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A fine structure study of the anthocodium in Renilla mülleri. Evidence for the existence of a bioluminescent organelle, the luminelle.

A fine structure study of the anthocodium of the sea pansy, Renilla mülleri, was undertaken. The anthocodium, a known site of bioluminescence, was selected in order to determine whether a structural entity could be found which would satisfy the biochemical and physiological features associated with the known sites of bioluminescence in this animal. These sites, termed lumisomes, have previously been shown to be small (0.1-0.2 mum), membrane-enclosed vesicles which contain all the proteins necessary for bioluminescence and its immediate control. One of the lumisomal proteins is an intensely green fluorescent protein and has been used as a probe for the detection of the cellular sites of bioluminescence. This green fluorescence was associated only with gastrodermal cells. We report the identification of a unique morphological entity, restricted to the cells of the gastrodermis, which satisfies the biochemical and physiological requirements for bioluminescence in Renilla. It is a large (4-6 mum), membrane-bounded subcellular organelle comparable in size to a subcellular structure whose green fluorescence is typically associated with the in vivo bioluminescence. Furthermore, it is filled with smaller membrane-bounded vesicles which have the same size and shape as the lumisomes. We suggest that the organelle identified in this study be termed a luminelle.

Cnidaria

Bioluminescence Imaging to Study Recombinant Orthopoxvirus Infection in Animal Models.

Bioluminescent images of viral replication in live animals (in vivo) reveal disease dynamics and effects of medical countermeasures over time. After selecting an appropriate orthopoxvirus animal model for the study, a recombinant virus with the firefly luciferase gene inserted in the genome is used to infect the animals. On the day of bioluminescent imaging, the substrate, D-luciferin, is prepared; animals are sedated and injected with the substrate and IVIS imager is utilized; various bioluminescent images are acquired; then animals recover and are able to continue in the study. Ex vivo imaging can also be completed after animals are euthanized at experimental endpoint. This approach allows real-time imaging of viral kinetics within an animal, and analysis of images can provide an additional quantitative measure throughout the study. Bioluminescent imaging not only provides scientific benefits but also benefits to animal welfare. For these reasons, bioluminescent imaging should be considered for any in vivo orthopoxvirus study.

Animals

Bioluminescence: from chemical bonds to photons.

The biological transformation of chemical to photic energy involves an enzyme-mediated chemiluminescent reaction, in which one of the products exists in an electronically excited state, emitting a photon as it returns to the ground state. The colour of bioluminescence differs in different organisms, ranging from the deep blue (460 nm) of certain crustacea, through the bluish green (490 nm) of some bacteria, the green (530 nm) of mushrooms to the red (about 600 nm) of the railroad worm. In one case, energy transfer has been demonstrated from the enzyme system to material that emits light with a longer wavelength. The energies involved range from about 165 to 250 kJ/einstein (40 to 60 kcal/einstein). Boyle first showed that air was involved in bioluminescence in 1668 in his experiments with an air pump. Over the past 100 years, it has become clear that most if not all bioluminescent systems require molecular oxygen. The recent isolation and characterization of an oxygen-containing (peroxide) enzyme intermediate from the bacterial system is described and a reaction mechanism is postulated. This scheme is compared with other hypothetical mechanisms, in particular those involving a four-membered ring intermediate, a dioxetane, in which the simultaneous cleavage of two bonds leaves one product in an excited state. I shall discuss the special role of luciferases in bioluminescence, especially in flashing mechanisms involving 'precharged' intermediates.

Acridines

Control of the Ca2+-triggered bioluminescence of Veretillum cynomorium lumisomes.

