PubMed HealthSearch

Biomedical subjects

A M Kroon

Publications and source records attributed to A M Kroon.

At least 19 recordsLinked to original sources

Grass pollen immunotherapy induces highly cross-reactive IgG antibodies to group V allergen from different grass species.

Sera from two groups of patients receiving grass pollen immunotherapy were tested on IgG reactivity with group V allergen from six different grass species. One group of patients was treated with a mixture of 10 grass species, and the other with a mixture of five. Only Lolium perenne, Dactylis glomerata, and Phleum pratense were present in both mixtures. Although Anthoxanthum odoratum and Secale cereale were absent from the mixture of five, IgG responses to Ant o V and Sec c V were comparable in both patient groups. This reactivity was inhibited for 92-99% with L. perenne extract, illustrating the cross-reactive nature of the IgG antibodies. The presence of A. odoratum and S. cereale in the mixture resulted in only minor amounts of species-specific anti-group V IgG. These results indicate that application of just one grass species in immunotherapy might be sufficient to induce an IgG response that covers other relevant Gramineae species as well.

Allergens

[Therapy of hayfever and pollen asthma in children with a new, modified allergen extract].

During a period of 3 years a controlled and prospective study was performed, in which 20 children with pollinosis and pollen asthma (grass pollen) were treated either with a new modified allergenic extract (preparation I: Purethal) or with a standard semi-depot extract (preparation II: Depot-HAL) from the same producer. During the pollen season symptoms, side effects, additional medication, and pollen counts were registered. 20 patients were treated perennially: 5 with preparation II and with reduction of the doses during the pollen season (group A: treatment during 3 successive years), 15 without reduction of the doses during te season with preparation I (group B, 8 patients: treatment during 3 successive years; group C, 7 patients: treatment during 2 successive years). Patients in all groups showed more symptoms in May and June. In the groups B and C less symptoms were recorded. Especially, the score of asthma symptoms decreased. However, the need for additional medication was somewhat higher in these groups as compared to group A. The differences were not statistically significant. In 50% of the children no local side reactions were observed after the subcutaneous injections. In the groups B and C the number of late local reactions after 6 to 8 hours was somewhat higher. The patients treated with preparation I did not show an increase of allergen-specific IgG during the pollen season. The relative contribution of allergen-specific IgG1 and IgG4 to total specific IgG was lower in the blood samples of these patients as compared to those of group A. The efficacy and the therapeutic safety of the two preparations are comparable. Preparation I has a number of practical advantages, especially in the treatment of children.

Adolescent

Mitochondrial biogenesis during the activation of lymphocytes by mitogens: the immunosuppressive action of tetracyclines.

The role of mitochondrial biogenesis and function during mitogenic stimulation of rat thymocytes was investigated. The results show that mitochondrial biogenesis is required to provide the ATP for the energy-requiring processes occurring during blastogenesis. Impairment of mitochondrial biogenesis by inhibition of mitochondrial protein synthesis inhibits blast transformation. Since the tetracyclines impair mitochondrial protein synthesis, the results offer an explanation for the well-known immunosuppressive effects of these antibiotics.

Animals

Changes in nuclear protein pattern by glucocorticoid treatment of lymphoid cells.

Glucocorticoids initiate a cytolytic process in lymphoid cells. The ultimate response is preceded by several phenomena. It is generally accepted that these are mediated through messenger proteins. The induction of these proteins is considered the primary effect of glucocorticoids. However, as yet specific gene products have not been identified. In electrophoretic assays, we observed an increased concentration of 6 nuclear proteins within a few hours of exposure of lymphoid cells to glucocorticoids. These proteins displayed prominent DNase activity. However, further studies showed: (1) that the proteins concerned are histones, (2) that histones are more easily extracted after glucocorticoid-induced alterations of lymphoid cells, and (3) that basic proteins in general express nuclease activity under certain experimental conditions. This nuclease activity is, however, artifactual. Therefore, though the changes observed are certainly related to glucocorticoid-induced effects, these do not reflect the induction of specific proteins. The results of the study indicate that glucocorticoid-induced changes in the concentration of cellular proteins should be interpreted with caution.

Animals

Inhibition of mitochondrial protein synthesis influences the glucocorticoid sensitivity of lymphoid cells.

