Search PubMed⌕ Search

SEARCH · Search PubMed

Results for “Cellular Microenvironment”

Search indexed PubMed citations on genomics, clinical trials, systematic reviews and public health. Explore titles, authors and supplied subject terms, then open the PubMed record.

Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.

At least 1,081 records · Page 60Linked to original sources

Thymocyte migration: an affair of multiple cellular interactions?

Cell migration is a crucial event in the general process of thymocyte differentiation. The cellular interactions involved in the control of this migration are beginning to be defined. At least chemokines and extracellular matrix proteins appear to be part of the game. Cells of the thymic microenvironment produce these two groups of molecules, whereas developing thymocytes express the corresponding receptors. Moreover, although chemokines and extracellular matrix can drive thymocyte migration per se, a combined role for these molecules appears to contribute to the resulting migration patterns of thymocytes in their various stages of differentiation. The dynamics of chemokine and extracellular matrix production and degradation is not yet well understood. However, matrix metalloproteinases are likely to play a role in the breakdown of intrathymic extracellular matrix contents. Thus, the physiological migration of thymocytes should be envisioned as a resulting vector of multiple, simultaneous and/or sequential stimuli involving chemokines, adhesive and de-adhesive extracellular matrix proteins, as well as matrix metalloproteinases. Accordingly, it is conceivable that any pathological change in any of these loops may result in the alteration of normal thymocyte migration. This seems to be the case in murine infection by the protozoan parasite Trypanosoma cruzi, the causative agent of Chagas' disease. A better knowledge of the physiological mechanisms governing thymocyte migration will provide new clues for designing therapeutic strategies targeting developing T cells.

Animals↗

Granulopoiesis in anemic Belgrade laboratory (b/b) rats.

The aim of this study was to clarify the nature of the abnormalities of granulopoiesis in anemic b/b rats. The size of different granulocytic cell compartments (granulocytic and macrophage precursor cells, proliferative and nonproliferative morphologically recognizable granulocytic cells) in the bone marrow, spleen, and peripheral blood was determined, and activity of granulocytic stimulators (colony-stimulating activities derived from lung-conditioned medium of endotoxin-treated rats and from spleen cells stimulated in vitro with pokeweed mitogen) was investigated. Depressed bone marrow granulopoiesis and expanded granulopoiesis in the spleen, together with the sustained production of granulocytic stimulators, was found in anemic b/b rats. It is suggested that the changes within the bone marrow microenvironment are the essential cause of disturbances of granulopoiesis in anemic b/b rats. The increased proliferation of granulocytic cells in iron-treated b/b rats indicates a role of iron in the cellular proliferation.

Anemia↗

Maintenance of hemopoiesis in long-term bone marrow cultures from S1/S1d and W/Wv mice.

Although phenotypically similar, the cellular defects in congenitally anemic mice of genotype W/Wv and S1/S1d are quite different. W/Wv mice have defective hemopoietic stem cells; in contrast, S1/S1d mice have normal stem cells, but their hemopoietic microenvironment cannot support normal differentiation of the stem cells. We also observed defective hemopoiesis as measured by granulocyte-macrophage colony-forming units (GM-CFU) in long-term bone marrow cultures (LTBMC) established with marrow from these mutants, but in contrast to an earlier report we obtained long-term maintenance of hemopoiesis (up to 20 weeks) albeit at a lower level than the control (28% of control for S1/S1d and 23% for W/Wv). These levels probably reflect more accurately the in vivo effects of the mutations than the severe defect reported previously. However, this level of hemopoiesis and the high variability observed in replicate flasks in LTBMC make it difficult to study these mutants in tissue culture.

Animals↗

Apoptosome impairment during development results in activation of an autophagy program in cerebral cortex.

The deficiency of upstream regulators of the mitochondrial death pathway has been recently shown to trigger in vitro a cellular process of self-clearance with features of autophagy. We show here that, when Apaf1 (responsible for apoptosome formation) is downregulated in vivo in cortical precursors, cells express markers of neuronal differentiation, accumulate in ectopic cortical masses and show hallmarks of the beclin-1-dependent pathway of autophagy, probably activated by a depletion in growth factors in the cells' microenvironment. To visualize this process in a cell culture model system, we also used a neural precursor cell line to mimic growth factor starvation in the absence of the apoptosome and tracked autophagolysosome formation. Our findings demonstrate the existence of an interplay between the autophagy and apoptosis pathways in vivo in brain development, and possibly link the absence of apoptosis to the occurrence of pathological conditions associated with peculiar cellular morphotypes.

