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Solvent polarity and pH effects on the spectroscopic properties of neutral red: application to lysosomal microenvironment probing in living cells.

Neutral red is a lysosomal probe and a biological pH indicator. In aqueous solutions, the protonated (NRH) and neutral (NR) forms of monomeric neutral red exhibit distinct absorption maxima (535 and 450 nm, respectively) but have the same fluorescence with a maximum at 637 nm and a quantum yield of 0.02. The similarity of the fluorescence spectra at acidic and basic pH suggests deprotonation of cationic species in the first singlet excited state. The NR fluorescence strongly depends on the solvent polarity as shown by addition of increasing amounts of water to pure dioxane, which gradually shifts the fluorescence maximum from 540 nm in pure dioxane to 637 nm in water. The fluorescence quantum yield increases from 0.17 in dioxane to 0.3 upon addition of 7% water and then decreases, reaching 0.02 in pure water. Immediately after incubation of human skin fibroblasts with neutral red, excitation with 435 nm light produces a fluorescence whose maximum is recorded at 575 nm. This fluorescence is located in the perinuclear region and originates from large fluorescent intracytoplasmic spots, suggesting staining of the endoplasmic reticulum-Golgi complex. At longer times, this fluorescence is shifted to 606 nm, suggesting slow diffusion of the lysosomotropic dye toward the more hydrated and acidic interior of lysosomes. Addition of a lysosomotropic detergent to cells previously incubated with neutral red shifts the fluorescence to the blue. Thus, in complex biological systems, this probe cannot be a good pH indicator but is a very sensitive probe of lysosomal microenvironments.

Dioxanes↗

Neutral red staining for the assessment of acute outcome in rat focal cerebral ischemia models.

Neutral red staining was evaluated as an acute outcome assessment method in rat models of cerebral ischemia by comparison with histological infarction volume. Fischer 344 rats (n = 48) were used in three different models of middle cerebral artery (MCA) occlusion: proximal MCA occlusion (n = 16), distal MCA occlusion followed by ipsilateral common carotid artery (CCA) occlusion (distal MCA/CCA occlusion, n = 15), and MCA occlusion with an intravascularly introduced 4-0 nylon suture (intravascular MCA occlusion, n = 17). At 1 hour, 2 hours, and 4 hours after MCA occlusion, animals were injected with 2.5 ml of 4% neutral red solution via the femoral vein, and then sacrificed. Proximal MCA occlusion caused a neutral red defect volume in the cortex which correlated well with histological infarction volume at 4 hours (r = 0.88, p < 0.05), and in the caudate which correlated well with infarction volume at 4 hours (r = 0.94, p < 0.01). Distal MCA/CCA occlusion caused a neutral red defect volume in the cortex lager than the histological infarction volume (4 hrs: 88.6 +/- 11.8 vs. 74.3 +/- 17.4 mm3, p < 0.05) but closely correlated with the infarction volume at 4 hours (r = 0.81, p < 0.05). Intravascular MCA occlusion caused a neutral red defect volume in only two of 17 animals after 1-4 hours, which correlated well with the absence of histological evidence of infarction. Neutral red staining is a simple method for assessing the acute outcome of focal cerebral ischemia as early as 4 hours after the onset, in an appropriate model of cerebral ischemia.

Animals↗

[Study on using in vitro 3T3 neutral red uptake to test phototoxicity].

OBJECTIVE: To establish neutral red uptake test of 3T3 in vitro to detect phototoxicity of chemicals and study the in vitro 3T3 NUR as an alternative method instead of animal skin phototoxicity test. METHODS: Using incubated Balb/c3T3 cells to establish the optimal conditions of reaction system. RESULTS: The concentration of neutral red, the incubate time, pH and the density of cells were the factors effecting test results. CONCLUSION: It is suggested that in vitro 3T3 neutral red uptake test can be used as an alternative instead of animals phototoxicity test.

Animals↗

The effect of in vitro heat stress on the uptake of neutral red by chicken thrombocytes.

