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Modulating apoptosis pathways in low-grade B-cell malignancies using biological response modifiers.

Collectively, low-grade B-cell malignancies constitute the fifth most common form of potentially lethal cancer in North America and Europe, with chronic lymphocytic leukemia (CLL) and follicular non-Hodgkin's lymphoma (FL) representing the most prevalent of these disorders. Chronic lymphocytic leukemia and FL represent quintessential examples of human malignancies that are caused primarily by defects in programmed cell death (apoptosis). During the early stages of disease, the mature B lymphocytes that comprise most CLLs and FLs are largely quiescent G(0) phase cells, which accumulate not because they are dividing more rapidly than normal but because they survive longer than their normal counterparts because of defects in the normal pathways for apoptosis. Defects in apoptosis pathways contribute to chemoresistance, rendering tumor cells less sensitive to the cytotoxic actions of currently available anticancer drugs, and can also promote resistance to cellular immune responses. Several biological agents or their synthetic derivatives show promise as apoptosis modulators, having the potential to place neoplastic cells into a more susceptible state or activating latent programs for cell suicide. These biological response modifiers include monoclonal antibodies such as rituximab (Rituxan; Genentech, Inc, South San Francisco, CA, and IDEC Pharmaceuticals, San Diego, CA) that alter signal transduction pathways, cytokines such as TRAIL (Apo2 ligand), ligands for retinoid/steroid family nuclear receptors, and small-molecule compounds that bind and inhibit protein kinases. Knowledge about the mechanisms by which these agents influence apoptosis pathways in neoplastic diseases may suggest strategies for more effective and less toxic therapies for patients suffering from CLL, FL, and other malignancies.

Animals↗

Separable evoked retinal and cortical potentials from each major visual pathway: preliminary results.

Single cell experiments in primates show that there are two major parallel pathways named after the lamination in the lateral geniculate nucleus. Each of these systems can be preferentially excited by appropriate stimuli. Here we report that in man the polarity of the evoked potentials both in retina and in cortex depends on which of these pathways is stimulated. The identification of the resulting waveforms is thereby simplified--a matter of practical importance. The fact that at retina and cortex there are characteristic potentials may reflect the different cell biology of the two pathways.

Color Perception↗

Tumor cell metabolism: the marriage of molecular genetics and proteomics with cellular intermediary metabolism; proceed with caution!

Metabolic transformations of malignant cells are essential to the development and progression of all cancers. The understanding of the pathogenesis and progression of cancer requires the establishment of the altered genetic/metabolic factors that are essential to the development, growth, and proliferation of the malignant cells. Recognition of this important relationship has resulted in a resurgence of interest in the intermediary metabolism of tumor cells. The role of molecular genetics and proteomics and the application of molecular technology in assessing altered cellular metabolism has become a major area of biomedical research. The contemporary generation of biomedical scientists is exceptionally well trained in all areas of molecular biology and molecular technology, which are now important tools to be applied to the regulation of cellular intermediary metabolism. Simultaneously, the didactic and methodological training associated with the principles and operation of metabolic pathways, enzymology, cellular enzyme activity, and associated biochemical implications has been diminished and often eliminated from the pre- and post-doctoral programs. Interpretations and conclusions of alterations in cellular enzyme activity and associated metabolic pathways based on genetic/proteomic changes can and will result in misrepresentation of important metabolic implications in malignancy and other diseases. It is essential that the genetic/proteomic studies be coupled to biochemical/metabolic cellular events to satisfy the axiom: "genetic transformations and proteomic alterations will have little relevancy to disease processes if the genetic/proteomic alterations are not manifested in altered and impaired cellular and metabolic function". The appropriate marriage of molecular genetics/proteomics with the regulation of cellular intermediary metabolism will provide new revelations and understanding of malignancy that could not be achieved in earlier generations.

Cell Transformation, Neoplastic↗

Winding through the WNT pathway during cellular development and demise.

