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Challenges to macromolecular drug delivery.

The use of macromolecules, particularly monoclonal antibodies, as therapeutic agents has come to the forefront in recent years. The biodistribution and delivery issues for protein drugs are shared to a substantial degree with other emerging therapeutic approaches including pharmacologically active nucleic acids and nanoparticles. A generalized approach to these issues involves consideration of the multiple biological barriers that stand between the macromolecular drug or nanoparticle at its site of administration and its ultimate biological target. Considerations of size, stability, non-specific versus specific associations and potency versus toxicity all play a role. The creation of delivery approaches that combine high specificity for the target cell or tissue, high therapeutic payload and modest toxicity remains a challenge, although some very promising examples have emerged recently. A variety of sophisticated targeting strategies, based primarily on combinatorial library methods, when used in combination with new technologies to identify cell-surface receptor 'signatures' of specific tissues, will facilitate advances in targeted delivery of macromolecules and nanoparticles. The challenges to contemporary macromolecule drug delivery are complex, thus new research paradigms are emerging that combine the talents of physical and biological scientists to address this key issue for modern pharmacology and therapeutics.

Antibodies, Monoclonal↗

Effects of cytosine arabinoside on differential gene expression in embryonic neural retina. I. Accumulation of glutamine synthetase with suppression of macromolecular synthesis.

The analogue of cytidine, cytosine arabinoside (Ara-C), elicited a significant increase in the level of glutamine synthetase (GS) in embryonic chick neural retina in the absence of the steroid inducer of the enzyme. The increase was due to de novo synthesis of GS and was mediated by RNA which accumulated in the presence of the effective concentration of Ara-C. Accumulation of GS did not result from the inhibition of DNA synthesis for which Ara-C is best known. This new effect of Ara-C involves differential suppression of macromolecular synthesis in this system: the concentration of Ara-C which caused maximum GS accumulation suppressed overall protein and RNA syntheses 65-75% without inhibiting the transcription and translation of templates essential for GS synthesis. Withdrawal of Ara-C resulted in restoration of RNA synthesis and cessation of GS accumulation, even though preformed templates for the enzyme were present; however, if all RNA synthesis was arrested with actinomycin D at the time of Ara-C withdrawal, GS continued to accumulate. The results are consistent with the hypothesis that Ara-C differentially affects the activity of structural and regulatory genes involved in the regulation of GS levels in the retina: Ara-C allows transcription of the enzyme-specific templates, but reversibly inhibits the expression of regulatory genes which limit the accumulation of GS.

Animals↗

Logical elements in living cells.

Recognition processes with enhanced accuracy (as performed by structures like enzymes or ribosomes) are investigated using elementary ideas of statistical mechanics and related concepts of thermodynamics. The analysis starts from a formal definition of recognition and provides a correspondence with appropriate physical properties of the macromolecular logical elements. Transitions of the recognizing system between different modifications are a necessary feature of a more exacting recognition process. Rearrangement steps provide the process with higher accuracy by performing two physical operations: (1) rearranging the phase space of the system so that the "correct" states be better separated from the "wrong" states and the probability of occupation of the "correct" states be enhanced, (2) directing the process toward the more favourable modifications thus formed. Both operations are related to changes in the physical properties of the recognizing system. These changes can be expressed as differences of macromolecular Gibbs energy levels; if ligand binding or release participate in a step, directivity of the step depends also on the actual chemical potentials of the ligands in solution. The two operations just mentioned resemble two basic operations known to be necessary in electronic digital networks: directivity of control and signal standardization. An analysis of the entire reaction catalysed by a macromolecular logical element takes into account the requirements imposed by the logical functions as well as the need that the chemical potential of the product be not restricted to very low values. To satisfy these conditions, the reaction must be supported by a so-called non-specific reaction, usually implemented by the cleavage reaction of a nucleoside triphosphate.

Catalysis↗

Effect of side group chemistry on the properties of biodegradable L-alanine cosubstituted polyphosphazenes.

Biodegradable polyphosphazenes have been investigated for a variety of applications, such as controlled drug delivery matrixes, tissue-engineering scaffolds, membranes, and bone-type composites. In this study we have evaluated the effect of side group chemistry on the properties of biodegradable phosphazene polymers that contain ethyl alanato side groups together with ethyl glycinato, p-methylphenoxy, or p-phenylphenoxy side groups. The polymers were synthesized by a macromolecular substitution route. The molecular weights of aryloxy/amino acid ester cosubstituted polymers were much higher than the amino acid ester substituted polyphosphazenes described earlier. Polymer properties, such as glass transition temperature, hydrolytic degradation, surface wettability, tensile strength, and modulus of elasticity varied over a wide range following changes to the type of co-substituents on the polymer backbone. The glass transition temperatures varied from -10 to 35 degrees C and increased with the bulkiness of the side groups. Polymer films in phosphate buffer saline solution showed molecular weight declines ranging from 58% to >80% and mass loss ranging from 4% to 90% over a period of 7 weeks. Water contact angles for polymer films varied from 63 degrees to 107 degrees , with the highest angles for the alanine ethyl ester and p-phenylphenoxy cosubstituted polyphosphazene. The tensile strengths were in the range of 2.4-7.6 MPa and the modulus of elasticity was in the range of 31.4-455.9 MPa. Thus, in this study we have demonstrated the tunability of biodegradable polyphosphazenes to suit a range of biomedical applications.

