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At least 19 recordsLinked to original sources

Targeting of the oncogenic fusion EWSR1-FLI1 in Ewing sarcoma by CRISPR/dCas9 silencers.

Despite the revolutionary impact of genome engineering tools in medicine, the safe and effective intracellular delivery of CRISPR remains a major obstacle to clinical applications. Here, we utilize precision molecular targeting and delivery strategies based on CRISPR-nuclease-dead Cas9 (dCas9) systems adapted for epigenetic repression (dCas9-Krüppel-associated box [KRAB]) to silence oncogenic drivers with high selectivity. As proof of principle, we target the EWSR1-FLI1 translocation, which encodes a chimeric and hard-to-drug oncogenic transcription factor driving approximately 85% of the cases of Ewing sarcoma (EWS)-an aggressive childhood malignancy. We describe the development of a programmable, non-viral polymeric system for the delivery of dCas9-KRAB as ribonucleoprotein (RNP) payloads for EWSR1-FLI1 repression. We demonstrate highly efficient intracellular delivery of RNPs loaded in polyamide-amine (PAMAM) polymers functionalized by guanidino groups, resulting in robust silencing of EWSR1-FLI1 both in established cell line xenografts and in EWS-related patient-derived xenografts (PDXs) of EWS. We show that silencing of EWSR1-FLI1 is accompanied by potent anti-tumor effects. Collectively, we characterize an effective non-viral platform for in vivo delivery of dCas9-KRAB/RNPs, which could be adapted for the repression of any oncogene. We further outline dCas9/RNP formulations for future therapeutic applications to treat poor-prognosis cancers driven by hard-to-drug oncogenes.

CRISPR-dCas9

PGC1α expression using targeted redox-responsive nanogels protects against prostate cancer in vivo.

Prostate cancer is among the most frequently diagnosed cancers in men in the UK and US. Increasing evidence implicates metabolic dysregulation as a critical driver of disease progression. Central to this process is peroxisome proliferator-activated receptor gamma coactivator 1-alpha (PGC1α) that promotes oxidative metabolism and mitochondrial biogenesis while inhibiting metastatic programs. This work investigated the therapeutic potential of PGC1α overexpression via mRNA delivery. Here, we report a prostate-specific, targeted disulphide-crosslinked nanogel system for intracellular delivery of mRNA encoding the N-terminal isoform of PGC1α (NT-PGC1α). Functionalization of the NGs with a peptide targeting prostate-specific membrane antigen (PSMA) enabled selective delivery of NT-PGC1α mRNA in PCa cells and 3D spheroid models. We confirmed sustained PGC1α expression, and increased mitochondrial protein content, indicative of enhanced mitochondrial biogenesis. These nanogels, which were prepared in situ using a nanopolymerization technique, exhibited high mRNA loading capacity, low cytotoxicity, and redox-responsive cargo release, enabling controlled cytosolic delivery following intracellular glutathione-mediated degradation. In vivo, systemic administration of the PSMA-targeted NT-PGC1α mRNA-loaded nanogels resulted in tumor-preferential accumulation and significant suppression of xenograft growth (by 73.4% relative to untreated control), with minimal systemic toxicity. This study presents the first example of a prostate-targeted, disulfide-crosslinked nanogel system for mRNA-mediated metabolic reprogramming in prostate cancer, and highlights its promise as a platform for future RNA-based targeted and precision stimuli-responsive cancer therapies.

Male

Redox-activated cholesterol-dependent cytolysin enables cytosolic release of liposomal cargo.

