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Fibronectin receptor integrins are involved in mast cell activation.

Mast cells express fibronectin-receptor integrins on the cell surface, which are involved in cellular activation. In this study rat and mouse mast cells adhered to fibronectin through very late antigen 4, 5 (beta 1 integrin) and vitronectin receptor (beta 3 integrin), and engagement of these receptors promoted cellular degranulation induced by cross-linking of the high-affinity IgE receptor. Blocking of these adhesion molecules by monoclonal antibodies remarkably reduced passive cutaneous anaphylaxis reaction in vivo. On fibronectin, cytokine release from mast cells on IgE receptor aggregation was also enhanced, but not the expression of cytokine genes, with the exception of interleukin-3. Interleukin-3 gene expression was constitutively observed in mouse-cultured mast cells and significantly increased on fibronectin with a prolonged survival of the cells, suggesting that the autocrine or paracrine system of interleukin-3 secretion contributes to the prolonged survival of mast cells on fibronectin. Our findings presented here clearly indicate that the engagement of fibronectin-receptor integrins on mast cells increases the sensitivity of the cells for cellular activation. Taking into consideration the fact that mast cells in the microenvironment are actually surrounded by other cells and extracellular matrix proteins, we identified significant roles of adhesion molecules on mast cells in the allergic state, and we hope to develop new strategies to manipulate these molecules for medical intervention in allergy.

Animals↗

Development of nanostructured biomedical micro-drug testing device based on in situ cellular activity monitoring.

Integration of micro and nanofabrication techniques with biotechnology has resulted in the development of in vitro analytical and diagnostic tools for biomedical applications. The focus of such technology has primarily been on therapeutic and sensing applications. The long-term integration of cells with inorganic materials provides the basis for novel sensing platforms. This paper describes the creation of, nanoporous, biocompatible, alumina membranes as a platform for incorporation into a cell based device targeted for in situ recording of cellular electrical activity variations due to the changes associated with the surrounding microenvironments more specifically due to the effect of therapeutic drugs. Studies described herein focus on the interaction of nanoporous alumina substrates embedded in silicon, patterned with cells of interest. The cells that have been used to develop the in vitro test platform are primary hippocampal neurons. Demonstrated here, is the fidelity of such a system in terms of determination of cell viability, proliferation, and functionality. The response of the cells to the "drug" molecules is electro-optically characterized in an in situ manner. The capability of such, micro fabricated nanoporous membranes as in vitro drug testing platforms, is first theoretically estimated using two dimensional finite element modeling of the diffusion of the molecules of interest through the nanoporous substrate using CFDRC. It is then experimentally established, using glucose and immunoglobulin G (IgG).

Action Potentials↗

The geometric pattern of a pillared substrate influences the cell-process distribution and shapes of fibroblasts.

Fibroblasts alter their shape, direction of movement, cytoskeleton arrangement, and focal contact when placed upon square array pillars. We prepared pillars of 1 microm diameter, separated by 3 microm, and having 1, 5, and 10 microm heights using substrates displaying identical surface chemistry. When cells seeded initially onto the tops of the pillars, fibroblasts subsequently were immobilized in situ by several pillars that visibly protruded through, but did not pierce, the cell bodies. The cytoplasma then migrated outward with long straight lamella along the interval of the pillars and formed several discrete attachment zones at their side walls - the value of their form index (FI) was as high as 35 - which altered the cellular shape entirely. Most of the cells interacted with the pillar substrate by spreading preferentially in a particular direction, but some of them had the ability to undergo coincident two-direction (x and y) migration; right-angle turn orientations led to the growth of dramatic cellular morphologies. Interestingly, this fibroblast's behavior variation was gradually in proportion to the pillar height of substrate. Our results confirm that cellular migration and cellular shape are both strongly affected by the geometry of the growth microenvironment.

Adaptation, Physiological↗

Hypoxia and anemia: effects on tumor biology and treatment resistance.