Inhibition of mitochondrial protein synthesis impairs the formation of the 13 polypeptides encoded on the mitochondrial genome. These polypeptides are part of enzyme complexes involved in oxidative phosphorylation. Prolonged inhibition of mitochondrial protein synthesis thus reduces the oxidative phosphorylation capacity which ultimately results in impairment of energy-requiring processes. Via a different mechanism glucocorticoid hormones also decrease the oxidative phosphorylation capacity of, e.g., lymphoid cells. The present study shows that inhibition of mitochondrial protein synthesis influences glucocorticoid-induced responses of lymphoid cells in two opposing manners. (a) It is enhanced after induction in cells with a reduced oxidative phosphorylation capacity resulting from preceding inhibition of mitochondrial protein synthesis. This can be explained by the synergistic effects of glucocorticoids and prolonged inhibition of mitochondrial protein synthesis on energy-producing processes. (b) It is counteracted when mitochondrial protein synthesis is impaired during induction of the response. The latter observation suggests that mitochondrial protein synthesis is involved in the generation of glucocorticoid-induced effects on lymphoid cells.

Adrenalectomy

Doxycycline in combination chemotherapy of a rat leukemia.

Inhibition of mitochondrial protein synthesis by doxycycline (DC), a tetracycline analogue, has significant antitumor effects in several tumor systems. In the present study, the effects of continuous DC treatment combined with intermittent administration of Adriamycin or 1-beta-D-arabinofuranosyl cytosine on the growth of a rat leukemia were investigated. The presence of DC retards tumor relapse after 1-beta-D-arabinofuranosyl cytosine or Adriamycin treatment significantly. DC may therefore be of value in several modalities of antitumor treatment.

Animals

Mitochondrial biogenesis and mitochondrial activity during the progression of the cell cycle of human leukemic cells.

Mitochondrial (mt) biogenesis and mt function were investigated during the cell cycle of leukemic cells. The study shows that the activity of enzymes involved in oxidative phosphorylation increases in the early G1 phase. This increase in activity precedes that of other mt enzymes such as citrate synthase and adenylate kinase. Therefore, the synthesis of mt enzymes, needed for the reduplication of the mt mass in the course of the cell cycle, occurs in a sequential order. The enzymes of the system for oxidative phosphorylation are composed of several subunits. Some of these subunits are encoded on mtDNA and synthesized by mt-specific RNA and protein synthesis. This explains why inhibition of mt protein synthesis during the progression of the cell cycle of G1-enriched cells results in an increasing shortage of ATP. This lack of ATP results first in progression delay and, subsequently, in a cell cycle block in early G1. Furthermore, shortage of ATP impairs the increase in activity of at least one mt matrix enzyme. This study offers new information about a number of aspects of mt biogenesis and mt function during cell cycle progression and elucidates the cytostatic mechanism resulting from prolonged inhibition of mt protein synthesis.

Adenosine Diphosphate

Different effects of oxytetracycline and doxycycline on mitochondrial protein synthesis in rat liver after long-term treatment.

The tetracyclines inhibit specifically mitochondrial (mt) and bacterial protein synthesis when they are present in low concentrations (2-10 micrograms/ml). There is no difference between the various members of this group of antibiotics in this respect. In the present study, however, it is shown that the inhibitory effect of doxycycline on mt-protein synthesis in rat liver is partially lost after continuous treatment for more than 1 week, whereas oxytetracycline continues to inhibit mt-protein synthesis effectively after 1 week of treatment. To find an explanation for this difference between doxycycline and oxytetracycline, a detailed study was made of the distribution and the effects on mt-protein synthesis of both tetracyclines under various conditions in rat liver. The results of the studies lead to the hypothesis that doxycycline treatment induces the formation of a doxycycline complex, and thus to a reduced amount of free doxycycline. This may explain the loss of effective inhibition of mt-protein synthesis.

Animals

Biogenesis of mitochondria and genetics of mitochondrial defects.