In slightly over a period of twenty years, our comprehension of the cellular and molecular mechanisms that govern the Wnt signaling pathway continue to unfold. The Wnt proteins were initially implicated in viral carcinogenesis experiments associated with mammary tumors, but since this period investigations focusing on the Wnt pathways and their transmembrane receptors termed Frizzled have been advanced to demonstrate the critical nature of Wnt for the development of a variety of cell populations as well as the potential of the Wnt pathway to avert apoptotic injury. In particular, Wnt signaling plays a significant role in both the cardiovascular and nervous systems during embryonic cell patterning, proliferation, differentiation, and orientation. Furthermore, modulation of Wnt signaling under specific cellular influences can either promote or prevent the early and late stages of apoptotic cellular injury in neurons, endothelial cells, vascular smooth muscle cells, and cardiomyocytes. A number of downstream signal transduction pathways can mediate the biological response of the Wnt proteins that include Dishevelled, beta-catenin, intracellular calcium, protein kinase C, Akt, and glycogen synthase kinase-3beta. Interestingly, these cellular cascades of the Wnt-Frizzled pathways can participate in several neurodegenerative, vascular, and cardiac disorders and may be closely integrated with the function of trophic factors. Identification of the critical elements that modulate the Wnt-Frizzled signaling pathway should continue to unlock the potential of Wnt pathway for the development of new therapeutic options against neurodegenerative and vascular diseases.

Animals↗

Suppression versus induction of androgen receptor functions by the phosphatidylinositol 3-kinase/Akt pathway in prostate cancer LNCaP cells with different passage numbers.

The phosphatidylinositol 3-kinase (PI3K)/Akt pathway controls several important biological functions, such as cell growth regulation, apoptosis, and migration. However, the way in which PI3K/Akt controls androgen receptor (AR)-mediated prostate cancer cell growth remains unclear and controversial. Here, we demonstrate that the PI3K/Akt pathway regulates AR activity in a cell passage number-dependent manner. Specifically, PI3K/Akt pathway can suppress AR activity in androgen-dependent LNCaP cells with low passage numbers. In contrast, it can also enhance AR activity in LNCaP cells with high passage numbers. Furthermore, we also demonstrate that insulin-like growth factor-1 can activate the PI3K/Akt pathway that results in the phosphorylation of AR at Ser210 and Ser790. The consequence of these events may then change the stability of AR protein. Together, our results demonstrate that the PI3K/Akt pathway may have distinct mechanisms to modulate AR functions in various stages of prostate cancer cells and that a combined therapy of antiandrogens and anti-PI3K/Akt inhibitors may be worth considering as a future therapeutic approach to battle prostate cancer.

Binding Sites↗

5-Lipoxygenase Pathway, Dendritic Cells, and Adaptive Immunity.

5-lipoxygenase (5-LO) pathway is the major source of potent proinflammatory leukotrienes (LTs) issued from the metabolism of arachidonic acid (AA), and best known for their roles in the pathogenesis of asthma. These lipid mediators are mainly released from myeloid cells and may act as physiological autocrine and paracrine signalling molecules, and play a central role in regulating the interaction between innate and adaptive immunity. The biological actions of LTs including their immunoregulatory and proinflammatory effects are mediated through extracellular specific G-protein-coupled receptors. Despite their role in inflammatory cells, such as neutrophils and macrophages, LTs may have important effects on dendritic cells (DC)-mediated adaptive immunity. Several lines of evidence show that DC not only are important source of LTs, but also become targets of their actions by producing other lipid mediators and proinflammatory molecules. This review focuses on advances in 5-LO pathway biology, the production of LTs from DC and their role on various cells of immune system and in adaptive immunity.

Journal Article↗

Mechanism of action of serotonin selective reuptake inhibitors. Serotonin receptors and pathways mediate therapeutic effects and side effects.

Serotonin selective reuptake inhibitors (SSRIs) are currently among the most frequently prescribed therapeutic agents in all of medicine. Their therapeutic actions are diverse, ranging from efficacy in depression to obsessive-compulsive disorder, panic disorder, bulimia and other conditions as well. The plethora of biological substrates, receptors and pathways for serotonin are candidates to mediate not only the therapeutic actions of SSRIs, but also their side effects. Specifically, the immediate actions of SSRIs are mostly side effects, and may be mediated by the initiating actions of SSRIs, namely negative allosteric modulation of the serotonin transporter. A leading hypothesis to explain these immediate side effects is that serotonin is increased at specific serotonin receptor subtypes in discrete regions of the body where the relevant physiologic processes are regulated. Desensitization of post-synaptic receptors in these same discrete brain regions may explain the development of tolerance to these same side effects. The explanation for therapeutic effects characteristic of SSRIs may be found in delayed neurochemical adaptations. A leading hypothesis for this action is desensitization of somatodendritic serotonin 1A autoreceptors in the midbrain raphe. The hypothesis to explain why SSRIs have such diverse therapeutic actions is that somatodendritic 5HT1A autoreceptor desensitization increases serotonin in those critical brain regions and at those key serotonin receptor subtype(s) which may mediate the pathophysiologies of the various disorders. Understanding the topography of serotonin receptor subtypes in discrete anatomical pathways may enhance our understanding of both the therapeutic actions and side effects of these important pharmaceutical agents.