Precise intracellular delivery of biologic therapeutics remains a major challenge due to endosomal entrapment and inefficient delivery systems. Here, we develop a bioinspired platform that uses Streptolysin O (SLO), a member of the cholesterol-dependent cytolysin (CDC) family, for cytosolic cargo delivery. This delivery system incorporates an affibody for selective targeting and endocytosis and a redox-cleavable PEG-conjugated dithiol-ethyl carbonate linker (PEG-DEC) that reversibly inactivates SLO extracellularly. After endosomal uptake, the reductive intracellular environment removes the PEG layer, reactivating SLO to induce localized endosomal disruption and cargo release. This mechanism minimizes off-target toxicity while promoting efficient cytosolic delivery of diverse cargo, including doxorubicin (DOX), the fluorescent protein GFP and mApple, and the enzyme NanoLuciferase (NanoLuc) and lactate oxidase (LOX). PEGylated SLO exhibited significantly improved cytosolic release efficiency compared with conventional liposomal formulations, confirming the advantage as a controllable intracellular delivery module.

Liposomes

Biomaterial-Integrated Electroporation for Therapeutic Delivery: From Gene Editing to Tumor Ablation and Immune Modulation.

Electroporation has evolved from a membrane-permeabilization method into a versatile therapeutic platform for intracellular delivery, locoregional tumor intervention, and bioelectrically regulated treatment. Depending on pulse intensity and duration, electroporation operates in two distinct modes: reversible electroporation (RE), which transiently permeabilizes the plasma membrane to enable delivery of nucleic acids, proteins, and small molecules while preserving cell viability, and irreversible electroporation (IRE), which causes permanent membrane damage for non-thermal tissue ablation. Increasingly, the therapeutic scope of electroporation is being expanded through integration with biomaterials, including nanocarriers, hydrogels, soft conductors, and micro/nanoengineered bioelectronic interfaces. These material-assisted strategies improve cargo protection, field confinement, local retention, tissue conformity, and spatiotemporal control, thereby extending electroporation beyond conventional transfection toward gene editing, engineered cell manufacturing, electrochemotherapy, tumor ablation, immune modulation, and transdermal or localized delivery. In this Review, we summarize the biophysical principles of RE and IRE, discuss how biomaterials reshape electroporation performance across therapeutic settings, compare the design logic of major biomaterial-assisted electroporation platforms, and highlight key translational challenges, including pulse-material compatibility, manufacturing scalability, in vivo dosimetry, and regulatory complexity.

Humans

Engineered virus-like particle-assembled Vegfa-targeting Cas9 ribonucleoprotein treatment alleviates neovascularization in wet age-related macular degeneration.

BACKGROUND: Age-related macular degeneration, particularly the wet form, is a leading cause of vision loss, characterized by vascular endothelial growth factor A (VEGFA) overproduction. Engineered virus-like particles (eVLPs) combine the efficiency of viral systems with the transient nature of non-viral platforms to offer a potential solution for delivering VEGFA-targeting genome editing enzymes in a safe and efficient manner. Here, we investigate the therapeutic efficacy of eVLPs for transient delivery of Vegfa-targeting Cas9 ribonucleoprotein in a laser-induced choroidal neovascularization mouse model of wet age-related macular degeneration. RESULTS: We find that Cas9-eVLPs enables efficient intracellular delivery in vitro, achieving up to 99% insertion and deletion frequency at Vegfa target locus and significant VEGFA protein downregulation in NIH/3T3 cells. A single subretinal injection of Cas9-eVLPs into the mouse retinal pigment epithelium effectively disrupts Vegfa expression, achieving an average indel efficiency of 16.7%. Compared to control groups, the laser-induced choroidal neovascularization mouse model exhibits significantly reduced choroidal neovascularization formation following Cas9-eVLPs intervention, and decreased VEGFA protein levels are detected in the retinal pigment epithelium. Furthermore, the retinal anatomical and functional toxicity are not affected after treatment. CONCLUSIONS: eVLPs exhibit the potential as a safe and efficient delivery platform for Cas9 ribonucleoproteins, achieving precise Vegfa downregulation and significant reduction in choroidal neovascularization in a mouse model of wet age-related macular degeneration. With transient delivery of gene editing enzymes, high editing efficiency, and minimal risk of genomic integration, eVLPs present a promising alternative to conventional delivery systems for advancing genome editing therapies in retinal diseases.