Animals↗

In vitro modulation of cell-mediated immunity by prostaglandin E2. I. Enhancing-inhibitory effects on antibody-dependent cellular cytotoxicity.

The modulating effects of Prostaglandin E2, solubilized in medium, were observed in the antibody-dependent cytotoxic system. The pretreatment of effector cells with PGE2 up to 5 hours increased significantly the cytotoxic activity. The enhancement was distributed in both Non-T and T lymphocyte fractions suggesting a more pronounced activation of K cells. The effect was abrogated by pretreating lymphocyte suspensions with Indomethacin before exposure to prostaglandin. On the other hand, the addition of PGE2 during the test led to an inhibition of the cytotoxic capacity. Taken together, these results imply either a relationship between endogenously produced PGE2 and the concentration of exogenous PGE2 or the influence of PGE2 on microenvironment (i. e. exchange of calcium and magnesium through the cell membrane) during the cytolytic phenomenon.

Antibody-Dependent Cell Cytotoxicity↗

Tumor acidity, ion trapping and chemotherapeutics. I. Acid pH affects the distribution of chemotherapeutic agents in vitro.

Resistance to anti-cancer chemotherapies often leads to regional failure, and can be caused by biochemical and/or physiological mechanisms. Biochemical mechanisms include the overexpression of resistance-conferring proteins. In contrast, physiological resistance involves the tumor microenvironment, and can be caused by poor perfusion, hypoxia and/or acidity. This communication investigates the role of tumor acidity in resistance to a panel of chemotherapeutic agents commonly used against breast cancer, such as anthracyclines, taxanes, anti-metabolites and alkylating agents. The effects of pH on the cytotoxicity of these agents were determined, and ion trapping was confirmed by monitoring the effect of pH on the cellular uptake of radiolabeled anthracyclines. Furthermore, pH-dependent cytotoxicity and uptake were compared between parental drug sensitive MCF-7 cells and variants overexpressing p-glycoprotein (MDR-1) and Breast Cancer Resistance Protein. These data indicate that the magnitude of physiological resistance from pH-dependent ion trapping is comparable to biochemical resistance caused by overexpression of drug efflux pumps. Hence, microenvironment-based ion trapping is a significant barrier to anthracycline-based chemotherapy and can itself be a therapeutic target to enhance the efficacy of existing chemotherapies.

Acids↗

Analysis of low natural killer cell activity in 89Sr-treated mice.

Treatment of mice with the long-lived bone-seeking radioisotope 89Sr results in the selective irradiation and destruction of the bone marrow. This is accompanied by a marked reduction in natural killer cell activity against YAC-1 lymphoma [NK(YAC-1)]. To test for the presence of cellular suppressors of NK(YAC-1) in 89Sr-treated mice, in vitro and in vivo cell mixture protocols were used. In vitro, we did not observe any specific inhibitory effect of spleen cells from 89Sr-treated mice on NK(YAC-1) activity of normal spleen cells. The NK(YAC-1) activity of 89Sr-treated mice, measured in vivo by their ability to clear radiolabeled YAC-1 cells from the lungs, was impaired. However, spleen cells from 89Sr-treated mice, when adoptively transferred with normal spleen cells, failed to inhibit the NK(YAC-1) activity of the latter in the lung clearance assay. Further, when normal spleen cells were injected into 89Sr-treated mice, the ability of the transferred cells to mediate in vivo activity was not suppressed in the 89Sr-treated host. These experiments support the suggestion that the low NK(YAC-1) activity in 89Sr-treated mice is not mediated by suppressor cells, but may be due to the destruction of the marrow microenvironment which is essential for the generation of functional NK(YAC-1) cells.

Animals↗

Patterns of tumor oxygenation and their influence on the cellular hypoxic response and hypoxia-directed therapies.