In locally advanced solid tumors, oxygen (O2) delivery is frequently reduced or even abolished. This is due to abnormalities of the tumor microvasculature, adverse diffusion geometries, and tumor-associated and/or therapy-induced anemia. Up to 50-60% of locally advanced solid tumors may exhibit hypoxic and/or anoxic tissue areas that are heterogeneously distributed within the tumor mass. In approximately 30% of pretreatment patients, a decreased O2 transport capacity of the blood as a result of tumor-associated anemia can greatly contribute to the development of tumor hypoxia. While normal tissues can compensate for this O2 deficiency status by a rise in blood flow rate, locally advanced tumors (or at least larger tumor areas) cannot adequately counteract the restriction in O2 supply and thus the development of hypoxia. Hypoxia-induced alteration in gene expression and thus in the proteome (< 1% O2, or < 7 mmHg), and/or genome changes (< 0.1% O2, or < 0.7 mmHg) may promote tumor progression via mechanisms enabling cells to overcome nutritive deprivation, to escape from the hostile metabolic microenvironment and to favor unrestricted growth. Sustained hypoxia may thus lead to cellular changes resulting in a more clinically aggressive phenotype. In addition, hypoxia is known to directly or indirectly confer resistance to X- and gamma-radiation, and some chemotherapies leading to treatment failures. Whereas strong evidence has accumulated that hypoxia plays a pivotal role in tumor progression and acquired treatment resistance, the mechanism(s) by which treatment efficacy and survival may be compromised by anemia (independent of hypoxia) are not fully understood.

Anemia↗

IgE regulation and roles in asthma pathogenesis.

Asthma and the predisposition to produce IgE are inherited as linked traits in families. In patients IgE levels correlate with asthma severity and bronchial hyperresponsiveness. The concept that IgE plays a critical role in asthma pathogenesis has driven the development of IgE blockers, which are currently being introduced into clinical use. This review focuses on the mechanisms whereby IgE participates both in immediate hypersensitivity responses in the airways and in the induction of chronic allergic bronchial inflammation. The molecular genetic events that give rise to IgE production by B cells and the cellular and cytokine factors that support IgE production in the bronchial mucosal microenvironment are discussed. It is clear that much remains to be learned regarding the roles of IgE in asthma and the genetic and environmental influences that lead to its production. Over the next few years, the emerging experience with anti-IgE in patients will provide a more complete understanding of the mechanisms whereby IgE contributes to disease, as well as the therapeutic potential of its inhibition.

Animals↗

Alpha/beta T-cell antigen receptor gene and protein expression occurs at early stages of thymocyte differentiation.

Alterations in gene expression that orchestrate eukaryotic cellular differentiation often require appropriate interactions between differentiating cells and a specialized microenvironment. During T-lymphocyte differentiation, immature thymocytes undergo a stringent intrathymic selection process that requires intimate contact with thymic stromal elements. Since this selection process generates T cells that are self-tolerant and recognize nominal antigen only within the context of self-major histocompatibility antigen complex molecules, it is possible that thymocyte/stromal cell interactions are mediated, in part, by antigen-specific receptors expressed on differentiating thymocytes. However, the developmental stage at which alpha/beta antigen-specific receptors are expressed during T-cell maturation has been a matter of debate. To address this issue, we have studied alpha/beta T-cell antigen receptor gene and protein expression on normal thymocyte subsets of AKR/J mice, as well as on a panel of AKR/J primary thymic lymphomas characterized for CD4 (L3T4) and CD8 (Lyt-2) differentiation antigen expression. The data unequivocally demonstrate that alpha/beta heterodimers are expressed not only on phenotypically mature thymocytes but also on the majority of CD4+8+ double-positive cells that comprise the predominant nonmature thymocyte subset. Furthermore, a fraction of thymocytes in the CD4-8- double-negative compartment, known to contain progenitor cells, also expresses readily detectable cell-surface alpha/beta receptors. Therefore, during the process of intrathymic selection, interactions between nonmature thymocytes and stromal cells via the antigen-receptor complex may play a pivotal role in T-cell differentiation and should be considered in formulating schemes for functional T-cell selection.

Animals↗

Regulation of the neurofibromatosis type 2 tumor suppressor protein, merlin, by adhesion and growth arrest stimuli.

The neurofibromatosis type 2 tumor suppressor gene is inactivated in the development of familial and sporadic schwannomas and meningiomas. The encoded protein, Merlin, is closely related to the Ezrin, Radixin, and Moesin family of membrane/cytoskeletal linker proteins. Examination of Merlin in several cell lines revealed that the protein migrates as two distinct species near 70 kDa. Phosphatase treatment and orthophosphate labeling demonstrated that the species with decreased mobility is phosphorylated. Given Merlin's localization to cortical actin structures, we examined the effect of cell-cell contact or other forms of growth arrest on Merlin expression and post-translational modification. Under conditions of confluency or serum deprivation, the levels of phosphorylated and unphosphorylated Merlin species increased significantly. Cells arrested in G1 by other methods or other phases of the cell cycle did not show changes in Merlin levels. Furthermore, loss of adhesion resulted in a nearly complete dephosphorylation of Merlin, which was reversed upon re-plating of cells, suggesting Merlin phosphorylation may be responsive to cell spreading or changes in cell shape. Thus, the tumor suppressor function of Merlin may involve the regulation of cellular responses to cues such as cell-cell contact, growth factor microenvironment, or changes in cell shape.