Autoreceptors↗

Modules, kinds, and homology.

Developmental modules are best conceptualized as homeostatic property cluster natural kinds. As is true in other fields of biology, an individual may instantiate properties of various natural kinds. Through their dissociability, developmental modules can be recruited to function as evolutionary modules. The proper analogy to developmental modules, atoms, or biological species depends on the scope over which specific developmental modules allow generalizations. The nature of the relationship between developmental modules, evolutionary modules, and taxic (phylogenetic) homology are explored. Similarity of gene expression patterns and developmental pathways as captured by biological homology may support hypotheses of taxic homology, but not the other way around.

Animals↗

Influenza A virus and the neutrophil: a model of natural immunity.

Natural immune reactions are mediated by lymphocytes, macrophages/monocytes, and neutrophils. The latter have been implicated in a variety of self-surveillance models, i.e., activity against malignant host cells, participation in wound repair, and infliction of damage in postischemic perfusion injury. Better characterized are the interactions with unopsonized pathogens through lectinophagocytosis mechanisms, where the lectin resides either on the phagocyte or on the microorganism. This review examines the infection by influenza A virus (IAV) of the human neutrophil, which results in the vigorous metabolic response of the cell to generate toxic oxygen species. This response is not necessarily characteristic of response to unopsonized particles, as the neutrophil exhibits no such activity to unopsonized zymosan or chlamydia. The virus elicits calcium mobilization from intracellular stores through a pertussis toxin-insensitive mechanism, and in its particulars the activation cascade is unique in comparison to any other characterized agonist. The putative receptor for the IAV binding protein, hemagglutinin (HA), contains the sialic acid residues; identification of specifically linked protein receptors will allow characterization of this stimulation pathway and will define the molecular biology of this activation sequence. Insight into this particular pathway may allow definition of a primitive recognition system that represents a fundamental basis for discernment of self and nonself entities.

Humans↗

Peroxynitrite reacts with biological nitrogen-containing cyclic molecules by a radical pathway, as demonstrated by ultraweak luminescence coupled with ESR technique.

Ultraweak luminescence (uwCL) was coupled with electron spin resonance to study the reactions of 3 heterocyclic compounds (tryptophan, serotonin and imidazole) with peroxynitrite at pH 8.7. Tryptophan and serotonin reacted with emission of a flash peak of light (5 s) followed by a long-living light emission of +/- 80 s. Addition of the spin trap 4-POBN at different intervals, after the beginning of reaction revealed that a short-living free radical was produced in the case of serotonin and imidazole, but that with tryptophan, the initial radical rearranged into a relatively long-living radical, which was still formed when 4-POBN was added after 55 s (decreasing phase of uwCL).

Electron Spin Resonance Spectroscopy↗

Biochemical pathways involved in the translation of physical stimulus into biological message.

Studies from our laboratory revealed that direct application of physical strain (PS) to cultured bone cells stimulated synthesis of prostaglandin E2 (PGE2) in a specific population of cells. We found that PGE2 induced the cellular production of cAMP in several bone cell types, whereas the induction of DNA synthesis was limited to osteoblastlike cells. Indirect evidence indicated that PS induced the osteoblastlike cells to synthesize PGE2. Other cell types, for example, chondrocytes, when activated by PS, can be induced to produce cAMP and induce DNA synthesis not mediated by PGE2. We have also found that electric stimulation of different populations of bone cells is specifically induced by a certain intensity of the electric field. It seems that electric stimulus circumvents the PGE2 effect and triggers the adenyl cyclase system in the cell directly. The electric field also induces DNA synthesis not via PGE2 production.

