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Changes in gene expression in response to polyamine depletion indicates selective stabilization of mRNAs.

We used differential display analysis to identify mRNAs responsive to changes in polyamine synthesis. As an overproducing model we used the kidneys of transgenic hybrid mice overexpressing ornithine decarboxylase and S-adenosylmethionine decarboxylase, two key enzymes in polyamine biosynthesis. To identify mRNAs that respond to polyamine starvation, we treated Rat-2 cells with alpha-difluoromethylornithine, a specific inhibitor of polyamine biosynthesis. We isolated 41 partial cDNA clones, representing 37 differentially expressed mRNAs. Of these, 15 have similarity with known genes, five appear to be similar to reported expressed sequence tags and seventeen clones were novel sequences. Of the 35 mRNAs expressed differentially after alpha-difluoromethylornithine treatment, 26 were up-regulated. The expression of only three mRNAs was altered in the transgenic animals and all three were down-regulated. Determination of mRNA half-life of three of the mRNAs up-regulated in response to polyamine depletion revealed that the accumulation results from stabilization of the messages. Because most of the transcripts identified from Rat-2 cells suffering polyamine starvation were accumulated, we conclude that polyamine depletion, while blocking cell growth, is stabilizing mRNAs. This may be due to the lack of spermidine for post-translational modification of the eukaryotic initiation factor 5A, which plays a major role in mRNA turnover. The coupling of mRNA stabilization with cell-growth arrest in response to polyamine starvation provides cells with an economical way to resume growth after recovery from polyamine deficiency.

Adenosylmethionine Decarboxylase↗

Properties of a polyamine transporter regulated by antizyme.

The regulation of polyamine transport by antizyme, a protein that is involved in the rapid degradation of ornithine decarboxylase (ODC), was studied in FM3A mouse cells overproducing ODC. Both artificial (Z1) and natural antizymes not only inhibited polyamine uptake but also stimulated polyamine excretion. The properties of the polyamine transporter regulated by antizyme were characterized. The uptake of radiolabelled polyamines was inhibited by excess acetylpolyamines and a protonophore, CCCP (carbonyl cyanide m-chlorophenylhydrazone), whereas the excretion of radiolabelled polyamines was stimulated by unlabelled polyamines, acetylpolyamines and CCCP in the medium. Furthermore, it is shown that polyamines and acetylpolyamines are excreted from cells. On the basis of the results, it is discussed how antizyme regulates polyamine transport negatively.

Animals↗

Erythrocyte polyamines and prognosis in colorectal cancer patients.

BACKGROUND: Polyamines play a role in cell proliferation and in cancer development: they are mainly carried by red blood cells (RBCs). Abnormally high polyamine levels in RBCs have been demonstrated in patients with various types of cancer and the prognostic value of RBC polyamine levels has also been underlined. Our aims were to compare polyamine levels in RBCs from colorectal adenocarcinoma (CRA) patients with those from non neoplastic patients and to evaluate the prognostic value of pre-treatment polyamine erythrocyte levels. PATIENTS AND METHODS: Sixty-one patients with colorectal cancer and 28 surgical patients affected by non neoplastic diseases were included in this study. RBCs polyamine levels were evaluated by HPLC. RESULTS: Significantly higher spermidine, spermine and total polyamine levels were found in RBCs from CRA patients compared to those from control patients. However, there was no significant difference in the survival of patients with different polyamine levels. CONCLUSION: Our findings show that RBC polyamine levels are not a biologic parameter that may help to discriminate between good and poor prognosis in colorectal cancer patients.

Adenocarcinoma↗

Molecular correlates of the action of bis(ethyl)polyamines in breast cancer cell growth inhibition and apoptosis.