3T3 Cells↗

Schwann cell injury is attenuated by aldose reductase inhibition in galactose intoxication.

Four months of galactose intoxication induces a dose-dependent osmotic imbalance of the nerve microenvironment characterized by polyol, water, and electrolyte accumulation. Recently, dose-dependent cellular lesions have been described in the sciatic nerves of galactose-intoxicated rats. The present study was designed to demonstrate that the cell injury and endoneurial osmotic imbalance in galactose intoxication are dependent on the subsequent metabolism of galactose by the polyol pathway. Three groups of age-matched, female Sprague-Dawley rats were fed a control diet or diets containing complete micronutrient supplements with 40% galactose or 40% galactose and 0.04% Ponalrestat, an aldose reductase inhibitor (ARI). After 4 to 5 months, sciatic nerves were analyzed for polyol, water and endoneurial electrolyte content and processed for light and electron microscopic examination. Ponalrestat prevented myo-inositol depletion and accumulations of dulcitol, water and endoneurial fluid electrolytes. Axonal size-frequency histograms revealed that Ponalrestat attenuated the shift toward smaller fibers and the decrease in mean axonal diameter seen in untreated galactose-fed rats. Electron microscopic examination showed widespread reactive and degenerative changes in Schwann cells of galactose-intoxicated rats that culminated in cytoplasmic disintegration. Quantitative electron microscopy revealed that ARI treatment significantly reduced the incidence of abnormal Schwann cells. These observations indicate that the osmotic imbalance and cell injury seen in galactose intoxication are dependent on the metabolism of galactose by the polyol pathway.

Aldehyde Reductase↗

Elevated vascular endothelial growth factor in keloids: relevance to tissue fibrosis.

Excessive scar or keloid shares common features of a benign dermal growth. Yet, in contrast to malignant tumor, a keloid does not expand beyond the dermis. What triggers the continuing growth of a benign lesion? Deficient or overabundant levels of vascular endothelial growth factor have been reported to contribute to impaired or excessive wound healing. Although numerous studies have examined the pathophysiology of impaired wounds, little information has been provided on mechanisms of exuberant healing. The molecular basis of keloid formation is governed by the interplay of cellular signaling pathways, specific target gene activation, and the nature of the microenvironment. Recent works have demonstrated an accumulation of hypoxia-inducible factor-1alpha protein in freshly biopsied keloid tissues, thus providing first evidence that a local state of hypoxia exists in keloids. Our findings and the findings of others support at least two plausible mechanisms implicated in the development of fibrotic wounds, a state of ongoing fibroplasia or inflammation and an excessive accumulation of extracellular matrix. This article will review recent works examining the potential role of vascular endothelial growth factor in keloid pathogenesis with particular focus on its involvement in the two proposed pathological processes, a prolonged inflammation and an altered balance in extracellular matrix metabolism.

DNA-Binding Proteins↗

["Sarcoidosis-like" granulomatous disease in patients with common variable hypogammaglobulinemia].

Particular attention has been recently dedicated to the development of a sarcoidosis-like form in patients with common variable immunodeficiency (CVI). In sarcoidosis a 5-fold increase in the number of cells in the bronchoalveolar lavage compared with normal controls has been described and the predominance of CD4+ T cells is a common feature. In contrast to patients affected by sarcoidosis or CVI, patients with co-existence of the two diseases had a more favorable prognosis, as progressive pulmonary fibrosis occurred only in a few cases even when persistent alveolar lymphocytosis was present. Moreover, patients presenting with concomitant sarcoidosis and CVI, showed a lower rate of respiratory infections and of the evolution towards bronchiectasies in comparison with patients affected by CVI alone. The clinical evolution observed in our patients was similar with that reported in other studies and confirms their clinical features. One may speculate that the increase in the number of macrophages and T lymphocytes, as suggested by the increased cellularity in the bronchoalveolar lavage of these patients, can produce a peculiar microenvironment characterized by high levels of soluble factors (cytokines). In turn, the latter could be responsible for a more efficacious effector phase of the immune response. This may explain the reduced rate of infectious diseases and consequently of bronchiectasies observed in CVI patients.