Deficiencies in the oxygenation of solid tumors are associated with poor patient prognosis due to changes in cell metabolism, angiogenesis, invasiveness and resistance to therapy. Work over the past 10 years has defined several distinct oxygen sensing pathways that together determine the cellular response to hypoxia. These include both a transcriptional response initiated by oxygen-dependent stabilisation of the HIF-1 transcription factor and an mRNA translational response characterized by activation of the unfolded protein response (UPR) and inhibition of mTOR signalling. Laboratory experiments have established the importance of these hypoxic response pathways for tumor growth and resistance to treatment. This has led to the development of agents aimed at targeting hypoxic response pathways in tumors, several of which are in clinical trials. However, several important features of the tumor microenvironment that may affect the success of these new therapies have not been thoroughly evaluated. Oxygenation patterns in human tumors have proven to be highly complex, leading to a large degree of heterogeneity with respect to the severity and duration of hypoxic exposure. Because both of these properties strongly influence the known cellular responses to hypoxia, this heterogeneity is expected to be a strong determinant of the fate of hypoxic cells and the success of new hypoxia-directed therapies. Here we summarize the important oxygen response pathways that currently serve as targets for therapy and their dependence on the specific oxygenation patterns that are expected in human tumors.

Animals↗

Release of cellular proteases into the acidic extracellular milieu exacerbates Ebola virus-induced cell damage.

Ebola virus is highly cytopathic through mechanisms that are largely unknown. We present evidence that progressive acidification of the extracellular milieu by Ebola virus-infected cells combined with reduced levels of natural cysteine protease inhibitor makes the cells vulnerable to uncontrolled proteolysis of extracellular matrix components by released active endosomal cathepsins, thereby exacerbating Ebola virus-induced cell destruction. The cell surface microenvironment was shown to be crucial in aiding this activity. Blocking the proteolytic activity with the cathepsin inhibitor E64 resulted in remarkable improvements with respect to viral cytopathicity and cell survival despite an overwhelmingly high viral load. We propose that the observed enzymatic matrix degradation, enhanced by an associated protease/inhibitor imbalance and metabolic acidosis, represents an effective viral strategy to boost infection and underlies, in part, the remarkable pathogenesis caused by Ebola virus. Further in vitro and in vivo research will establish whether a cellular protease with hemorrhagic activity is the leading cause of vascular leakage-the hallmark of Ebola virus hemorrhagic fever-and help understand the Ebola virus caused cell death.

Animals↗

Nutritive phagocyte incubation chambers provide a structural and nutritive microenvironment for germ cells of Strongylocentrotus droebachiensis, the green sea urchin.

Here we characterize the germinal epithelia of both sexes of Strongylocentrotus droebachiensis, the green sea urchin, throughout its annual gametogenic cycle, using light and electron microscopy and cytochemistry. In both sexes, germinal epithelia include two interacting cellular populations: nutritive phagocytes (NPs) and germ cells. After spring spawning, NPs accumulate nutrients; amitotic oogonia and often mitotic spermatogonia occur in clusters beneath NPs; and subsequent gametogenic stages are residual or absent. During the summer, NP nutrients are mobilized for use in vitellogenesis by residual primary oocytes or to support limited spermatogenesis. In addition, some residual primary oocytes may degenerate and be phagocytized by NPs. Significant nutrient mobilization from NPs and substantial gonial cell mitoses (indicative of new gametogenesis) occur in the fall. In both sexes, all of these changes are facilitated by NPs that form basal incubation chambers near the gonadal wall and within which germ cells are surrounded by nutrients released from the NPs. In females, germ cells at several stages of gametogenesis may be housed in separate chambers in the same NP. Primary oocytes also carry out jelly coat formation, meiosis, and cortical granule translocation within NP incubation chambers. In males, many NPs cooperate to provide large continuous chambers that contain spermatogenic cells at diverse stages. In both sexes these chambers persist throughout the year and isolate gametogenesis from the gonadal lumen. NPs become slender and shorten as their nutrients are depleted. Ova or spermatozoa are stored in the gonadal lumen. Post-spawning, NPs phagocytize differentiated germ cells while simultaneously enclosing intact gonial and residual gametogenic cells in basal chambers near the gonadal wall. In light of our observations, we suggest investigating proteins that may be important in the structural, phagocytic, and nutritive functions of NPs and for which corresponding genes have already been identified in the genome of S. purpuratus, the closely related purple sea urchin.

Animals↗

Dissecting the hematopoietic microenvironment. IV: regeneration of splenic microstructure- prerequisites and chronology of reconstruction.