Polyamines are known to be involved in cell growth regulation in breast cancer. To evaluate the efficacy of bis(ethyl)polyamine analogs for breast cancer therapy and to understand their mechanism of action we measured the effects of a series of polyamine analogs on cell growth, activities of enzymes involved in polyamine metabolism, intracellular polyamine levels, and the uptake of putrescine and spermidine using MCF-7 breast cancer cells. The IC50 values for cell growth inhibition of three of the compounds, N1,N12-bis(ethyl)spermine, N1,N11-bis(ethyl)norspermine, and N1,N14-bis(ethyl)homospermine, were in the range of 1-2 microM. Another group of three compounds showed antiproliferative activity at about 5 microM level. These compounds are also capable of suppressing colony formation in soft agar assay and inducing apoptosis of MCF-7 cells. The highly effective growth inhibitory agents altered the activity of polyamine biosynthetic and catabolic enzymes and down-regulated the transport of natural polyamines, although each compound produced a unique pattern of alterations in these parameters. HPLC analysis showed that cellular uptake of bis(ethyl)polyamines was highest for bis(ethyl)spermine. We also analyzed polyamine analog conformations and their binding to DNA minor or major grooves by molecular modelling and molecular dynamics simulations. Results of these analyses indicate that tetramine analogs fit well in the minor groove of DNA whereas, larger compounds extend out of the minor groove. Although major groove binding was also possible for the short tetramine analogs, this interaction led to a predominantly bent conformation. Our studies show growth inhibitory activities of several potentially important analogs on breast cancer cells and indicate that multiple sites are involved in the mechanism of action of these analogs. While the activity of an analog may depend on the sum of these different effects, molecular modelling studies indicate a correlation between antiproliferative activity and stable interactions of the analogs with major or minor grooves of DNA.

Acetyltransferases↗

Combination of standard cytotoxic agents with polyamine analogues in the treatment of breast cancer cell lines.

Polyamines are essential for cell growth and differentiation. Structural polyamine analogues have been shown to have antitumor activity in experimental models including breast cancer. The ability of polyamine analogues to alter activity of cytotoxic chemotherapeutic agents in breast cancer models has not been evaluated. This study evaluates the ability of two polyamine analogues, N1-ethyl-N11-[(cyclopropyl)methyl]-4,8-diazaundecane (CPENSpm) and N1-ethyl-N11-[(cycloheptyl)methyl]-4,8-diazaundecane (CHENSpm) to synergize with cytotoxics in five human breast cancer cell lines. Antagonism, additivity, or synergy of the combinations was determined using the median effect/combination index model. The chemotherapeutic agents chosen, cis-diaminechloroplatinum(II), doxorubicin, 5-fluorouracil, fluorodeoxyuridine, 4-hydroperoxycyclophosphamide, paclitaxel, docetaxel, and vinorelbine, all have antitumor activity in breast cancer and represent a spectrum of mechanisms. Three treatment schedules of polyamine analogue and cytotoxic were tested in MCF-7 and MDA-MB-468 lines, demonstrating a schedule-dependence of synergistic growth inhibition. Cytotoxic agent alone for 24 h followed by polyamine analogue alone for 96 h resulted in the most synergistic combinations and the greatest synergy. This schedule was then tested in three additional breast cancer lines, and several synergistic combinations were again identified. Two cytotoxics, vinorelbine and the fluoropyrimidines, showed the most promise in combination with the polyamine analogues. They were able to synergize with one or both polyamine analogues in most of the breast cancer cell lines. CPENSpm was also able to synergize with virtually all of the cytotoxics in the estrogen receptor alpha-positive MCF-7 and T-47D lines. These preclinical data demonstrate a treatment schedule and combinations of polyamine analogues and cytotoxics that will be important to study mechanistically and clinically for breast cancer.

Antineoplastic Combined Chemotherapy Protocols↗

Biological significance of circulating polyamines in oncology.

Malignant cell proliferation is associated with an increase intracellular polyamine metabolism which itself appears to be in equilibrium with the extracellular circulating polyamine compartments. Erythrocyte polyamine contents may be used clinically as an index of cell proliferation, but the exact biological roles of circulating polyamines, considered as physio(patho)logical parameters involved in the homeostatic(dys)regulation of cell proliferation, remain obscure. It is known that circulating polyamines help promote malignant cell proliferation and metastatic dissemination, but their ultimate targets are not yet completely understood. Either produced by actively proliferating normal or cancer cells, or absorbed from the gastro-intestinal tract (food and colonic microfloral population), circulating polyamines could favour in vivo malignant cell proliferation. 1) Since these organic polycations are more rapidly internalized by cancer cells than by normal ones, do they join and facilitate the malignant intracellular polyamine metabolism? 2) Does binding of polyamines to specific acceptor sites at the surface of cancer cells, thereby modulating endocytosis of biological factors present in the extracellular spaces, modify the homeostatic control of cell proliferation and differentiation? 3) Do modifications of blood polyamine compartmentalization, observed in cancerous organisms, responsible for new enzyme and/or immune capacities, contribute to tumor progression? Answering the above-mentioned questions would lead to new therapeutic approaches in human oncology.