Calcium ions can trigger an emission of light from Veretillum cynomorium lumisomes (bioluminescent vesicles) under conditions where they are not lysed. This process does not require a metabolically-linked source of energy, but is dependent upon the nature of the ions present inside and outside the vesicles. The Ca2+-triggered bioluminescence is stimulated by an asymmetrical distribution of cations or anions. Either high internal sodium or high external chloride is required for the maximal effect. When sodium is present outside the structure and potassium inside, the slow inward diffusion of calcium is decreased. Unbalanced diffusion of internal cations also stimulates the bioluminescence, suggesting control of the calcium influx by an electrochemical gradient. It is assumed that rapid outward diffusion of sodium or inward diffusion of chloride generates an electrical potential difference (inside negative) which drives the Ca2+-influx. With purified lumisomes it has been shown that Ca2+-triggered bioluminescence and calcium uptake (presumably net uptake) were correlated. In two instances uptake of the lipophilic cation dibenzyldimethylammonium has given direct evidence for the existence of a potential difference. With NaCl-loaded vesicles, it has not been possible to demonstrate an uptake of lipophilic cations but experiments with 22Na and 42D indicated a higher rate of sodium efflux, in accord with the proposed hypothesis.

Biological Transport, Active

Differential synthesis of the polypeptides of aldehyde dehydrogenase and NAD(P)H:flavin oxidoreductase in the bioluminescent bacterium Beneckea harveyi.

The proteins of the bioluminescent bacterium Beneckea harveyi have been labelled with [3H]leucine prior to the induction of bioluminescence, and with [14C]leucine during the development of the bioluminescent system. An aliphatic aldehyde dehydrogenase and a NAD(P)H:flavin oxidoreductase, two enzymes that may be directly involved in the metabolism of the substrates (aldehyde, FMNH2) for the luminescent reaction catalyzed by luciferase, were purified and the isotope ratios of their respective polypeptide chains determined after sodium dodecyl sufate gel electrophoresis. A comparison of these isotope ratios to (a) the isotope ratios of the induced polypeptide chains of luciferase, purified in the same experiment, and (b) the average isotope ratio for the proteins synthesized in concert with growth has provided direct evidence that the synthesis of aldehyde dehydrogenase but not NAD(P)H:flavin oxidoreductase is induced during the development of bioluminescence.

Aldehyde Oxidoreductases

The properties of mnemiopsin, a bioluminescent and light sensitive protein purified by hollow fiber techniques.

A calcium activated photoprotein, termed mnemiopsin, which emits bioluminescence upon the addition of calcium ion, has been isolated from the Ctenophore, Memiopsis leidyi, and purified by hollow fiber techniques. The system is similar to aequorin, from the jellyfish Aequorea, except that mnemiopsin can be light-inactivated. Separation of mnemiopsin from the dilute and large volume animal homogenate proved difficult with conventional biochemical techniques. A continuous flow process utilizing large surface area hollow fibers for filtration, concentration, and dialysis was developed which may also be applicable to the purification of other proteins. The resulting mnemiopsin concentrate, after further purification, was judged to be about 90% pure by its gel electrophoretic profile. Estimates by molecular sieve chromatography and SDS gel electrophoresis gave a molecular weight of about 23,000 daltons. A calcium specificity for triggering light emission was studied by comparison of triggering with a variety of cations and anions and by investigating the effects of calcium ionophores and antagonists. The activity of mnemiospin was characterized with respect to pH, temperature and ionic strength. The stability of mnemiopsin activity after exposure to proteases, denaturants, protein group specific reagents, detergents, elevated temperatures and light was determined. Some years ago our laboratory reported that the bioluminescence reaction in the ctenophores which had long eluded definition involved a calcium activated photoprotein similar in many respects to that found in other coelenterates, notably Aequorea. We found, moreover, that the systems differed in that the bioluminescent activity of the isolated protein was lost following exposure to light. The purification and characterization of this biochemical system was undertaken both in our laboratory and by Ward and Seliger. These latter reports provide a detailed and firm foundation for the understanding of the components and mechanisms involved. While many of our results are in agreement with theirs, our approaches, inquiries, and results differed in several significant ways, the description of which forms the basis for this report. In particular, we took a different approach in the purification of the Mnemiopsis photoprotein which in itself is rather a formidable task. The technique was successful and may point the way to other applications where large volume dilute solutions prove cumbersome. Secondly, our study of the effects of salts, proteases, detergents, and other agents indicate that the protein, though sensitive to calcium and visible light inactivation, is relatively resistant to some agents which commonly inactivate proteins.