CRISPR-Associated Protein 9

Engineering extracellular vesicles for targeted siRNA delivery: Advances, therapeutic applications, and clinical translation.

Small interfering RNA (siRNA) therapeutics have emerged as a transformative approach for sequence-specific gene silencing, offering the potential to treat a broad spectrum of diseases by selectively suppressing disease-associated genes. However, the clinical translation of siRNA remains limited by rapid enzymatic degradation, poor cellular uptake, inadequate endosomal escape, and off-target effects, necessitating the development of efficient delivery systems. Extracellular vesicles (EVs) have gained considerable attention as natural nanocarriers owing to their excellent biocompatibility, low immunogenicity, intrinsic targeting capability, and ability to protect therapeutic cargo while traversing complex biological barriers. This review comprehensively discusses the biological characteristics of EVs, the molecular basis of RNA interference, and the major challenges associated with siRNA delivery [Fig. 1]. Recent advances in EV engineering, including cargo-loading strategies such as electroporation, sonication, extrusion, parent-cell engineering, and microfluidic approaches, together with surface functionalization using peptides, antibodies, aptamers, and hybrid nanoplatforms, are critically evaluated for improving targeting specificity and intracellular delivery. Furthermore, the therapeutic applications of engineered EV-mediated siRNA delivery in cancer, neurological disorders, liver diseases, cardiovascular diseases, inflammatory disorders, and infectious diseases are systematically summarized, highlighting their potential to enhance gene silencing while minimizing systemic toxicity. Current challenges related to large-scale manufacturing, cargo-loading efficiency, standardization, quality control, regulatory approval, and clinical translation are also discussed, together with emerging technologies involving synthetic biology, genome engineering, artificial intelligence, and multifunctional hybrid vesicles. Overall, engineered extracellular vesicles represent a highly versatile and biologically inspired platform for targeted siRNA delivery, providing a promising foundation for the development of next-generation precision RNA therapeutics and accelerating the clinical translation of gene-silencing strategies.

Extracellular vesicle engineering

Tripled-Stranded Antisense Oligonucleotide for Biomarker-Activated Suppression of Essential Genes.

Conditional activation of antisense oligonucleotides (ASOs) is a promising strategy for selective suppression of cancer cells without affecting normal cells. In this study, we developed a tripled-stranded ASO (tsASO) that is rendered inactive through complexation with two additional oligonucleotides. The key innovation is the use of partial overlap between the parent ASO and the biomarker sequence, combined with toehold-mediated strand displacement, enabling precise conditional activation. The tsASO effectively triggered RNase H-mediated degradation of DYNC1I2 and DARS1 RNAs exclusively in the presence of the ERBB2 sequence. In cell-free systems, the tsASO demonstrated high cleavage efficiency (up to 81%), comparable to the parent ASO efficiency, with minimal background activity in the absence of the biomarker sequence, validating the concept at the molecular level. However, in cells using lipid-based transfection, the tsASO exhibited nonspecific cytotoxicity that did not correlate with biomarker presence or target gene expression. Detailed analysis showed no clear support for known sequence-driven toxicity mechanisms (CpG/TLR9, G-quadruplexes) in the nonimmune cell lines, suggesting that the primary limitation is intracellular delivery rather than the tsASO design. Future work should focus on optimizing delivery platforms to achieve controlled cellular uptake and biomarker-dependent release, unlocking the therapeutic potential of this conditional gene silencing approach.

Oligonucleotides, Antisense

Enzyme therapy. VI: Comparative in vivo fates and effects on lysosomal integrity of enzyme entrapped in negatively and positively charged liposomes.