Alanine↗

Role of the glycosylphosphatidylinositol/inositol phosphoglycan system in human fibroblast proliferation.

The involvement of the glycosylphosphatidylinositol/inositol phosphoglycan (gly-PtdIns/IPG) system in the stimulation of macromolecular syntheses in human fibroblasts has been investigated. The study demonstrates that an insulin sensitive gly-PtdIns/IPG system is present in human fibroblasts, that IPG can significantly stimulate DNA, RNA, and protein synthesis, and that the action of insulin on DNA synthesis as well as that of IPG can be significantly reduced by a specific anti-IPG antibody. These results strongly support the hypothesis that the gly-PtdIns/IPG system is involved in the signal transduction pathway leading to the stimulation of cell proliferation.

Cell Division↗

Extrusion of rotating microtubules on the dynein-track from a microtubule-dynein gamma-complex.

Applying a new in vitro motility assay system for microtubules and 22S dynein, we recently reported on an ATP-induced extrusion of microtubules from microtubule-dynein alpha- and beta-complexes [Mimori and Miki-Noumura, 1994: Cell Motil. Cytoskeleton 27:180-191]. In the present study, we prepared a gamma-complex by copolymerizing porcine brain tubulin and Tetrahymena ciliary 22S dynein, and examined the ATP-induced microtubule movement from the gamma-complex. The extrusion process appeared quite similar to that of the beta-complex. The sliding velocity was 18.39 +/- 2.20 microns/sec, which was a value comparable to that of trypsin-digested flagellar axonemes [Yano and Miki-Noumura, 1980: J. Cell Sci. 44:169-186]. Higher velocity may be due to a densely arranged dynein-track with the same polarity, which was detached from the gamma-complex and absorbed in rows on a glass surface of the slide. Sometimes a free-floating microtubule in the perfusion chamber was observed riding and sliding on the dynein-track remaining on the slide after extrusion. Unexpectedly, we found that when the front part of the microtubule was fixed to a glass surface, a continuous sliding microtubule at the rear part on the dynein-track often transformed into a left-handed helix, and subsequently a twisted helix with several turns. The helix formation may be due to some rigidity in the microtubule and a right-handed torque component in the sliding force of 22S dynein. The addition of ATP may release some distortion accumulated in the complex structure during copolymerization of tubulin and 22S dynein, inducing reverse rotation of the microtubule.

Adenosine Triphosphate↗

Pulsed field agarose gel electrophoresis in the study of morphogenesis: packaging of double-stranded DNA in the capsids of bacteriophages.

To understand how comparatively simple macromolecular components become biological systems, studies are made of the morphogenesis of bacteriophages. Pulsed field agarose gel electrophoresis (PFGE) has contributed to these studies by: (i) improving the length resolution of both mature, linear, double-stranded bacteriophage DNAs and the concatemers formed both in vivo and in vitro by the end-to-end joining of these mature bacteriophage DNAs, (ii) improving the resolution of circular conformers of bacteriophage DNAs, (iii) improving the resolution of linear single-stranded bacteriophage DNAs, (iv) providing a comparatively simple technique for analyzing protein-DNA complexes, and (v) providing a solid-phase quantitative assay for all forms of bacteriophage DNA; solid-phase assays are both less complex and more efficient than liquid-phase assays such as rate zonal centrifugation. Conversely, studies of bacteriophages have contributed to PFGE the DNA standards used for determining the length of nonbacteriophage DNAs. Among the solid-phase assays based on PFGE is an assay for excluded volume effects.

Bacteriophages↗

Peptides in apoptosis research.

Apoptosis is a complex process that plays a central role in physiological and pathological cell death. This fast evolving research area has experienced incredible development in the past few years. Progress in the knowledge of the structure of many of the main molecular actors of the apoptotic signal transduction pathways has driven the design of synthetic peptides that in some cases can function as simplified versions of their parent proteins. These molecules are contributing to a better understanding of the activity and regulation of apoptotic proteins and also are setting the basis for the discovery of effective drugs to combat important diseases related to apoptosis. Most applications of peptides in apoptosis research are so far related to caspases, caspase regulatory proteins, such as LAPs and Smac, and proteins of the Bcl-2 family. Additionally, important perspectives are open to other systems, such as the macromolecular assemblies that are responsible for the activation of initiator caspases.