Cell Division↗

The gastrointestinal tract as polyamine source for tumor growth.

It has previously been demonstrated that decarboxylation of ornithine in tumors, and the oxidative splitting of N1-acetylspermidine in tumor and normal tissues, are important sources of putrescine. Both these sources are utilised by tumors and other tissues with a high demand for polyamines to ensure their polyamine requirement. Consequently, combined treatment of tumor-bearing animals with an inhibitor of ornithine decarboxylase (e.g. alpha-difluoromethylornithine) and polyamine oxidase (e.g. N,N'- bis-allenylputrescine) has an antitumoral effect superior to that of either drug alone. In the present work, it was demonstrated that the alimentary tract is a third important source of polyamines which maintains tumor growth. Gastrointestinal polyamines are of alimentary origin, and are also formed by aerobic and anaerobic microorganisms. They can be reduced by feeding a polyamine deficient diet together with antibiotics that are suitable for decontaminating the gastrointestinal tract. This treatment combined with the administration of the mentioned inhibitors of ornithine decarboxylase and polyamine oxidase completely prevents Lewis lung carcinoma from growing, and prolongs considerably the average life span of L1210 leukemia mice. The results of the polyamine analyses of tumors, leukemia cells and tissues are compatible with the notion that the effective blocking of the three main putrescine sources (intracellular decarboxylation of ornithine, formation of putrescine from N1-acetylspermidine, and the gastrointestinal tract) produces a very strong cytostatic effect. It is expected that the clinical efficacy of polyamine antimetabolites can be considerably improved by measures analogous to those applied in this pilot study.

Animals↗

Roles of polyamines in the replication of animal viruses.

Several animal viruses are known to contain significant amounts of polyamines but so far the function of these viral components is poorly understood. In this study the role of polyamines in the replication of two different types of viruses, herpes simplex virus type 2 and Semliki Forest virus (SFV) has been investigated. Purified SFV was found to contain fairly small amounts of polyamines, sufficient to neutralize only about 3% of viral nucleic acid phosphate, i.e., 1/20 of that found in herpes simplex virus. The production of both viruses was, however, markedly inhibited in BHK21 cells depleted of polyamines by treatment with alpha-difluoromethylornithine, a specific inhibitor of polyamine synthesis. This inhibition was reversed by putrescine, spermidine and spermine, and at least partly reversed by several other diamines and polyamine homologs. The activity of viral RNA polymerase induced by SFV infection was markedly reduced in polyamine-depleted cells but increased rapidly after addition of spermidine to the culture medium. It appears that the inhibition of virus production in polyamine-depleted cells is due in part to malfunction of protein synthetic machinery of the host cell. The possibility that other steps in virus synthesis and assembly are affected by polyamine deficiency is currently being investigated.

DNA-Directed RNA Polymerases↗

Role of polyamines and their antimetabolites in clinical medicine.

Polyamine research, which began with a clinical observation more than 300 years ago, has progressed for several decades as pure basic research, sometimes considered as an academic triviality. The role of polyamines in clinical medicine is coming of age. The fruits of polyamine research are just now entering into the realm of practical application and in a very multidisciplinary manner. Basic research on polyamine metabolism and the elucidation of their physiologic functions has involved many academically interesting, even revolutionary, aspects, but the imagination of biochemists and cell biologists may no longer be sufficient to discover the best ways to translate the results of this basic research into clinical practice. It is almost certain that polyamine antimetabolites will soon find their place among the drug regimens used for the treatment of human malignancies and, possibly, also of hyperproliferative skin diseases. The elucidation of the role of polyamines in cell differentiation may offer fundamental applications regarding the regulation of cell cycle events. The discovery of the antiparasitic properties of polyamine antimetabolites may have a major impact on the well-being of millions of people in the developing world. The potential application of polyamine research in microbial and viral diseases is an area in which investigational insight is just beginning. Finally, the clinical chemistry of extracellular polyamines, although initially disappointing, has not yet been explored in depth and may offer applications useful for the diagnosis or follow-up of a variety of common diseases.

Animals↗

Levels of urinary polyamines in patients with rheumatoid arthritis.