Thrombocytes are multifunctional, nucleated blood cells. Morphological changes in thrombocytes have been used as a physiological indicator of a stress response. This study investigated the effects of in vitro heat stress (HS) on the neutral red uptake activity of chicken thrombocytes. Chicken thrombocytes (98% pure) were prepared from adult Barred Plymouth Rock and Rhode Island Red males. The isolated thrombocytes were preincubated at normal (41 C) or HS (45 C) temperatures for 30 min before either a 30- or 90-min incubation with neutral red at these same temperatures. After incubation the cells were washed, lysed, and the internal neutral red concentrations analyzed. There was no difference in thrombocyte numbers or their uptake of neutral red in samples from males of these two chicken breeds. At 41 C thrombocytes actively took up neutral red over the 90-min incubation period. However, at 45 C thrombocyte internalization of neutral red was significantly reduced. At both time periods (30 and 90 min), thrombocytes at 41 C took up significantly (P < or = 0.05) more neutral red than their counterparts at 45 C. This lack of neutral red uptake was not due to cell death as monitored by Trypan blue exclusion. Following the 30-min incubation there was no difference in viability between thrombocytes at the two temperatures. Although there was a significant (P < or = 0.05) increase in cell death at 90 min for thrombocytes kept at 45 C, the livability difference was of a much smaller magnitude than the difference in neutral red uptake when comparing to cells cultured at 41 C. Neutral red uptake is a rapid, inexpensive and repeatable technique for the study of thrombocyte function.

Animals↗

Ultrastructure of Trichophyton mentagrophytes stained with neutral red.

The ultrastructure of Trichophyton mentagrophytes cells stained with neutral red was investigated using electron microscopy and X-ray microanalysis. Fixatives containing molybdenum and chromium were used to prevent the outflow of neutral red. Electron-dense particles composed of metals and dye were observed exclusively in the vacuoles, which were increased in number and size, but not near the cell wall. Results indicate that neutral red passes directly through the fungal cell wall and is incorporated into the vacuoles.

Electron Probe Microanalysis↗

Vital staining properties of neutral red. Vital staining of cornea and conjunctiva.

Vital staining by instillation in the conjunctival sac of 1% neutral red in 54 normal and 153 differently affected eyes was studied by slit lamp examination. Of these, 134 eyes were after-stained by a mixture of 1% tetrazolium and 1/4% alcian blue and 73 eyes were after-stained by a mixture of 1% rose bengal and 1% fluorescein. Microscopy of a further 10 conjunctival scrapings and 40 mucous conjunctival threads disclosed neutral-red-stained inclusion bodies in the cytoplasm of the epithelial cells and the granulocytes. In the slit lamp the cornea and the conjunctiva were seen to be stained only rarely and, if so, poorly by neutral red, both in normal and affected eyes. Better staining was obtained with tetrazolium, and the best with rose bengal. The plica semilunaris, Marx' line, and the mucous thread were stained by neutral red, more intensely by rose bengal, and the least by tetrazolium. The inferior fornix and the tarsus were rarely stained by any of the three dyes. Neutral red seems to offer no diagnostic advantages over the vital stains with which the dye has been compared in the present study. More particularly we found no pathological processes that were stained more intensely by neutral red than by the other vital stains.

Cataract↗

Interaction of the excited singlet state of neutral red with aromatic amines

Quenching of neutral red (NR; neutral form of the dye) fluorescence by a number of aromatic amines has been investigated in acetonitrile solutions. The bimolecular quenching constants (kq) obtained from steady-state and time-resolved measurements for a particular donor-acceptor pair are seen to be the same within experimental error. Correlation of the changes in the kq values with the oxidation potentials of the donors (amines) indicates that electron transfer (ET) is the mechanism operative in the present systems. Direct evidence for ET has been obtained from picosecond transient absorption studies on a suitable amine-NR pair. Experimentally determined kq values are seen to correlate well with the free energy changes (delta G0) for the ET reactions, within the frame-work of the Marcus outer sphere ET theroy. From the correlation between the experimentally determined and theoretically calculated kq values, it appears that solvent reorganization plays a major role in governing ET dynamics in the systems investigated.