Amino Acid Sequence↗

Deglycosylation of serum vitamin D3-binding protein by alpha-N-acetylgalactosaminidase detected in the plasma of patients with systemic lupus erythematosus.

A serum glycoprotein, Gc protein (vitamin D3-binding protein), can be converted by beta-galactosidase of B cells and sialidase of T cells to a potent macrophage-activating factor (MAF), a protein with N-acetylgalactosamine as the remaining sugar moiety. Thus, Gc protein is the precursor for MAF. Treatment of Gc protein with immobilized beta-galactosidase and sialidase generates a remarkably high titered macrophage-activating factor (GcMAF). When peripheral blood monocytes/ macrophages (designated macrophages) of 33 systemic lupus erythematosus patients were incubated with GcMAF (100 pg/ml), the macrophages of all patients were activated as determined by superoxide generation. However, the precursor activity of patient plasma Gc protein was lost or reduced in these patients. Loss of the precursor activity was the result of deglycosylation of plasma Gc protein by alpha-N-acetylgalactosaminidase activity found in the patient plasma. Levels of plasma alpha-N-acetylgalactosaminidase activity in individual patients had an inverse correlation with the MAF precursor activity of their plasma Gc protein. Deglycosylated Gc protein cannot be converted to macro-phage-activating factor. The resulting defect in macro-phage activation may lead to an inability to clear pathogenic immune complexes. Thus, elevated plasma alpha-N-acetylgalactosaminidase activity resulting in the loss of MAF precursor activity and reduced macro-phage activity may play a role in the pathogenesis of systemic lupus erythematosus.

Adolescent↗

Activation of liver and muscle insulin receptor tyrosine kinase activity during in vivo insulin administration in rats.

We have studied autophosphorylation and tyrosine kinase activity of the insulin receptor purified from liver and muscle of fasted rats before and after infusion of insulin (100 mU/h) during a 2.5 h glucose clamp. Recovery of insulin receptors and insulin binding to the solubilised receptors was unaffected by the glucose clamp. Autophosphorylation of the insulin receptor beta subunit was increased in liver receptors prepared from rats at the end of the glucose clamp compared to rats in the basal state both in the absence of insulin in vitro (109% increase, p less than 0.001) and after in vitro stimulation with 10(-7) mol/l insulin (clamped vs fasted; 96% increase, p less than 0.001). Insulin (10(-7) mol/l) stimulated autophosphorylation was also increased in muscle receptor preparations from clamped rats compared with rats in the basal state (58% increase, p less than 0.05). In both liver and muscle receptors, the clamp increased the amount of [32P]-phosphate incorporated into the beta subunit without changing the sensitivity of the insulin stimulation. HPLC analysis of the tryptic phosphopeptides derived from the beta subunit after insulin stimulated autophosphorylation of liver receptors revealed an increase of 32P in all phosphorylation sites without any change in the overall pattern. Tyrosine kinase activity of liver and muscle insulin receptors from clamped rats was also increased approximately twofold (p less than 0.05) when analysed using a synthetic substrate (poly Glu4 Tyr1). Our results support the notion that the insulin receptor exists in an active an inactive form, and that elevated plasma insulin concentrations increases the proportion of active receptors.

Animals↗

Evidence that clomethiazole interacts with the macromolecular GABA A-receptor complex in the central nervous system and in the anterior pituitary gland.

Clomethiazole (CLOM) is known to be an anticonvulsant drug and has been also reported to decrease serum prolactin (PRL) in humans. Both effects may be mediated by an enhancement of gabaergic transmission. In order to determine if (CLOM) interacts with GABA metabolism and/or at the GABA receptor level, we studied its effect on PRL release and on the binding of various compounds that interact with the GABAA-benzodiazepine-receptor complex. Intraperitoneal (IP) administration of CLOM to rats significantly decreased PRL levels, and this effect was antagonized by IP administration of bicuculline, an antagonist of the GABAA receptor. In vitro, the inhibitory effect of muscimol on PRL release from rat hemiadenohypophysis was potentiated in a dose-dependent manner by preincubation with CLOM. This effect was antagonized by picrotoxin (10(-6) M). On the other hand, CLOM had no effect on GABA metabolism and did not compete with GABAA, GABAB or benzodiazepine binding sites in cortical membranes. CLOM competed, however, with the picrotoxin binding site labelled with [35S]-butylbicyclophosphorothionate (TBPS), at an IC50 value of 1.2 x 10(-4) M, which is in the same range as some barbiturates. These results concerning PRL release and binding experiments with cortical membranes suggest that CLOM interacts with the picrotoxin/barbiturate site of the GABAA-receptor-chloride channel complex.

Animals↗

A rapid mixing-photocrosslinking technique to study the dynamics of nucleic acid-protein interactions.