OBJECTIVE: To compare urinary polyamine levels in patients with rheumatoid arthritis (RA), with osteoarthritis (OA), and in healthy controls and examine the relationship between urinary polyamine levels and several disease variables in patients with RA. METHODS: We determined the concentrations of urinary polyamines in 33 patients with RA, 24 with OA, and 20 healthy controls, using the enzymatic assay method. For patients with RA relevant clinical and laboratory variables were obtained and functional and radiologic scores determined for the joints. RESULTS: Urinary polyamine levels were significantly higher in patients with RA versus those with OA and healthy controls. In patients with RA the levels of urinary polyamines correlated significantly with the concentrations of serum C-reactive protein (CRP); there was also a statistically significant negative correlation between their urinary polyamine levels and average grip strength in either hand. Moreover, the levels of urinary polyamines in patients with RA showed an increase in proportion to the degree of joint functional damage and radiologic progression. CONCLUSION: Our results confirm our previous report of an increase in the amount of free putrescine in synovial fluids and a significant correlation between the putrescine contents of synovial tissues and the serum CRP concentrations in patients with RA; they also suggest that urinary polyamine levels may be related to the activity and progression of RA, indicating that polyamine may play an important role in RA.

Adult↗

The role of polyamines in fungal cell differentiation.

Polyamines are low molecular weight polycations which are present in all organisms, both procaryotic and eucaryotic (1). The most widely distributed polyamines are putrescine, spermidine and spermine; nevertheless, a large number of fungal species are devoid of spermine. Polyamines are essential for growth, and mutants affected in their synthesis become auxotrophic. Regarding their physiological roles, it has been demonstrated that polyamine starvation leads to reduction in the synthesis of nucleic acids and proteins. It has been concluded that polyamines are essential for macromolecule synthesis, although their precise mode of action remains unknown (2) (Table 1). Because of their net charge, it has been suggested that polyamines bind to macromolecular anions such as nucleic acids and phospholipids, stabilizing their structure. Levels of polyamines, as well as those of the first enzyme in the biosynthetic route: ornithine decarboxylase (ODC), increase during the phases of active growth and differentiation in distinct eucaryotic systems. In fungi the role of polyamines in cell differentiation remains debatable since no clear cut correlation between their levels and development has been demonstrated. This lack of correlation may be due to the fact that most polyamines present in the cell are inside the vacuole or bound to all polyanions, only a small amount remaining free to fulfill other tasks associated with development (3).

Cell Differentiation↗

Determination of erythrocyte polyamines as a predictive method in tumour diagnosis. An animal study with chemically induced tumours.

There have been numerous attempts in the past to use polyamine determinations in body fluids for tumour diagnosis. Since spermidine (Spd) and spermine (Spm) are mainly transported in blood by erythrocytes, this study was concerned with the diagnostic possibilities of red blood cell (RBC) polyamine determinations. In tumour-grafted animals we observed that RBC polyamine levels correlated with the tumour mass progression and increased before the tumour was palpable. Discrepancies between the evolution of RBC polyamine levels in tumour-grafted animals and in cancer patients were probably due to the non-continuous growth of the tumours in patients. Therefore, an animal model was sought which mimicked the clinical situation. In the present experiments, ethylnitrosourea induced tumours were used which, in analogy to the clinical situation, had an undetermined time of the appearance in a non-predetermined proportion of the animals. RBC polyamines were determined over a period of 7 months in 154 rats. A total of 2,290 RBC polyamine determinations were performed during this study. The data clearly demonstrate the appearance of elevated Spd concentrations in advance of tumour diagnosis by conventional clinical methods. In 71% of the rats which later developed a tumour, abnormal Spd levels (> 40 nmol/8.109 RBC) preceded, by 35 +/- 31 days, the first clinical symptoms for the presence of a tumour. In 29% of the animals, abnormal RBC Spd concentrations were observed at the time of tumour diagnosis. Elevation of Spm concentrations (> 6 nmol/8.10(9) RBC) was less frequent. RBC polyamine levels did not allow discrimination between malignant and non malignant tumours. This confirms earlier findings that RBC polyamines are markers of the cell proliferation rate, but not for the presence of a malignant tumour. Elevated RBC polyamine concentrations are an index of the intensity of hyperplastic processes, which can be clinically used for the early detection of proliferative phases of tumours, thus allowing timely therapeutic measures.