Adult↗

Embryonic beginnings of adult hematopoietic stem cells.

Hematopoietic stem cells (HSC) are at the foundation of the adult hematopoietic system. HSC give rise to all blood cells through a complex series of proliferation and differentiation events that occur throughout the lifespan of the individual. Because of their clinical importance in transplantation protocols, recent research has focused on the developmental origins and potential of embryonic HSC. In both mammalian and non-mammalian vertebrate embryos, two independent anatomical sites have been found to generate hematopoietic cells. The yolk sac (or its equivalent in amphibians, the ventral blood islands) participates in a first transient wave of hematopoiesis by producing primitive erythrocytes. Importantly, adult-type HSCs emerge autonomously in a second wave of hematopoietic generation in an intraembryonic region surrounding the dorsal aorta, the aorta-gonads-mesonephros (AGM) region. In this review, we will discuss research advances in the field of developmental hematopoiesis, with a particular emphasis on the cellular origins of AGM HSC and their regulation by the embryonic hematopoietic microenvironment.

Amphibians↗

[Research advances on drug resistance and anti-apoptosis of leukemic cells associated with bone marrow stromal cells--review].

The bone marrow microenvironment composed of bone marrow cell, their secreted cytokines and extra-cellular medium (ECM), plays an important role in the process of hematopoiesis, hematonosis, apoptosis of malignant blood cells. In this review, the mechanisms for the protection of the leukemiic cells from the drug-induced apoptosis by bone marrow stromal cells and the related progress were summarized.

Apoptosis↗

Cellular network in airways inflammation and remodelling.

Chronic inflammation and airway remodelling are two key steps in asthma pathophysiology. The development of chronic airway inflammation depends upon the continuous recruitment of inflammatory cells from the bloodstream towards the bronchial mucosa and by their subsequent functional activation. The release of inflammatory mediators by activated cells contributes to the generation of a complex network which involves mobile inflammatory cells and structural cells such as epithelial cells, fibroblasts and myofibroblasts. This network is responsible for the amplification and persistence of the inflammatory process as well as for the development of a peculiar microenvironment which can directly modulate the survival of inflammatory cells in the inflamed airways. Increased cellular recruitment and activation, enhanced cell survival and cell:cell interactions are therefore the key steps in the development of chronic airway inflammation in asthma and represent the major causes for tissue damage, repair and remodelling.

Adolescent↗

Camptothecins as probes of the microenvironments of topoisomerase I--DNA complexes.

By uncoupling the cleavage and ligation reactions of DNA oligonucleotides mediated by topoisomerase I, it has been possible to demonstrate modification of DNA oligonucleotide structure by the enzyme. These modifications indicate an unusual flexibility inherent in the behavior of topoisomerase I and may reflect some of the cellular roles played by the enzyme. The ability of individual camptothecin analogues to inhibit these modification processes differentially provides insight into the relative nature of the microenvironments present. To the extent that these enzyme-mediated structural modifications do constitute models of cellular roles for the enzyme, the observed differential inhibition also provides a potential strategy for assessing the function and importance of such modifications.

Animals↗

Machine learning and multi-omics clustering to map cellular rewiring and immune evasion in ccRCC.

Immune checkpoint blockade (ICB) efficacy in clear cell renal cell carcinoma (ccRCC) is limited by tumor microenvironment (TME) heterogeneity. Because traditional bulk-derived models lack spatial resolution, we developed an integrated framework connecting macroscopic survival risks to microscopic TME structures. We applied ten algorithms to establish multi-omics subtypes and evaluated 101 machine-learning combinations across three independent cohorts to generate a Consensus Machine Learning-driven Signature (CMLS). The signature's spatial and cellular origins were decoded using spatial transcriptomics (ST) and a 140,000-cell scRNA-seq atlas. Expression of key genes was experimentally validated via RT-qPCR in 17 paired ccRCC clinical tissues. We identified two molecular subtypes with distinct clinical and epigenetic profiles. SuperPC optimization yielded a 24-gene CMLS serving as an independent prognostic factor. scRNA-seq and ST deconvolution revealed these signals predominantly originate from cancer-associated fibroblasts (CAFs) and malignant epithelial cells, which collaborate to drive spatial immune exclusion. RT-qPCR confirmed significant overexpression of five core CMLS genes in ccRCC versus adjacent normal tissues. Low CMLS scores correlated with enhanced ICB responsiveness, whereas high-CMLS tumors demonstrated specific vulnerability to dasatinib and dabrafenib. The CMLS translates spatial immune-exclusion dynamics into a quantifiable metric, outperforming tumor mutational burden in predicting ICB benefits, providing a robust tool for patient stratification in ccRCC.