Calcium

Ca2+-induced bioluminescence in Renilla reniformis. Purification and characterization of a calcium-triggered luciferin-binding protein.

A Ca2+-triggered luciferin-binding protein (BP-LH2) from the bioluminescent marine coelenterate, Renilla reniformis, has been purified by conventional methods. One kilogram of processed animals yields approximately 2.7 mg of pure protein with an overall yield of 55%. Physicochemical studies show that BP-LH2 is a globular protein containing one single polypeptide chain with one disulfide bond. Ultracentrifugation studies, amino acid analysis, and sodium dodecyl sulfate-gel electrophoresis show that BP-LH2 has an average molecular weight of 18,500. BP-LH2 has a Stokes radius of 23 A, a sedimentation coefficient, S020,w, of 2.3 S, and an isoelectric point of 4.3. The acidic nature of the protein was confirmed by amino acid analysis, which showed that 27% of the residues are acidic. The protein contains no carbohydrate, phosphate, or tryptophan. There is one noncovalently bound molecule of coelenterate type luciferin resulting in distinct protein spectral properties with absorption maxima at 276 nm (epsilon 0.1% 276 = 1.31) and 446 nm (episoln 0.1% 446 = 0.47) and a fluorescence emission at 520 nm (uncorrected). In the presence of Ca2+, BP-LH2 will react with Renilla luciferase to give the characteristic in vitro blue bioluminescence. Ca2+ binding produces a distinct change in the spectral properties of BP-LH2 including a 4-fold enhancement of tyrosine fluorescence at 332 nm and a 5-fold fluorescence enhancement at 520 nm. In addition, the visible absorption maximum shifts from 446 nm to 420 nm. The fluorescence enhancement at 320 nm occurs over the range from 1 to 10 micrometer Ca2+. BP-LH2 has two Ca2+-binding sites with an estimated Kd of 0.02 micrometer, in 10 muM Tris at pH 7.2. BP-LH2 was compared to several well studied Ca2+-binding proteins and was found to possess similar Ca2+-binding and physicochemical properties. This study clearly demonstrates that BP-LH2 is capable of triggering a bioluminescent flash in response to an intracellular Ca2+ transient.

Amino Acids

Dinoflagellate bioluminescence: a comparative study of invitro components.

In vitro bioluminescence components of the dinoflagellates Gonyaulax polyedra, G. tamarensis, Dissodinium lunual, and Pyrocystis noctiluca were studied. The luciferases and luciferins of the four species cross-react in all combinations. All of these species possess high-molecular weight luciferases (200,000-400,000 daltons) with similar pH activity profiles. The active single chains of luciferases from the Gonyaulax species have a MW of 130,000 while those from P. noctiluca and D. lunula have a MW of 60,000. Extractable luciferase activity varies with time of day in the two Gonyaulax species, but not in the other two. A luciferin binding protein (LBP) can easily be extracted from the two Gonyaulax species (MW approximately 120,000 daltons), but none could be detected in extracts of either D. lunula or P. noctiluca. Scintillons are extractable from all four species, but they vary in density and the degree to which activity can be increased by added luciferin. Although the biochemistry of bioluminescence in these dinoflagellates is generally similar, the observations that D. lunula and P. noctiluca apparently lack LBP and have luciferases with low MW single chains require further clarification.

Animals

Properties and reaction mechanism of the bioluminescence system of the deep-sea shrimp Oplophorus gracilorostris.