Mitochondria are formed by the concerted action of two genetic systems: the nucleocytoplasmic system and the intrinsic mitochondrial system. The genetic contribution of the mitochondria is modest because the genetic potential of mtDNA of mammals is restricted to the equivalent of about 16,000 base pairs. For various animals and man the complete base sequence of mtDNA is known and all possible polypeptide genes have now been assigned to subunits of the respiratory enzymes. The mtDNA sequences are not present on the nuclear genome. From a genetic point of view it is important that the inheritance of mtDNA is strictly maternal. Mutations of mtDNA primarily lead to impairments of energy metabolism. In view of the indispensability of oxidative phosphorylation for obligatory aerobic organisms, such mutations should be lethal. However, there are various inborn errors of metabolism with tissue-specific manifestations, which are maternally inherited. The question discussed is whether these diseases can be explained on the basis of mutations of mitochondrial gene products. Tissue specificity poses a special problem, since it is not very attractive to assume that there is a heterogenous population of mtDNA molecules in the fertilized egg. Therefore, one should rather think in terms of a double mutational event, one tissue-specific cytoplasmic and the other general mitochondrial. These mutations only give rise to metabolic disturbances if they are expressed together in the same cell.

Animals

The effect of inhibition of mitochondrial protein synthesis on the proliferation and phenotypic properties of a rat leukemia in different stages of in-vivo tumor development.

It has been shown before that prolonged treatment with doxycycline (DC), an inhibitor of mitochondrial protein synthesis, leads to proliferation arrest of a leukemia in the rat and, moreover, to eradication of this tumor. It has also been demonstrated that the period of treatment required to achieve this is shorter when DC administration is started in later stages of tumor progression. Therefore, the leukemic cells may have properties with regard to DC sensitivity which change with time during tumor progression. In the present study this hypothesis was tested by studying the permeability for DC, the presence of cell-surface molecules, and the mitochondrial content of the leukemic cells in various stages of tumor development in control and in DC-treated rats. Changes in DC permeability or antigenic phenotype were not observed, but the content of mitochondria decreases during tumor progression. DC treatment leads to an additional reduction of the content of functional mitochondria which results in proliferation arrest. The higher mitochondrial content of the leukemic cells during the earlier stages of tumor development explains thus why a longer period of DC treatment is needed to achieve growth arrest when treatment is started in these stages.

Animals

The effect of doxycycline on polyvinylpyrrolidone-induced granuloma formation in the rat liver.

The tetracyclines specifically inhibit mitochondrial protein synthesis when present at the same low concentrations as used for their antibacterial action. Inhibition of mitochondrial protein synthesis leads to decrease in the oxidative energy-generating capacity of cells. Therefore, the presence of tetracyclines may result in proliferation arrest. In the present study we show that continuous intravenous administration of polyvinylpyrrolidone (PVP) induces the formation of granulomas in the normal rat liver; the rats usually die within 2 weeks of continuous PVP treatment. Athymic (nude) rats appear to be more resistent to the deleterious effects of PVP as they survive the treatment for at least 5 weeks. Although the livers of the PVP-treated nude rats are heavily infiltrated with phagocytic cells, they seldom show granulomas. Reconstitution of nude rats with syngenic thymocytes leads, on the other hand, to extensive granuloma formation. Normal rats treated continuously with PVP plus doxycycline, however, all survive, their livers showing only a few very small granulomas and the normal low number of phagocytic cells. We conclude that the formation of granulomas induced by PVP is a process which is mediated by T-lymphocytes. Because doxycycline prevents this kind of granuloma formation it seems likely that doxycycline not only impairs the proliferation and differentiation of T-lymphocytes but also of monocytes and macrophages.

Animals

Inhibition of mitochondrial protein synthesis leads to proliferation arrest in the G1-phase of the cell cycle.

Mitochondrial protein synthesis is specifically inhibited by low concentrations of tetracyclines. Prolonged inhibition of mitochondrial protein synthesis leads to a lack of oxidative ATP generating capacity, which results in proliferation arrest of normal and malignant cells of epithelial origin, as has been shown previously. The present study indicates that this holds true also for fibroblasts and sarcoma cells. It is shown that this proliferation arrest leads to accumulation of the growth-arrested cells in the G1-phase of the cell cycle. This offers several interesting possibilities to use tetracyclines in anticancer combination therapies.

Animals

Arrest of the proliferation of renal and prostate carcinomas of human origin by inhibition of mitochondrial protein synthesis.