Journal Article↗

The accumulation of neutral red in illuminated thylakoids.

Thylakoids isolated from spinach (Spinacia oleracea L.) bind only a small fraction of neutral red in the dark whereas they accumulate large amounts of the protonated dye in their inner space under light. Light-induced neutral red uptake depends on the size of the proton gradient across the thylakoid membrane but does not follow the mechanism established for amines. Instead, the correlation between pH gradient and neutral red uptake can be predicted quantitatively assuming that protonated neutral red is accumulated mainly as dimer species. Under appropriate conditions, accumulation of protonated neutral red in the inner thylakoid space is proportional to an absorbance increase at 520 nm. This 520-nm change can be used for the continuous measurement of pH changes in thylakoids during steady-state illumination.

Darkness↗

Neutral red stains ganglia in the vagal motor pathway to ferret trachea without affecting ganglionic transmission.

To determine the effect of Neutral red (0.01%) on neural transmission through ganglia, we used an in vitro nerve-muscle preparation of ferret trachea. Before, during, and after incubating the trachea in Neutral red, we induced isometric muscle contractions first by activating preganglionic fibers with electrical stimulation of the vagus nerve, and then by activating postganglionic nerve fibers with electrical field stimulation. Incubation in Neutral red (0.01%) for 45 min at 38 degrees C reduced the responses to both pre- and postganglionic activation. When the control responses to pre- and postganglionic activation were matched. Neutral red depressed the 2 responses to the same degree, implying that the depression was confined to postganglionic structures. Washout of Neutral red from the medium restored the responses to both pre- and postganglionic activation. Histologic examination of all tissues proved that the ganglia were still stained after the washout procedure. We conclude that Neutral red (0.01%) depresses smooth muscle contractions evoked through neural pathways, and that this depression is reversible and confined to postganglionic structures, leaving ganglionic transmission intact.

Animals↗

[Effect of inhibitors of energy metabolism and protein synthesis on the process of neutral red segregation in frog erythrocytes].

Effects of inhibitors of energy metabolism and protein synthesis on Neutral red segregation in frog erythrocytes were studied. Inhibitors of both glycolysis and respiration significantly reduced formation of segregation zones. This influence was most striking with antimycin A, rotenone and cyanide. This indicates that intact respiratory pathways may play an important part in the process of Neutral red segregation. Such uncouplers as FCCP (carbonyl cyanide p-trifluoromethoxyphenylhydrazone) and 2,4-dinitrophenol (DNP) as well as inhibitors of oxidative phosphorylation (arsenate and azide) are also very effective in inhibiting the Neutral red segregation at low concentrations. The effects of these uncouplers and of olygomycin suggest an important role of ATP as an energy source for the segregation process. An inhibitor of protein synthesis, such as cycloheximide, produces some reduction in segregation zones formation. Trapping of Neutral red by protonation could readily explain the high level of this dye accumulation in nucleated erythrocytes. The fact that low concentrations of FCCP and DNP inhibit the process of segregation brings a supporting evidence for the possibility of the ATP-driven proton pump involved in Neutral red segregation.

Animals↗

Effect of neutral red and light on Herpesvirus hominis type 1 in cell culture.

Various concentrations of neutral red were added to monolayers of muscle-skin fibroblasts after adsorption of Herpesvirus hominis type 1. The concentration necessary to reduce plaque counts was found to be 10(-5.5) M. At the same time, the minimal toxic concentration of neutral red for muscle-skin fibroblasts was determined by the concentration that reduced the plaques of a challenge virus, vesicular stomatitis virus, that was applied after treatment with neutral red and light. The minimal toxic concentration was found to be 10(-5) M. Thus, the effective concentration of neutral red for H. hominis in tissue culture appears to be only slightly less than the minimal toxic concentration. The concentrations used for clinical trials in humans have been 10(3)-10(4) times this amount. Any observed efficacy of such treatment may be a reflection of cell toxicity.