Entrapment of enzyme in liposomes, biodegradable lipid vesicles, offers an intriguing strategy for the intracellular delivery of these macromolecules to the lysosomal apparatus for enzyme replacement endeavors in selected lysosomal storage diseases. Therefore, the in vivo tissue and subcellular fate and effect on the subcellular distribution of endogenous lysosomal hydrolases was determined following intravenous administration of beta-glucuronidase entrapped in positively and negatively charged liposomes into C3H/HeJ beta-glucuronidase-deficient mice. Enzyme entrapped in negatively charged liposomes was rapidly cleared from the circulation (t1/2 approximately 4 min); maximal tissue recovery, 75% of dose, was detedtec in the liver at 1 h, was maintained fro 48 h and then gradually declined to non-detectable levels by 8 days. A similar circulatory clearance and reciprocal hepatic uptake was observed fro positively charged liposomes; however, the beta-glucuronidase was retained in murine liver for 11 days. Significant activity, 15% of dose, was found in the kidneys up to 1 and 4 days post-injection of positively and negatively charged liposomes, respectively. No activity was recovered in neural or other visceral tissues except in spleen and lungs (less than 5% of the dose). Exogenous beta-glucuronidase activity administered in negatively charged liposomes was primarily localized in the lysosomally-enriched hepatic subcellular fraction, compared to the predominantly soluble localization of exogenous activity entrapped in positively charged liposomes. Administration of negatively charged liposomes caused no detectable change in the subcellular localization of several endogenous lysosomal hydrolase activities compared to their distribution in untreated mice. In contrast, a marked but temporary translocation of these hydrolase activities into the soluble fraction was observed following the administration of positively charged liposomes, identifying possible deleterious effects on cellular physiology.

Animals

Liposomes containing chelating agents. Cellular penetration and a possible mechanism of metal removal.

Electron microscope studies were done on mouse liver, from 5 min to 8 wk after an intravenous injection of liposomes containing ethylenediaminetetraacetic acid (EDTA). Livers of mice receiving an injection of liposomes containing KCL instead of EDTA or an injection of a solution of EDTA were also examined. Liposomes were shown to be phagocytized by hepatocytes as well as by Kupffer cells within minutes after the injection. Initially, there was a close contact between the liposomal membrane and the cellular membrane, followed by an invagination of the latter and the formation of a distinct vesicle surrounding a single liposome or a cluster of several liposomes. No fusion between the liposomal membrane and the cell membrane was observed. Between 15 min and 6 h after liposome injection, the Kupffer cells were found to have an increased number of lysosomes and autophagic vacuoles. Within the latter, morphologically intact liposomes or remnants of liposomes could be seen. At 12 h after injection, a striking increase in macrophages was observed in the liver sinusoids of EDTA-liposome-injected mice, but not in those of KCl-liposome-injected mice. Within the macrophages, remnants of liposomes occasionally could be observed. However, the origin and the physiological role of these cells are unknown. In the hepatocytes, morphological changes were first observed 24 h after injection; there were large numbers of autophagic vacuoles, and some cells showed extensive areas of focal cytoplasmic degeneration. The morphology of the liver cells returned to normal about 7 days after injection. No morphological changes were observed in livers of mice receiving EDTA solution without liposomes. A possible mechanism by which the liposome-encapsulated chelating agents can successfully remove intracellular toxic metals is discussed. The use of liposomes as carriers seems to be a useful tool for intracellular delivery of chelating agents or drugs in general.

Animals

Unlocking the potential of bacteriophage-based therapeutic gene delivery in hepatocellular carcinoma.