A chronologic study was made of whole organ necrosis and subsequent regeneration in the pedicle ligated mouse spleen. The whole organ necrosis involved all but a thin layer of cells including and beneath the splenic capsule. Cellular regeneration issued from these surviving cells and was seen to proceed inward along remaining noncellular reticular fiber tracts throughout the spleen, resulting in complete architectural restoration. Destruction of these fibers resulted in failure of orderly reconstruction of splenic substance. A subcapsular vascular space was made prominent by the ligation and appeared to completely circumscribe the internal splenic substance. Regeneration appeared to begin with cells just central to this space. Reconstruction of the ligated spleen was architecturally complete within 40 days.

Aging↗

The pathophysiology of focal epilepsy: neurophysiological considerations.

The study of epilepsy serves to emphasize the importance of integrating basic research with clinical data. In this selective review, the results of recent experiments using intracellular recording techniques, ion-specific microelectrodes, and a methodology suitable for studying mammalian cortex in vitro are discussed in terms of cellular phenomena which underlie clinical observations made in epileptic patients. This information has begun to clarify: (1) the changes in neuronal behavior associated with interictal and ictal events; (2) alterations in local ionic microenvironment which occur during focal epileptogenesis; (3) intrinsic control mechanisms which serve to restrict seizure spread; (4) neuronal characteristics which account for the differences in seizure patterns seen in infants and adults; and (5) the possible long-term consequences of recurrent local neuronal hyperexcitability.

Adult↗

Regional influences on the physical properties of T cell membranes.

Differences in the composition of membrane lipids are well documented between cells from distinct tissues. These differences may be manifested by changes in the motional freedom or fluidity of lipid molecules within plasma membranes and may predispose to alterations in cellular function. Regional influences on immune function have been implied by the finding that thymic-derived cells from murine spleen and lymph nodes are differentially responsive to antigen priming. The possibility that microenvironment also shapes the physical properties of T lymphocyte membranes has not been explored and is the focus of this study. Using mice as the experimental model, differences were found in fluidity and in the resting level of intracellular free-ionized Ca2+ between splenic and lymph node T cells from immunologically normal mice and from autoimmune-prone MRL-lpr/lpr mice. The results indicate that T cells are more heterogeneous than previously recognized and suggest a potential role for microenvironment in determining immune responsiveness.

Animals↗

Functional characterization of human osteoclast inhibitory peptide-1 (OIP-1/hSca) gene promoter.

We have recently identified and characterized the human osteoclast (OCL) inhibitory peptide-1 (OIP-1/hSca), a member of Ly-6 gene family. OIP-1 is an important physiologic regulator of OCL development and bone resorption activity. To determine the molecular mechanisms that regulate OIP-1 gene expression in OCL precursor cells, we isolated and characterized the OIP-1/hSca gene (2 Kb) promoter sequence. IFN-gamma (50 ng/ml) treatment of RAW 264.7 macrophage cells transfected with OIP-1 gene (-1 to -1988 bp relative to transcription start site) promoter-luciferase reporter plasmid demonstrated a significant (4 fold) increase in OIP-1 gene promoter activity. Sequence analysis of OIP-1 gene promoter region further identified a potential Stat-1 binding motif at -1629 to -1639 bp position. Stat-1 specific inhibitor, fludarabine (50 muM) abolished IFN-gamma stimulated OIP-1 gene promoter activity. Electrophoretic mobility shift assay (EMSA) further confirmed activated Stat-1 binding to the OIP-1 gene promoter sequence suggesting that IFN-gamma regulates OIP-1 gene expression in OCL precursor cells through a Stat-1 dependent signaling pathway. We further show that knock-down of TRADD enhances IFN-gamma signaling to increase OIP-1 gene expression in OCL precursor cells. These results should provide insights into the molecular control of OIP-1 gene expression and inhibition of OCL activity in the bone microenvironment.

ATPases Associated with Diverse Cellular Activitie↗

Hemopoiesis-stimulating action of adamantylamide dipeptide: kinetics of increase of GM-CFC in femur and co-stimulating activity of serum, role of bone marrow stromal cells.