Cell Division↗

Cytotoxicity of T-2 toxin and its metabolites determined with the neutral red cell viability assay.

The neutral red (NR) cell viability assay was used with various cell types of human origin to quantitate the potency of T-2 mycotoxin and its metabolites. The human melanoma SK-Mel/27 cell line was the most sensitive, with a midpoint cytotoxicity value of 2.8 ng of T-2 per ml. With the human hepatoma cell line, HepG2, the sequence of potency for a series of mycotoxins was T-2 greater than HT-2 greater than T-2 triol greater than T-2 tetraol.

Animal Testing Alternatives↗

A temperature-dependent interaction of neutral red with calf thymus DNA.

Neutral red (NR) is used as a probe to study the temperature and concentration dependent interaction of a cationic dye with nucleic acid. A temperature-dependent interaction of NR with calf thymus DNA (CT DNA) has been studied by differential pulse voltammetry (DPV), UV-Visible absorption, circular dichroism (CD) and fluorescence spectroscopy. The experimental results of increasing peak current, changes in the UV-Visible absorption and fluorescence spectra of NR and decreasing the induced circular dichroism (ICD) intensity show that (i) the binding mode of NR molecules is changed from intercalating into DNA base pairs to aggregating along the DNA double helix and (ii) the orientation of NR chromophore in DNA double helix is also changed with the temperature.

Animals↗

[Mechanisms of neutral red transport through the mucosa of the gastrointestinal tract].

The conditions of the passage of neutral red into the cavity of gastro--intestinal tract were investigated during the atropine blockade of the stomach secretory activity in the dogs with fundal, antral and duodenal fistulas. The neutral red begins to cross the gastric mucosa only after the PH of the perfusing solution has achieved 2.5 and for intestine--5.0. The intensity of the neutral red passage increases with further decrease of the perfusing solution pH. During perfusion of acid solutions through the stomach and particularly through the duodenum, retrodiffusion of H+ occurs into the mucosa. The excretion of neutral red into the cavity of gastro--intestinal tract seems to be a process of passive diffusion. The role of the H+ retrodiffusion in this process is discussed.

Animals↗

Selective vital staining of companion cells of potato tuber and parsnip root with neutral red.

When staining the internal phloem region of a potato tuber with the vital stain neutral red, it was observed that files of elongated cells of narrow diameter were heavily stained and were easily distinguishable from the more isodiametric parenchyma cells, many of which did not stain with neutral red. The elongated cells were identified as companion cells by locating the adjacent sieve-tube members through counterstaining with aniline blue and reviewing under violet light. Of a number of other plants surveyed, only parsnip roots possessed companion cells exhibiting a similar slective staining. In other plants both the companion cells and the surrounding parenchyma cells usually stained. Sieve-tube members never accumulated neutral red. It was concluded that the vacuoles of the companion cells of the potato tuber were stained by the ion trap mechanism because of the color of the accumulated stain, the lack of staining when neutral red was applied in an acidic solution, and the complete destaining after soaking in dilute ammonium hydroxide.

Histocytochemistry↗

A study of dietary restriction and lifespan in the rotifer Asplanchna brightwelli monitored by chronic neutral red exposure.

The rotifer Asplanchna brightwelli could be exposed to concentrations of neutral red at 0.1 to 0.75 microgram/ml for two consecutive generations with no adverse effect on the lifespan or fecundity of either generation. Chronic exposure to higher concentrations of neutral red caused reductions in both lifespan and fecundity of the rotifers. Because neutral red stains the Paramecium which serve as a food source for the rotifers, the extent of red coloration in each rotifer's gut gave an approximation of how much food that rotifer had consumed. The Paramecium concentration had to be reduced to 100 per ml before pale gut coloration provided clear evidence of reduced food intake or dietary restriction. The group of rotifers with reduced food intake had a significantly longer lifespan than any other group. Their lifespan was 14.2% longer than that of control rotifers.