Animals↗

Flow cytometric analysis of in vivo polyamine deprivation in Lewis lung carcinoma (3LL) cells using the monoclonal antibody SPM8-2.

It has previously been shown that the monoclonal antibody SPM8-2 recognizes free spermine and spermidine as well as polyamines bound by an amide bond. In the present work it is demonstrated that this antibody also interacts with spermidine, spermine, and to a lesser extent N1- and N8-acetyl spermidine in an ELISA test where the polyamines are bound by reaction with formaldehyde. 3LL Lewis lung carcinoma cells from tumor-grafted mice were labeled with fluorescein-conjugated monoclonal antibody SPM8-2 and analyzed by flow cytometry. Both viable cells and formaldehyde-fixed and subsequently permeabilized cells showed fluorescent staining. However, most polyamines present in the cells are not directly available for antibody binding. Treatment of fixed cells with DNase or RNase greatly increased fluorescent staining, suggesting that some polyamines are co-localized with DNA and RNA. Antibody labeling of the cells was prevented by addition of free spermine. 3LL cells from tumors of mice treated by a polyamine depleting regimen had decreased intracellular spermidine levels and bound less antibody when compared to untreated controls. After digestion with RNase, the cells from treated mice bound considerably less fluorescent antibody than tumor cells from untreated mice, while their RNA content was similar. In contrast, fluorescent staining after DNase digestion was only slightly affected by the treatment with a polyamine depleting regimen. This suggests that the pools of polyamines which are co-localized with RNA are depleted more readily than those associated with DNA. Since only a small proportion of the intracellular polyamines is accessible to the bulky antibodies, treatment with hydrolytic enzymes (DNase, RNase) is necessary to reveal specific compartments of the polyamines and to demonstrate qualitative and semi-quantitative differences of their distribution within cells.

Animals↗

Growth arrest- and polyamine-dependent expression of spermidine/spermine N1-acetyltransferase in human tumor cells.

Polyamines are essential for optimal cell growth. The regulation of polyamine biosynthetic, but not catabolic, enzymes has been studied in detail. Because intracellular polyamine contents depend on both synthesis and catabolism, we studied the regulation of spermidine/spermine N1-acetyltransferase (N1SSAT), the first enzyme in polyamine catabolism. Steady-state RNA levels of N1SSAT increased 3-5 fold as human colon tumor-derived HCT116 cells traversed the log phase and entered the plateau phase. Depletion of cellular polyamines, using alpha-difluoromethylornithine, caused a decrease in the steady-state levels of both the 1.3-kb N1SSAT transcript and its 3.5-kb precursor, without affecting the stability of either RNA. N1SSAT enzyme activity was low in cells with normal polyamine contents but could be induced by heat shock. The level of induction of N1SSAT enzyme activity by heat shock on different days of growth correlated with N1SSAT RNA levels prior to heat shock and occurred without changes in levels of message after heat shock. Although non-heat-shocked cells containing normal polyamine contents expressed N1SSAT RNA but not enzyme activity, exogenous spermidine restored both RNA levels and enzyme activity in polyamine-depleted cells. This result suggests that the expression of N1SSAT enzyme activity, but not RNA, requires a change in the intracellular compartmentalization of spermidine. These data demonstrate that N1SSAT is regulated at both the transcriptional and posttranscriptional levels by conditions that arrest growth in HCT116 cells, and that both of these mechanisms are affected by endogenous polyamine contents.

Acetyltransferases↗

Inhibition of vacuolar ion channels by polyamines.

In this work, direct effects of cytosolic polyamines on the two principle vacuolar ion channels were studied by means of patch-clamp technique. Fast and slow activating vacuolar channels were analyzed on membrane patches isolated from vacuoles of the red beet taproot. The potency of the fast and of the slow vacuolar channel blockage by polyamines decreased with a decrease of the polycation charge, spermine4+ > spermidine3+ > putrescine2+. In contrast to the inhibition of the fast vacuolar channel, the blockage of the slow vacuolar channel by polyamines displayed a pronounced voltage-dependence. Hence, in the presence of high concentration of polyamines the slow vacuolar channel was converted into a strong inward rectifier as evidenced by its unitary current-voltage characteristic. The blockage of the slow vacuolar channel by polyamines was relieved at a large depolarization, in line with the permeation of polyamines through this channel. The voltage-dependence of blockage was analyzed in terms of the conventional model, assuming a single binding site for polyamines within the channel pore. Taking advantage of a simple linear structure of naturally occurring polyamines, conclusions on a possible architecture of the slow vacuolar channel pore were drawn. The role of common polyamines in regulation of vacuolar ion transport was discussed.

