cyano-7-nitroquinoxaline-2,3-dione↗

[NO-Ergic transmission and NO as a volume transmitter. Effect of NO on mechanisms of synaptic plasticity and epileptogenesis].

Nitric oxide (NO) is a universal intercellular messenger and the only molecule known so far, which satisfies all requirements of the volume (extrasynaptic) neurotransmitter. The effect of NO on target cells is so read in the four-dimensional coordinate system by combining both the spatial and the temporal components of the nervous activity. In this review, the authors, based on literature data and own studies, present a detailed analysis of properties of NO as a volume neurotransmitter at formation of phenomena of synaptic plasticity in norm and pathology. An evaluation is given of cytotoxic and neuroprotective effects of NO under conditions of the brain tissue ischemia and phenomena of hyperexcitability in foci of epileptiform activity. It is emphasized that the long-term potentiation and long-term depression, phenomena of physiological plasticity, can be transformed into pathological plasticity at disturbances of equilibrium between neuroprotective and neurotoxic effects of NO.

Animals↗

Effects of testosterone on the development of neuromuscular systems and their target tissues involved in courtship and copulation in green anoles (Anolis carolinensis).

Male green anole lizards court females using a red throat fan (dewlap) and copulate by intromitting one of two penises (hemipenes). These structures begin sexually monomorphic, but by adulthood males have larger dewlaps, only males have hemipenes, and many of the neuromuscular components of both systems show male-biased dimorphisms. We hypothesized that testosterone (T), which increases in juvenile males but not females about a month after hatching, facilitates masculinization. To test this idea, on post-hatching day 30, gonadally intact females received either a blank or T implant, and males were either castrated or sham-castrated. At day 90, juveniles were euthanized and the length of the cartilage and cross-sectional areas of the muscle fibers and motoneurons required for dewlap extension were examined. We also measured the cross-sectional areas of the hemipenes and associated muscle fibers and motoneurons, and counted the motoneurons. T-treated females had longer cartilages and larger dewlap muscle fibers compared to those with blank implants. No effects on motoneurons were detected, and no females possessed hemipenes or associated musculature. In males, castration produced shorter dewlap cartilages and smaller hemipenes; other measures were not affected by treatment. These data indicate that components of the dewlap system differentiate relatively late in development, that T likely mediates the process, and that although components of the copulatory system are plastic in juvenile males, sexual differentiation of peripheral features is complete before day 30. The data also suggest that target structures (dewlap cartilage and hemipenes), compared to their neuromuscular effectors, are particularly sensitive to developmental T exposure.

Androgens↗