Adenylyl Cyclases↗

Biological nitrogen removal with nitrification and denitrification via nitrite pathway.

Presently, the wastewater treatment practices can be significantly improved through the introduction of new microbial treatment technologies. To meet increasingly stringent discharge standards, new applications and control strategies for the sustainable removal of ammonium from wastewater have to be implemented. Partial nitrification to nitrite was reported to be technically feasible and economically favorable, especially when wastewater with high ammonium concentrations or low C/N ratios is treated. For successful implementation of the technology, the critical point is how to maintain partial nitrification of ammonium to nitrite. Partial nitrification can be obtained by selectively inhibiting nitrite oxidizing bacteria through appropriate regulation of the system's DO concentration, microbial SRT, pH, temperature, substrate concentration and load, operational and aeration pattern, and inhibitor. The review addressed the microbiology, its consequences for their application, the current status regarding application, and the future developments.

Bacteria↗

NanoSystems biology.

Systems biology is an approach in which the digital information of the genome, acted upon by environmental cues, generates the many molecular signatures of gene and protein expression, as well as other, more phenomenological experimental observations. These data may be integrated together to form a testable hypothesis of how a biological organism functions as a system. The central components of systems biology are genetically programmed networks (circuits) within cells and networks of cells. These components establish the organization and function of individual cells and tissues in response to environmental signals such as cell-to-cell communication within organ systems and whole organisms. Within this context, disease is considered as a genetic or environmental reprogramming of cells to gain or lose specific functions that are characteristics of disease. This paper is a combination of three tutorials with an outlined series of technologies, including microfluidics, nanotechnologies, and molecular imaging methods, and we describe how their development should be driven by the needs of systems biology. We also discuss how these technologies can enable a systems biology approach through a pathway from single cells to mouse models of disease and finally to patients. Within this technology base are approaches to develop, use and test molecules as probes that target proteins, DNA and mRNA to test systems biology models, as well as provide molecular diagnostics and molecular therapeutics within a systems biology framework.

Animals↗

Human in vivo dose-response to controlled, low-dose low linear energy transfer ionizing radiation exposure.

PURPOSE: The effect of low doses of low-linear energy transfer (photon) ionizing radiation (LDIR, <10 cGy) on human tissue when exposure is under normal physiologic conditions is of significant interest to the medical and scientific community in therapeutic and other contexts. Although, to date, there has been no direct assessment of the response of human tissue to LDIR when exposure is under normal physiologic conditions of intact three-dimensional architecture, vasculature, and cell-cell contacts (between epithelial cells and between epithelial and stromal cells). EXPERIMENTAL DESIGN: In this article, we present the first data on the response of human tissue exposed in vivo to LDIR with precisely controlled and calibrated doses. We evaluated transcriptomic responses to a single exposure of LDIR in the normal skin of men undergoing therapeutic radiation for prostate cancer (research protocol, Health Insurance Portability and Accountability Act-compliant, Institutional Review Board-approved). Using newly developed biostatistical tools that account for individual splice variants and the expected variability of temporal response between humans even when the outcome is measured at a single time, we show a dose-response pattern in gene expression in a number of pathways and gene groups that are biologically plausible responses to LDIR. RESULTS: Examining genes and pathways identified as radiation-responsive in cell culture models, we found seven gene groups and five pathways that were altered in men in this experiment. These included the Akt/phosphoinositide-3-kinase pathway, the growth factor pathway, the stress/apoptosis pathway, and the pathway initiated by transforming growth factor-beta signaling, whereas gene groups with altered expression included the keratins, the zinc finger proteins and signaling molecules in the mitogen-activated protein kinase gene group. We show that there is considerable individual variability in radiation response that makes the detection of effects difficult, but still feasible when analyzed according to gene group and pathway. CONCLUSIONS: These results show for the first time that low doses of radiation have an identifiable biosignature in human tissue, irradiated in vivo with normal intact three-dimensional architecture, vascular supply, and innervation. The genes and pathways show that the tissue (a) does detect the injury, (b) initiates a stress/inflammatory response, (c) undergoes DNA remodeling, as suggested by the significant increase in zinc finger protein gene expression, and (d) initiates a "pro-survival" response. The ability to detect a distinct radiation response pattern following LDIR exposure has important implications for risk assessment in both therapeutic and national defense contexts.

Biopsy↗