Liver cancer, mainly hepatocellular carcinoma (HCC), remains a global health burden marked by poor prognosis with limited therapeutic efficacy, and high recurrence rates. HCC remains one of the most lethal malignancies worldwide, with limited therapeutic options and high resistance to conventional treatments. Despite low therapeutic efficacy, molecular heterogeneity, treatment resistance and high recurrence rate, hepatocellular carcinoma (HCC) is still a significant health problem worldwide. These restrictions have stimulated the research of focused methods for delivering therapeutic genetic payload into cancer cells. Bacteriophages have been gaining growing attention as an emerging delivery platform due to their genetic versatility, ease of engineering, ability to be surface modified and payload targeted. In this narrative review, the therapeutic potential of engineered bacteriophages in the context of HCC therapy is critically analyzed focusing on phage display-mediated tumor targeting, phage-mediated intracellular gene delivery, TRAIL gene delivery, and CRISPR/Cas-based therapeutic strategies. It has been previously noted in the literature that phage display can be used to attach tumor-targeting ligands to the surface of a phage, which may aid in the recognition of receptors at the tumor site and promote targeted delivery to the receptor. Therapeutic application is stunted by inefficient trafficking to the cytosol, endosomal degradation, immune recognition and clearance, vector stability, manufacturing scalability and regulatory issues. In conclusion, engineered bacteriophages are a promising and versatile tool for targeted gene delivery in HCC but more mechanistic, preclinical and translational research is needed to prove their therapeutic effectiveness and clinical usefulness for this purpose.

Humans

Potential future application with therapeutic agents.

Several new approaches to radiation therapy with radionuclides have been discussed. Iron 55 is selectively utilized in the red cell developmental cycle and in therapeutic doses, can lower marrow and circulating erythrocyte levels with much smaller degrees of effect on other cell lines. A serious complication, noted in animal studies, is the induction of neoplasma, especially osteosarcoma. Selective irradiation of the cell nucleus is possible with 125IUdR. This results in highly efficient cell killing due to the highly concentrated region of ionization. High concentrations of densely ionizing radiation in the malignant cell may also be accomplished with 211At. The use of labeled liposomes is an additional approach to the delivery of intracellular irradiation. None of these approaches is applicable for the practical treatment of human malignancy at the present time. The importance of these approaches is their value as models for future development of methods that can provide highly selective radiation to target sites.

Animals

Targeted Nanoparticle Delivery CRISPR/Cas9: overcoming biological barriers, enhancing stability, and improving therapeutic precision.

Clustered regularly interspaced short palindromic repeats (CRISPR)/CRISPR-associated protein 9 (Cas9) has emerged as a promising gene-editing platform for genetic disorders; however, its in vivo application remains limited by low delivery efficiency and biological barriers. Many CRISPR payloads fail to reach target sites due to extracellular degradation, immune clearance, and intracellular trafficking limitations. This review examines the interplay between biological barriers and nanoparticle engineering strategies for CRISPR/Cas9 delivery. A barrier-oriented engineering approach is proposed as a central framework, encompassing ligand-based surface modification for enhanced targeting and uptake, improved circulation stability via PEGylation and biomimetic coatings, and optimized payload release through endosomal escape strategies. Stimulus-responsive nanoparticle systems further enable spatiotemporal control over payload release. Nuclear targeting strategies, including optimization of nuclear localization signals (NLS) and exploitation of endogenous trafficking pathways, are highlighted as key factors for improving genome-level editing efficiency. Despite these advances, major challenges-including limited intracellular delivery efficiency, insufficient targeting precision, and safety concerns-continue to hinder clinical translation. Future directions highlight artificial intelligence-driven nanoparticle design, personalized delivery systems, and next-generation CRISPR platforms. Overall, an integrated, barrier-oriented engineering strategy is essential for advancing CRISPR/Cas9 delivery toward clinical applications, ultimately advancing global good health and well-being.

CRISPR/Cas9

Heterogeneity of oxygen delivery in normoxic and hypoxic states: a fluorometer study.

An on-line, real-time histogram display of heterogeneity of oxygen delivery to perfused and in situ organs is afforded by a flying-spot fluorometer that provides excitation for either oxidized flavoprotein of the mitochondrial space or reduced pyridine nucleotide of mitochondrial and cytosolic spaces. Emission from the two fluorochromes is acquired at 10(4) to 10(5) data points/s and histograms of the fluorescence intensity versus the number of occurrences of that intensity are displayed at 1--10 times per second. The histograms show alterations of the intensity and of the degree of heterogeneity of the redox states of perfused heart with model coronary occlusion, of perfused and in situ rat liver, and of rat and gerbil models of stroke. The percentage change of oxygen delivery to the intracellular space can be calculated from the areas under the histogram.