Chenopodiaceae↗

Transport and metabolism of polyamines in wild and multidrug resistant human leukemia (K 562) cells.

Multidrug resistance (MDR) can be defined as the resistance of cancer cells not just to chemotherapeutic agents to which they have been exposed but also to other apparently unrelated compounds. This MDR phenotype is commonly associated with the high expression of levels of 170 kDa P-glycoprotein, encoded by MDR genes. In the present study, the uptake kinetics of polyamines and their biosynthesis were studied in wild and multidrug resistant (MDR) K 562 cells in culture. The rate (Vmax) of polyamine uptake was significantly lower in MDR cells than that in wild type cells, whereas the Km for the uptake was not significantly different in these cells, suggesting that polyamine transporter is not modified in MDR cells, though their different physiological state influences the uptake process. In a 32 h chase, the transported radioactive polyamines were gradually interconverted. [14C]putrescine was converted into [14C]spermidine following between 15 min and 32 h of culture, and into [14C]-spermine after 16 h of culture, in both the cell types; however, the levels of interconverted radioactive polyamines were always lower in MDR cells as compared with wild type cells. Similarly, internalized [14C]spermidine was converted into [14C]spermine, but not into [14C]putrescine in both the cells types. [14C]spermidine is metabolized into [14C]spermine after 4 h of culture in wild type cells, whereas in MDR cells the interconversion of [14C]spermidine into [14C]spermine is seen only after 16 h of culture. Blocking of the transmembrane drug efflux pump, expressed in the MDR cells, by preincubation in the presence of verapamil, did not influence the uptake of either of the two polyamines (putrescine and spermidine) by MDR cells. On the contrary, this kind of preincubation of wild type cells in the presence of verapamil significantly increased the uptake of these two polyamines. The levels of intracellular polyamine contents in MDR cells were always lower than those in the parental cell line. These results demonstrate that MDR cells are defective in both the uptake of polyamines and their biosynthesis as compared with wild type cells.

ATP Binding Cassette Transporter, Subfamily B, Mem↗

Increased urinary polyamine excretion during liver regeneration.

Tumor growth is a process associated with both cell proliferation and cell death. The increase in polyamine excretion observed in cancer patients may be partly due to leakage of polyamines from proliferating cells, which all contain an elevated polyamine level. However, the increased polyamine excretion may also be due to a release of polyamines from dead or damaged cells. To determine if actively proliferating cells release polyamines, the urinary polyamine excretion was measured during a proliferative event associated with minimal cell necrosis. Rats subjected to partial hepatectomy were used as an experimental model. Their 24-hr urines were collected during 6 consecutive days following the operation. Rat liver regeneration is characterized by a proliferation wave with a maximum 24 hr after the operation. The 24-hr urinary putrescine excretion reached a maximum 2 days after the operation and then decreased. The 24-hr urinary spermidine excretion increased during the second day following operation and remained essentially unchanged during the rest of the experimental period. Although there is an apparent correlation between elevated urinary polyamine excretion and the proliferative activity, concurrent permeability changes and necrotic events may contribute to the increase in polyamine excretion.

Animals↗

Rectification of rabbit cardiac ryanodine receptor current by endogenous polyamines.

The actions of three endogenous polyamines (spermine, spermidine, and putrescine) were defined on Ca2+ release channels (ryanodine receptors, RyRs) isolated from rabbit cardiac sarcoplasmic reticulum. The current-voltage relationship of the RyR channel was N-shaped in the presence of polyamine (1-5 mM). Polyamine blocked conduction near 0 mV, but the blockade was relieved at large potentials. Polyamines acted (blocked) from both sides of the channel. Polyamine efficacy was dependent on current direction and was inversely related to the ion selectivity of the RyR pore. This suggests that polyamine interacts with current-carrying ions in the permeation pathway. The apparent half-block concentration of spermine at 0 mV was < 0.1 mM. The features of polyamine blockade suggest that the polyamines are permeable cationic blockers of the RyR channel. Further, the levels of polyamines found in muscle cells are sufficient to block single RyR channels and thus may alter the sarcoplasmic reticulum Ca2+ release process in situ.

Animals↗