The bioluminescent reaction of Oplophorus takes place when the oxidation of coelenterazine (the luciferin) with molecular oxygen is catalyzed by Oplophorus luciferase, resulting in light of maximum intensity at 462 nm and the products CO2 and coelenteramide. Oplophorus luciferase has now been obtained in a highly purified state. Optimum luminescence occurs at pH 9 in the presence of 0.05--0.1 M NaCl at 40 degrees C, and, due to the unusual resistance of this enzyme to heat, visible luminescence occurs at temperatures above 70 degrees C when partially purified enzyme is used. The specific activity of purest preparations is 1.75 X 10(15) photons s-1 mg-1 at 23 degrees C. At pH 8.7, native luciferase has a molecular weight of approximately 130 000, apparently comprising 4 monomers of 31 000; at lower pHs, the native luciferase tends to polymerize. The quantum yield of coelenterazine is 0.34 at 22 degrees C with this enzyme. After the luminescent reaction, the spent solution is nonfluorescent, and likewise solutions of luciferase alone. When the bioluminescent reaction was carried out in the presence of 18O2, the product CO2 contained more than 50% C18O16O, supporting the dioxetane mechanism, but without ruling out the linear peroxide mechanism.

Animals

Poising of the arginine pool and control of bioluminescence in Beneckea harveyi.

Arginine dramatically stimulates bioluminescence in the marine bacterium Beneckea harveyi growing in minimal media, an effect that is due to increases in both the synthesis and expression of luciferase. To elucidate the mechanism of this phenomenon, studies were made of the transport and metabolism of arginine in B. harveyi. The transport of arginine and lysine involves two kinetically distinct transport systems for the uptake of arginine and lysine. In contrast, ornithine is transported only by a system common to all three amino acids. The internal amino acid pools were measured in mutants that do not show stimulation of bioluminescence by arginine and in wild-type cells that do. In minimal media, the internal arginine pools are undetectably low. Furthermore, exogenously added labeled arginine is rapidly transported and converted to citrulline and argininosuccinate. The results can be accommodated by a model in which the internal arginine is poised at a very low concentration; the stimulatory effect of exogenous arginine on luciferase biosynthesis occurs at the transcriptional level, and the actual mediator can be either arginine or argininyl transfer ribonucleic acid.

Arginine

An induced aliphatic aldehyde dehydrogenase from the bioluminescent bacterium, Beneckea harveyi. Purification and properties.

A NAD+-dependent aldehyde dehydrogenase, the activity of which induces at the same time as luceriferase, has been purified from the bioluminescent bacterium Beneckea harveyi, and its chemical and physical properties have been investigated. The purification is accomplished in three steps resulting in an enzyme preparation that gives a single protein band on three different gel electrophoresis systems. The molecular weight of the purified enzyme was estimated to be 120,000 by gel filtration. Sodium dodecyl sulfate-gel electrophoresis gave a molecular weight of 59,000 indicating that aldehyde dehydrogenase has a dimeric structure with subunits of similar molecular weight. The purified enzyme has a high specificity for long chain aliphatic aldehydes; the Michaelis constants for aldehydes decrease with increasing chain length as also observed for bacterial aldehyde dehydrogenases involved in the metabolism of hydrocarbons. The aldehyde specificity of the aldehyde dehydrogenase is similar to that of luciferase indicating that the functional role of the enzyme may be linked with the bioluminescent system.

Aldehyde Oxidoreductases

Instrumentation and techniques for analysis of hydrogen peroxide and peroxide-producing reactions involving earthworm (Diplocardia longa) bioluminescence.

Earthworm bioluminescence (species Diplocardia longa) is a sensitive tool for determination of peroxide titers in biological systems, with linearity of the standard curve for hydrogen peroxide extending from 10 nmol/L in the assay to greater than 1 mmol/L, and with sensitivity to 2 pmol of peroxide per assay. This assay's insensitivity to extraneous protein, turbidity, and solutes that are not redox active makes it particularly useful for automated or crude sample analysis and for analysis of oxidases and their substrates in coupled reactions. Examples of this latter application we discuss are analyses of glucose and putrescine oxidases and their substrates. In each case linear standard curves are obtained, covering several decades of concentration. The coupled reactions also allow in situ detection of oxidases in electrophoresis gels. We also describe a small, portable photometer system and an on-line computer-controlled instrument system that has facilitated development of these assays and will also allow automatic scanning of bioluminescence in gels. The data-collection and decision-making algorithms of this system are simple and easily adaptable for use in an inexpensive computer-based photometer system.