A rapid mixing-photocrosslinking technique has been developed to investigate the kinetics of protein-nucleic acid interactions. With this technique, binding of nucleic acid to protein is first synchronized by rapid mixing in a stopped-flow apparatus. The intermediates formed at different stages of the binding process are then "frozen" by photocrosslinking with a 10-microseconds uv light pulse at various times after mixing. By analyzing structural changes of these intermediates as a function of time, one can obtain the information concerning the dynamic aspects of the interaction. This technique may also be applied to other macromolecular interactions in biological systems.

DNA↗

Milk- and soy protein-induced enterocolitis: evidence for lymphocyte sensitization to specific food proteins.

Stimulation ( [3H]thymidine incorporation) of blood lymphocytes cultured with food proteins was evaluated in infants with food protein-induced enterocolitis and correlated with the results of oral diagnostic challenges with the same foods (soy, cow's milk, and egg white). The geometric mean stimulation index for lymphocytes from patients with positive oral soy protein challenge that were cultured with soy protein was 8.5, and for patients with positive cow's milk challenge the stimulation index was 6.0 when casein was used in the cultures. Both values are significantly different from the values obtained from patients with negative oral challenges (p less than 0.01). The enhanced lymphocyte responses were specific for the food proteins responsible for clinical symptoms. It is not clear whether these lymphocyte responses are due to systemic immunization secondary to macromolecular absorption, or to an abnormality in immune regulation such as a delay in the development of oral tolerance mechanisms. They suggest, however, that circulating lymphocytes sensitive to the food antigens that produce the clinical symptoms are frequent in infants with this discrete form of food protein hypersensitivity.

Animals↗

Primary structure of V-ATPase subunit B from Manduca sexta midgut.

The amino acid sequence of a vacuolar-type ATPase (V-ATPase) subunit B has been deduced from a cDNA clone isolated from a Manduca sexta larval midgut library. The library was screened by hybridization with a labeled cDNA encoding subunit B of Arabidopsis thaliana tonoplast V-ATPase. The M. sexta V-ATPase subunit B consists of 494 amino acids with a calculated M(r) of 54,902. The amino acid sequence deduced for V-ATPase subunit B of M. sexta is between 98% and 76% identical with that of seven other V-ATPase subunits B and greater than 52% identical with three archaebacterial ATPase subunits B.

Adenosine Triphosphatases↗

The domain structure of the cholesterol side-chain cleavage cytochrome P-450 from bovine adrenocortical mitochondria. Localization of haem group and domains in the polypeptide chain.

Cytochrome P-450scc consists of two domains linked with a short loop of the polypeptide chain; under hydrolysis by trypsin the domains retain their associated state due to rigid noncovalent interactions. A partial separation of the domains by gel-chromatography on Sephadex G-200 with retention of a haem group in domain I has been achieved after incubation of the trypsin-modified cytochrome P-450scc in 50 mM phosphate buffer (pH 7.2)/1 M NaCl/0.3% sodium cholate/0.3% Tween 80. The separation of domains I and II to individual fragments of the haemoprotein polypeptide chain has been achieved by chromatography under denaturation conditions on the activated thiopropyl-Sepharose via a selective covalent immobilization of domain II. Dissociation of a complex of domains I and II has been effectuated in the presence of 7 M guanidine. Structural characteristics of individual domains have been investigated. It is established that domain I containing a haem group is the N-terminal moiety, and domain II, the C-terminal moiety of the polypeptide chain of cytochrome P-450scc. The pathways of limited trypsinolysis of the native cytochrome P-450scc have been determined. The peptides containing cysteine residues localized on the surface of domain II and responsible for the interaction of haemoprotein with activated thiopropyl-Sepharose have been isolated in a homogeneous form and their amino-acid sequences have been assessed.

Adrenal Cortex↗

The covalent binding of cyclosporin A to rat liver macromolecules in vivo and in vitro: the role of cytochrome P-450.

Incubation of rat liver S9 with [3H]cyclosporin A ([3H]CSA) resulted in covalent binding of CSA to macromolecules. Binding was dependent on the presence of NADPH and could be inhibited by SKF-525A. Incubation of isolated rat liver parenchymal cells with CSA resulted in a concentration-dependent binding which increased with incubation time for at least 2 h. Addition of SKF-525 A (0.5 mM) decreased the binding by 83% while viability of the cells was unchanged. Pretreatment of the cells with diethylmaleate doubled the binding of CSA, indicating that glutathione can prevent binding of CSA. When [3H]CSA was injected i.v. radioactivity was covalently bound to liver and kidney macromolecules. Induction of cytochrome P-450 by phenobarbital resulted in enhanced in vivo covalent binding in liver and kidney. Whether this covalent binding of CSA is related to its cytotoxicity is yet unclear.

Animals↗