Brain

MET-Aberrant non-small cell lung cancer: from kinase dependence to cell-surface targetability-mechanistic basis and biomarker framework for bispecific antibodies and antibody-drug conjugates.

MET-aberrant non-small cell lung cancer (NSCLC) is not a uniform therapeutic entity. Its biology, diagnostic pathways, and treatment sensitivity differ across MET exon 14 skipping alteration (METex14), MET amplification, and MET overexpression. This heterogeneity cannot be fully explained by conventional event-based classification and is reflected in the distinct clinical activity of MET tyrosine kinase inhibitors (MET-TKIs), bispecific antibodies (BsAbs), and antibody-drug conjugates (ADCs). With the emergence of antibody-based therapies, MET has evolved from a signaling driver to a cell-surface target for receptor modulation and payload delivery. We therefore propose a clinically anchored two-dimensional framework for interpreting therapeutic relevance in MET-aberrant NSCLC: kinase dependence and cell-surface targetability. Neither dimension should be regarded as a directly measurable binary variable. Kinase dependence is inferred from genomic and treatment-contextual proxies, most strongly METex14 and, more conditionally, high-level focal MET amplification. Cell-surface targetability is approximated by drug-specific IHC assessment of assay-defined c-MET protein expression; however, receptor internalization, intracellular trafficking, and payload delivery capacity remain incompletely measurable in routine clinical practice. Within this framework, MET-TKIs have the most evidence-supported established role in tumors with evidence of MET-driven kinase dependence. EGFR × MET BsAbs have demonstrated clinical activity in broad post-osimertinib EGFR-mutant NSCLC, while EGFR/MET co-dependence or MET-mediated bypass activation provides a mechanistic rationale for their use; MET-defined preferential benefit remains to be prospectively established. MET-directed antibody-drug conjugates (MET-ADCs) are supported in drug- and assay-defined populations with high c-MET protein overexpression, although the predictive relevance of delivery-related factors remains hypothesis-generating. Accordingly, MET testing should shift from single-event detection to platform-oriented stratification: next-generation sequencing (NGS) for driver alterations and resistance profiles, fluorescence in situ hybridization (FISH) for high-level focal amplification, and immunohistochemistry (IHC) for surface expression relevant to antibody-based therapies. This framework is intended to organize current biological and clinical evidence rather than to replace drug-specific companion diagnostics, regulatory indications, or prospectively validated treatment-selection algorithms. Precision treatment of MET-aberrant NSCLC is thus moving from event-based drug selection toward mechanism-based therapeutic matching. Future priorities include standardizing biomarkers, defining optimal target populations, and aligning biological subtypes, diagnostic strategies, and therapeutic platforms.

Antibody-drug conjugate

Heavy metals and lysosomes.