Aging↗

Interaction with hyperthermia of tetrachloroplatinum(II)(Nile blue)2 and tetrachloroplatinum(II)(neutral red)2 in EMT6 murine cells and the murine FSaIIC fibrosarcoma.

Complexes of the tetrachoroplatinum(II) dianion with positively charged nuclear dyes were prepared in an effort to produce agents which gain ready access into the nucleus and become very cytotoxic at clinically relevant hyperthermia temperatures. Pt(Nile blue)2 and Pt(neutral red)2 are complexes of tetrachloroplatinum(II) with two closely related p-quinonediamine dyes. Pt(Nile blue)2 and Pt(neutral red)2 were only moderately cytotoxic to exponentially growing normally oxygenated or hypoxic EMT6 cells in vitro at pH 7.40 and 37 degrees C. At pH 7.40 and 42 degrees C and especially at 43 degrees C, however, Pt(Nile blue)2 became far more cytotoxic. At pH 6.45 Pt(Nile blue)2 became more toxic toward hypoxic cells (cell kill of 3.5 logs at 500 microM, 42 degrees C for 1 h). Pt(neutral red)2 became much more cytotoxic at pH 6.45 and 42 degrees C or 43 degrees C compared to pH 7.4, and the cell kill observed was similar in both euoxic and hypoxic cells (3 logs at pH 6.45, 43 degrees C with only 100 microM). Tumor cell survival studies in the FSaIIC murine fibrosarcoma demonstrated that both drugs killed in a dose-dependent log-linear manner. Hyperthermia treatment (43 degrees C, 30 min) immediately after either drug resulted in a dose modifying effect. The tumor growth delay produced by Pt(Nile blue)2 (100 mg/kg) was 4.6 days and by Pt(neutral red)2 (100 mg/kg) was 3.8 days. Both drugs were markedly improved by hyperthermia (tumor growth delay 1.4 days for hyperthermia; tumor growth delay 10.9 days for Pt(Nile blue)2 and 8.0 days for Pt(neutral red)2. Intracellular platinum levels were approximately 200 times higher after exposure of EMT6 cells to 25 microM of Pt(Nile blue)2 or Pt(neutral red)2 for 1 h at 37 degrees C than after exposure to the same concentration of cis-diamminedichloroplatinum(II). Treatment of cells with the drugs at 42 degrees C (1 h) resulted in no change in platinum levels with cis-diamminedichloroplatinum(II), but with Pt(Nile blue)2 and Pt(neutral red)2 an increase of 2- to 3-fold was found. Since previous work has shown that both of these complexes are active radiosensitizing agents, these new drugs seem quite well suited for further development as antitumor agents for use against solid tumors alone and in conjunction with hyperthermia and/or radiation therapy.

Animals↗

Intracellular changes due to neutral red as revealed in the pancreas and kidney of the mouse by the electron microscope.

The effects of sublethal amounts of the cationic dye, neutral red, upon the structure of pancreatic exocrine cells, and upon the mitochondria of renal distal tubule cells, have been studied with the electron microscope. It was found that neutral red is a cytoplasmic toxin which causes reproducible and characteristic changes in the ergastoplasm, the zymogen granules, the mitochondria, and possibly in the Golgi complex. Ergastoplasmic membranes and granules and zymogen granules lose definition and become continuous with the cytoplasmic matrix. Mitochondria lose their internal folds, develop vacuoles which contain a solution of neutral red in high concentration, and form the nidus for the development of sudanophilic, argyrophilic, osmiophilic inclusions which appear in the cytoplasm after neutral red administration. Golgi granules, one of the three elements of the Golgi complex, appear to increase in number and to be scattered more widely through the cytoplasm than is normal. No consistent changes were found in the cell membrane or nucleus. The ability of the mitochondria to concentrate the cation, neutral red, taken with its well known ability to concentrate the cationic Janus dyes and methylene blue, and its probable role in concentrating those cationic dyes which have been used to demonstrate the "vacuome," is interpreted to signify that one of the functions of mitochondria may be to concentrate intracellar cations.

Animals↗