Chief part of hemopoietic stromal cells in mediating hemopoiesis-stimulating effects of adamantylamide dipeptide (AdDP), a synthetic immunomodulatory compound, has been determined in a series of combined in vivo/in vitro studies. Indirect stimulatory effect of AdDP on proliferation of hemopoietic progenitor cells for granulocytes and macrophages (GM-CFC) was proved to be mediated by the cells of hemopoietic microenvironment growing as adherent stromal cell populations in vitro. These results supplement previously reported findings of a positive role which is played by AdDP at modulating the interplay among stimulatory cytokines and their cellular sources, and are in consent with the idea to introduce AdDP as a constituent of the hemopoiesis- and immunity-stimulating supportive medical care.

Adjuvants, Immunologic↗

The role of the regional lymph node in the response to secondarily vascularized grafts.

Studies using neonatal hearts grafted into the foot pads of adult rats have shown significant differences in the tempo of rejection in various RT1-incompatible combinations of donor and recipient rats. The model allows simultaneous study of events in the graft and in the regional node draining the graft. Removal of the regional node in the inductive stages of the immune response resulted in highly significant prolongation of graft survival. This effect was not due to lymphatic interruption per se or to clonal deletion. The effect was independent of the presence of the primary graft. Second grafts implanted in animals from which both the original graft and its regional node had been removed showed prolonged survival. Once survival of the original graft, from which the node was removed, was established, survival of second grafts bearing the same antigens was also prolonged, although third-party grafts were rejected in first set time. The data suggest that the microenvironment and anatomical connections of the lymph node that first receives antigen, or the cells that have contacted antigen in the graft, or both, play a vital role in an orderly sequence of cellular interaction and migration that culminates in graft rejection. Interruption of this sequence by node removal appears to divert the alloimmune response toward specific enhancement of the graft.

Animals↗

Oxidant stress in renal pathophysiology.

Despite recent progress in identifying a number of important factors that may play central roles in various renal diseases, the precise molecular basis of renal injuries remains unclear. Recent studies have documented an important role for oxidant stress in several renal diseases. Oxidant stress by overproduction of reactive oxygen species, generation of reactive nitrogen species, and/or modulation of cellular antioxidant enzyme activities, resulting in the activation of certain transcription factors, and synthesis and/or release of inflammatory cytokines, chemokines, growth factors, and extracellular matrix proteins. These changes alter the balance in the microenvironment of the kidney, and may activate signaling cascades that induce and propagate renal injury. Complex molecular interactions and cross-talk between the activated signaling pathways, in turn, define the nature and clinical course of the disease process. In this article, we will briefly present the relevance of the oxidant stress in the pathogenesis of various renal diseases.

Animals↗

Decoding glioblastoma evolution and heterogeneity through mechanistic modeling: implications for clinical translation.

Glioblastoma (GBM) is one of the most aggressive and lethal primary brain tumors in adults, characterized by dynamic clonal evolution and extensive genomic, cellular, spatial, and microenvironmental heterogeneity. Multi-omics studies have revealed that GBM follows complex evolutionary trajectories involving genetic, epigenetic, transcriptional, and immune-microenvironmental remodeling as tumors grow, adapt to the brain microenvironment, and acquire therapeutic resistance. Increasing evidence suggests that GBM may originate from aberrant neural stem or progenitor cells, including those residing in the subventricular zone, and that glioblastoma stem cells (GSCs) contribute to tumor propagation, heterogeneity, and recurrence. A key conceptual challenge is to reconcile hierarchical cancer stem cell models, in which GSCs are viewed as relatively stable tumor-propagating subpopulations, with dynamic state plasticity models, in which stem-like properties can be reversibly acquired or lost during transitions among proneural-like, mesenchymal-like, invasive, and therapy-tolerant states. Recent advances in single-cell profiling, spatial transcriptomics, lineage tracing, organoid culture, 3D bioprinting, genetically engineered models, and artificial intelligence (AI)-assisted computational modeling have substantially improved the ability to study these processes. However, no currently available model fully recapitulates human GBM heterogeneity, recurrence, treatment history, and tumor-microenvironment interactions. Therefore, model selection should be guided by clearly defined mechanistic questions rather than by reliance on any single platform. This review summarizes current advances in in vitro, ex vivo, in vivo, and computational models for studying GBM evolution and heterogeneity, and discusses how integrated model pipelines may improve preclinical drug testing, treatment-response prediction, and precision neuro-oncology.

Humans↗