Much can be gained by reassessing the processes which determine the ability of lysosomes to take up or exclude, sequester and mobilize heavy metals. To achieve a better understanding of these events, the chemical forms, intracellular pathways and modes of delivery of metals to lysosomes, as well as the specific physiologic ligands and molecular targets susceptible to metal toxicity have to be identified. None of these can be derived from measurements of metal contents of whole lysosomal fractions because the metal's "effective concentration" at a specific target site may be affected by the binding properties of the lysosomal ligand as well as by those of cation carrier proteins present in the cytosol (e.g., metallothionein), and by interactions with and competitions by other cellular organelles. Therefore, the possibility of such events diminishing or enhancing a metal's direct effect observable in in vitro systems has to be considered before extrapolating to the in vivo situation. Another pitfall to be wary of is the equation of an organelle's relative affinity for a metal in vitro with its susceptibility to the metal's toxic effects. This is evident, albeit at a tissue level rather than at that of organelles, from the discordance between the low affinity of nervous tissue for lead and this metal's pronounced encephalopathic effect. The answers to some of the questions raised in this review may possibly lead to pharmacologic applications, particularly to the development of effective agents for the removal from or the inactivation of toxic metals deposited in lysosomes. At present, considerable uncertainty exists regarding the possible interaction of therapeutic chelating agents with lysosomes in vivo. We do not know, for example, whether the contrasts between the remarkable effectiveness of penicillamine in mobilizing copper from tissues and the limited effectiveness of desferioxamine in removing excess iron stores can be accounted for by differences in accessibility of these two chelators to lysosomes. Or, alternatively, can these differences in effectiveness be related to different ligands or macromolecules interacting with each metal? At least part of the lysosomal iron is bound to ferritin molecules which may not be susceptible to the action of chelating agents after incorporation. Such speculation is not without foundation since ferritin molecules are heterogeneous. However, whether this heterogeneity, which is reflected in different organ-specific patterns of distribution (Powell et al. 1973), is the result of differing affinities of the isoferritins for specific subcellular organelles has not been established. It is conceivable that ferritin molecules present in the cytoplasm may be subtly different from those taken up by lysosomes, implying that the latter are endowed with capabilities for selection of specific macromolecules...

Animals

Incorporation of glucocerebrosidase into Gaucher's disease monocytes in vitro.

Several carriers were evaluated for use in the delivery of exogenous glucocerebrosidase to monocytes from Gaucher's disease patients. Only gamma globulin-coated, resealed erythrocytes proved to be an effective vehicle for enzyme delivery. Glucocerebrosidase added in this manner normalized intracellular enzyme levels for at least 18 hr. In this model system for the study of enzyme replacement therapy, soluble enzyme, enzyme in uncoated resealed erythrocytes, and enzyme incorporated into liposomes were ineffective.

Cells, Cultured

Indications, interpretation and applications of antibiotic assays.

Routine monitoring of serum levels is imperative when antibiotics are given to patients with impairment of renal function. Other desirable indications include: need for assessment of adequate aminoglycoside levels in the initial management of severe infection; chloramphenicol therapy; need for control of bioavailability of new drugs or of new derivatives of known compounds; specific clinical situations (unexplained therapeutic failure, assessment of the oral use of antibiotics as an adequate therapy in patient with severe infections; appraisal of the innocuity of topical antibiotics in burned patients or in patients with liver or renal insufficiency). The serum antibacterial test is highly recommended for assessing the adequency of antibiotic therapy in patients with bacterial endocarditis and in infected patients with impaired host resistance such as those with leukopenia. Control of initial treatment in any severe infection, osteomyelitis (particularly when combined antibiotics are used) and tuberculosis are other indications of this test. Any attempt to correlate the results yielded by antibiotic assays with in-vivo effectiveness must take into account the patient himself and the several unknown factors which, in each individual case, can affect the ultimate result of the antibiotic therapy, such as antibiotic delivery to tissues, drug binding to cellular debris, intracellular penetration of the antibiotic, etc.

Administration, Oral

Age-related effects on the incorporation of acetate into rat liver histones.

Incorporation of sodium [3H]acetate into histones of rats was examined as a function of age. Incorporation was observed to decline with age up to 24 months, at which time a levelling occurred. Controls indicated that this decrease in histone acetylation could not be attributed to variability in isotope delivery to the liver or to alterations in intracellular 'pools' available for acetylation. Polyacrylamide gel electrophoresis established that, in all cases, acetate was incorporated primarily into histone fractions H3 and H4 and the pattern of incorporation exhibited age-dependent phenomena. H4 was predominantly labelled in 2 months animals, while in 12, 16, and 24 months animals H3 was more highly labelled; at 27 months the two fractions were labelled equally. Assessment of histone acetylase and deacetylase activities indicates that deacetylase activity increased with age.

Acetates