Animals

Bioluminescence assay of creatine kinase and its isoenzymes in serum and cerebrospinal fluid.

We examined the sensitivity of bioluminescence for the determination of very low concentrations of creatine kinase brain-type subunit (CK-BB) in serum and in cerebrospinal fluid. To optimize the sensitivity of CK-isoenzyme assays and eliminate possible sources of error, we separated the isoenzyme fractions by using inhibiting anti-MM and precipitating anti-MM and anti-BB antibodies. The results with the bioluminescence assay correlated with spectrophotometric values such that r = 0.97 for the total CK activity and r = 0.98 for the CK-B activity. The reproducibility of the present method was comparable with the spectrophotometric method and was even better at low enzyme activities. The within-series precision for assay of total CK activity at 2 U/L corresponded to a CV of 9%; at 13 U/L the CV was 5.8%. All the assays were carried out at 25 degrees C. Even at this low temperature, CK activities as low as 0.2 U/L could be determined. In eight patients without any evidence of cerebral cell damage, total CK activity in cerebrospinal fluid was x = 1.05 +/- 0.6 U/L, and CK-BB activity was x = 0.7 +/- 0.4 U/L. In sera of these patients CK-BB activity was x = 0.6 +/- 0.5 U/L. Differences in CK and CK-BB activities in four patients with transient or progressive brain-cell damage are discussed.

Autoanalysis

Shedding light on Klebsiella pneumoniae virulence: Engineering of broad host range bioluminescence reporter vectors for transcriptional analysis in drug resistant pathogens.

In this work, we report the construction of four bacterial luciferase-based promoter probe vectors with an expanded set of selectable markers, designed to facilitate their use in antibiotic-resistant bacteria. These vectors contain the low-copy-number, broad-host-range pBBR origin of replication and an origin of transfer, allowing efficient conjugative transformation into various bacterial genera. The broad host range origin also enables their use in bacterial strains that harbor other plasmids, as the pBBR origin is compatible with a wide variety of other plasmid replication systems. The utility of these vectors was demonstrated by quantifying capsule gene expression in both classical and hypervirulent Klebsiella pneumoniae strains lacking tolC, which encodes the outer membrane pore protein for tripartite transport systems. Our results revealed that the tolC mutation reduced capsule gene expression, highlighting a critical role for tolC in K. pneumoniae pathobiology and the utility of bioluminescence for studying gene expression in real time. These new vectors provide a flexible platform for circumventing antibiotic resistance phenotypes and studying gene expression across diverse bacterial species, including strains containing additional plasmids.

Klebsiella pneumoniae

The measurement of coenzyme A and a coenzyme A-dependent enzyme. In microdissected epidermal material using coupled enzyme and bioluminescent reactions.

A sensitive micromethod for the determination of Coenzyme A and its esters down to about 0.2 pmol in a volume of 10 microliters and of the activity of citrate synthase is outlined. Epidermal material from healthy and psoriatic skin was utilized in microgram quantity as tissue source. The assay utilizes the ketoglutarate dehydrogenase reaction to yield NADH on addition of free Coenzyme A and the subsequent measurement of NADH by a bioluminescent reaction with Acromobacter fischerii. The total Coenzyme A content in six healthy subjects measured in stratum Malpighii was 1.58 +/- 0.19 mmol per kg dry weight. In six psoriatic patients non-involved and involved epidermis contained 1.51 +/- 0.27 and 1.50 +/- 0.25 mmol/kg, respectively. Long-chain acyl-Coenzyme A comprised about 20% in lesion-free skin and 60% of total content in the involved psoriatic epidermis. The activity of citrate synthase in basal layers of healthy epidermis was 0.30 +/- 0.04 mkat/kg dry weight.