The results described in this paper demonstrate that proliferation arrest by low concentrations of tetracyclines, which has previously been shown in experiments with animal tumor systems, can also be achieved in tumor systems of human origin. Tetracyclines specifically inhibit mitochondrial protein synthesis. Prolonged and continuous impairment of protein synthesis inside the mitochondria leads to reduction of the cellular concentration of the polypeptide products which are coded and synthesized within mitochondria. These products are part of the oxidative phosphorylative system of the cell. Long-term tetracycline treatment leads to a decrease of oxidative ATP-generating capacity as monitored by cytochrome c oxidase activity. This may cause severe energetic or metabolic disturbances which explain the proliferation arrest observed. Proliferation arrest, provided that mitochondrial protein synthesis is blocked effectively, is found in vitro as well as in vivo. It is shown that the effect of doxycycline is not limited to cytostasis; prolonged doxycycline treatment is clearly cytotoxic for the tumor cells.

Animals

Specific inhibition of mitochondrial protein synthesis influences the amount of complex I in mitochondria of rat liver and Neurospora crassa directly.

Specific inhibition of mitochondrial protein synthesis reduces the oxidation rate of NADH-linked substrates in rat liver as well as in Neurospora crassa mitochondria. The present study shows that this is due to the fact that inhibition of mitochondrial protein synthesis leads to a decrease of the concentration of active complex I. Therefore, these results demonstrate that at least one of the genes for the subunits of complex I is localized on mitochondrial DNA.

Animals

The effect of long-term inhibition of mitochondrial protein synthesis on the oxidation capacity of mitochondria for NADH-linked substrates.

Experiments are presented showing that specific inhibition of mitochondrial protein synthesis by tetracyclines decreases the activity of the NADH-dehydrogenase complex in liver mitochondria, if rats are treated for long periods with these antibiotics. The corresponding inhibition of this complex in tumor cells (Zajdela hepatoma) and tumor mitochondria (Leydig cell tumor) is even more pronounced. It is concluded that the mitochondrial genetic system is involved in the assembly of the NADH-dehydrogenase complex, most likely by coding for one or more subunits. It is argued that this information, contrary to the situation for cytochrome c oxidase, the cytochrome bc1 complex and ATPsynthase, has been missed in previous experiments employing differential inhibition of mitochondrial protein synthesis, because of the circumstance that the inhibition did not reach the level at which it became rate-limiting.

Animals

The antitumour effect of doxycycline on a T-cell leukaemia in the rat.

Previous studies showed that T-lymphoid cells are permeable to the tetracyclines, whereas B-lymphoid and erythroid cells are not. The tetracyclines impair mitochondrial protein synthesis if they have access to cells. Inhibition of mitochondrial protein synthesis during a number of cell cycles results, as a consequence, in proliferation arrest. The tetracyclines can therefore be considered as cytostatics. In the present study the effect of prolonged treatment with doxycycline on the growth of a T-cell type leukaemia of the rat was investigated. It is shown that doxycycline treatment inhibits not only tumour cell proliferation, but leads moreover to complete tumour eradication. The way by which the latter is achieved depends on the doxycycline concentration and, surprisingly, on the stage of tumour progression at which doxycycline administration is started. As, because of the permeability barrier, the proliferation of erythroid and B-lymphoid cells is not affected by the tetracyclines, the tetracyclines may provide a tool without serious side-effects in the therapy of T-type tumours.

Animals

The mitochondrial genetic system as a target for chemotherapy: tetracyclines as cytostatics.

The mitochondrial genetic system is indispensable for the biosynthesis of the enzyme complexes involved in aerobic energy generation. Tetracyclines inhibit the expression of only the mitochondrial genes because they specifically block mitochondrial protein synthesis. A salient feature is that this inhibition occurs at the low concentration required for anti-bacterial treatment, provided that this concentration is maintained continuously. Evidence is presented that the growth of carcinogen-induced tumors can be inhibited by tetracyclines. It is further shown that the development in the cheek pouch of the Syrian hamster of a transplantable hypernephroma from human origin can be strongly retarded by tetracyclines as well. Therefore, the mitochondrial genetic system has to be reckoned as a target for chemotherapy and tetracyclines as cytostatic agents.

Animals