Humans↗

Progenitor cells in liver regeneration: molecular responses controlling their activation and expansion.

Although normally quiescent, the adult mammalian liver possesses a great capacity to regenerate after different types of injuries in order to restore the lost liver mass and ensure maintenance of the multiple liver functions. Major players in the regeneration process are mature residual cells, including hepatocytes, cholangiocytes and stromal cells. However, if the regenerative capacity of mature cells is impaired by liver-damaging agents, hepatic progenitor cells are activated and expand into the liver parenchyma. Upon transit amplification, the progenitor cells may generate new hepatocytes and biliary cells to restore liver homeostasis. In recent years, hepatic progenitor cells have been the subject of increasing interest due to their therapeutic potential in numerous liver diseases as alternative or supportive/complementary tools to liver transplantation. While the first investigations on hepatic progenitor cells have focused on their origin and phenotypic characterization, recent attention has focused on the influence of the hepatic microenvironment on their activation and proliferation. This microenvironment comprises the extracellular matrix, epithelial and non-epithelial resident liver cells, and recruited inflammatory cells as well as the variety of growth-modulating molecules produced and/or harboured by these elements. The cellular and molecular responses to different regenerative stimuli seem to depend on the injury inflicted and consequently on the molecular microenvironment created in the liver by a certain insult. This review will focus on molecular responses controlling activation and expansion of the hepatic progenitor cell niche, emphasizing similarities and differences in the microenvironments orchestrating regeneration by recruitment of progenitor cell populations or by replication of mature cells.

Animals↗

Intercellular communication: relative importance of cellular adhesion and paracrine signaling to hormonal gene expression.

Although there is a consensus that a cell's microenvironment can have a dramatic influence on its ability to express a particular gene, the relative contribution of physical interaction (cell to cell adhesion) and paracrine signaling to this phenomenon has been difficult to discern. Here, we addressed this problem in mammotropes by making "real-time" measurements of prolactin (PRL) gene expression followed by immunocytochemistry (for post facto identification of a neighbor's phenotype). Our results show that it is the nature (phenotype) rather than the physical presence of a neighboring cell that dictates the degree to which the PRL gene is expressed.

Animals↗

CIITA-induced MHC class II expression in mammary adenocarcinoma leads to a Th1 polarization of the tumor microenvironment, tumor rejection, and specific antitumor memory.

PURPOSE: We have shown previously that the MHC class II-negative murine TS/A adenocarcinoma is rejected in vivo if induced to express MHC class II molecules by transfection of the MHC class II transactivator CIITA. In this study, we explored the immunologic basis of tumor rejection and the correlation between histopathology of tumor tissue and immune rejection. EXPERIMENTAL DESIGN: Stable TS/A-CIITA transfectants were generated and injected into mice. In vivo cell depletion, immunohistochemistry of tumor tissues, and immune functional assays were done to assess the cellular and immunologic basis of rejection. RESULTS: Ninety-two percent of mice injected with TS/A-CIITA rejected the tumor and were completely resistant to challenge with parental TS/A. Only CD4+ and CD8+ cells were required for rejection. The tumor microenvironment in TS/A-CIITA-injected mice changed dramatically when compared with the TS/A parental-injected mice. Rapid infiltration with CD4+ T cells followed by dendritic cells, CD8+ T cells, and granulocytes was observed. Importantly, TS/A-CIITA cells could act as antigen-presenting cells because they process and present nominal antigens to CD4+ T cells. Tumor-specific CD4+ T cells of TS/A-CIITA-injected mice had the functional characteristics of Th1 cells and produced IFN-gamma and this was relevant for generation and maintenance of protective antitumor response, because IFN-gamma knockout mice were no longer rejecting TS/A-CIITA tumor cells. CONCLUSION: CIITA-dependent MHC class II expression confers to TS/A tumor cells the capacity to act as a protective vaccine against the tumor by triggering tumor antigen presentation to T helper cells, antitumor polarization of cellular and soluble components of the tumor microenvironment, and establishment of antitumor immune memory.

Adenocarcinoma↗