Animals

Renilla luciferin as the substrate for calcium induced photoprotein bioluminescence. Assignment of luciferin tautomers in aequorin and mnemiopsin.

A study was made of the effects of pH and protic and aprotic solvents on the spectral properties of Renilla (sea pansy) luciferin and a number of its analogs. The results have made possible the assignment of two tautomeric forms of Renilla luciferin, one which absorbs maximally at 435 nm and another which exhibits an absorption maximum at 454 nm. Furthermore the results provide an explanation for the visible absorption characteristics of the photoproteins aequorin (lambda-max 454 nm) and mnemiopsin (lambda-max 435 nm). In addition a Renilla-like luciferin can be extracted from both of these photoproteins. This luciferin produces light with Renilla luciferase, at a rate dependent upon the concentration of dissolved oxygen, and in other respects is indistinguishable from Renilla luciferin in this bioluminescent reaction. The results suggest that the native chromophore in both photoproteins is Renilla luciferin (or a nearly identical derivative). The results also suggest that a hydroperoxide intermediate probably exists in photoproteins, on energetic grounds, and to account for the oxygen concentration independency of the rate of photoprotein reactions. This hydroperoxide may be attached initially to an amino-acid side chain (possibly indolyl-OOH, imidazoyl-OOH, or -SOOH) rather than to the luciferin chromophore.

Aequorin

Chemical nature of bioluminescence systems in coelenterates.

Analysis of substances involved in light-emitting reactions among bioluminescent coelenterates has revealed a pronounced uniformity in the structural features of initial reactants, i.e., "luciferins" and photo-protein chromophores, as well as the light-emitter product. This product is structurally identical among the different classes of coelenterates: Hydrozoa (the jellyfish, Aequorea), Anthozoa (the sea cactus, Cavernularia; sea pansy, Renilla; and sea pen, Leioptilus), and very likely also the Scyphozoa (the jellyfish, Pelagia). In each of these instances the reaction product, namely, 2-(p-hydroxy-pnenylacetyl)amino-3-benzyl-5-(p-hydroxyphenyl) pyrazine, is the actual light-emitter, whether it occurs in a Ca2+-triggered photoprotein type of luminescence, or in a "luciferin-luciferase" type. The evidence indicates that in certain coelenterates, e.g., Cavernularia, these two types are equally significant, whereas in others (Renilla and Leioptilus) the "luciferin-luciferase" type predominates over the Ca-triggerable photoprotein type, and finally that only the photoprotein type functions in the luciferaseless jellyfish, Aequorea. In all instances investigated, the structure of the light-emitter prior to the luminescence reaction appears to be essentially the same as that of the chromophore of unreacted aequorin. The product of the luminescence reaction is absent in extracts of non luminous species. However, a product very similar to that of luminescent coelenterates occurs also in representatives of other phyla, including the cephalopod molluscs, e.g., the "firefly squid" Watasenia and probably various ctenophores as well.

Animals

Bioluminescence of the firefly: key steps in the formation of the electronically excited state for model systems.

The chemcial mechanism for formatin of electronically excited-state molecules from the thermal reaction of dimethyldioxetanone was studied. Light production in the presence of certain easily oxidized aromatic hydrocarbons was found not to conform to the classical mechanistic schemes for chemiexcitation. Detailed investigation of the dioxetanone system revealed light formation by the recently discovered, chemically initiated electron-exchange process. This result is extrapolated to bioluminescent systems. In particular, the key high-energy molecule involved in firefly luminescence, which has been identified as a dioxetanone, is postulated to form excited states as a result of intramolecular electron transfer from the phenoxythiazole moiety to the dioxetanone. Subsequent rapid decarboxylation results in direct formation of an excited single state of the emitting amide.

Animals