OBJECTIVES To investigate ceftolozane/tazobactam pharmacokinetics (PK) in plasma and interstitial space fluid (ISF) of muscle and subcutaneous tissue and establish a population PK model. METHODS Eight healthy volunteers received four IV doses of 1000/500 mg ceftolozane/tazobactam q8h in a prospective, open-labelled PK study. ISF concentration-time profiles were determined via in vivo microdialysis up to 8 h post-dose and efficacy of unbound ceftolozane and tazobactam was estimated using the time above MIC (%ƒT>MIC) and time above threshold concentration (%T>CT), respectively. A population PK model was established by merging derived plasma and soft tissue PK data. RESULTS Ceftolozane reached %ƒT>MIC values of 100% in plasma, muscle and subcutaneous ISF for Enterobacteriaceae and 87%, 89% and 87%, respectively, for Pseudomonas aeruginosa. Tazobactam %T>CT was 21%, 22% and 21% in plasma, muscle and subcutaneous ISF, respectively. Plasma protein binding was 6.3% for ceftolozane and 8.0% for tazobactam. Multiple-dose ceftolozane AUC0-8 ISF/plasma ratios were 0.92 ± 0.17 in muscle and 0.88 ± 0.18 in subcutis, and tazobactam ratios were 0.89 ± 0.25 in muscle and 0.87 ± 0.21 in subcutis, suggesting substantial soft tissue penetration. CONCLUSIONS Tazobactam %T>CT values were distinctly below proposed target values, indicating that tazobactam might be underdosed in the investigated drug combination. However, ISF/unbound plasma ratios of ceftolozane and tazobactam support their use in soft tissue infections. A plasma and soft tissue PK model adds important information on the PK profile of ceftolozane/tazobactam. Further investigations in patients suffering from wound infections are needed to confirm these findings.
The previously described anti‐endotoxin effect of colistin has not been investigated in humans yet. We performed a randomized, double‐blind, placebo‐controlled crossover trial to determine the degree of colistin‐driven modulation of inflammatory response in blood of lipopolysaccharide (LPS)‐challenged healthy volunteers in a human endotoxemia model. After a single intravenous dose of 2.5 million IU colistin methanesulfonate, interleukin (IL)‐6, IL‐8, tumor necrosis factor alpha (TNF‐α), and IL‐1β concentrations as well as other biomarkers of inflammation such as C‐reactive protein, differential leukocyte counts, and body temperature were measured up to 24 h postdose. Colistin significantly decreased the inflammatory cytokine response to LPS in blood of healthy volunteers. This effect was most evident for IL‐6, IL‐8, and TNF‐α. This study is the first to confirm the anti‐endotoxin effect of colistin in humans in vivo. Further studies might increase our knowledge on the interaction between colistin and the effectors of the immune system.
Ziel dieser Studie war die Untersuchung pharmakokinetischer Besonderheiten der Iontophorese als Beitrag zur physikalisch-medizinischen Grundlagenforschung.
ABSTRACT Although azithromycin is extensively used in the treatment of respiratory tract infections as well as skin and skin-related infections, pharmacokinetics of azithromycin in extracellular space fluid of soft tissues, i.e., one of its therapeutic target sites, are not yet fully elucidated. In this study, azithromycin concentration-time profiles in extracellular space of muscle and subcutaneous adipose tissue, but also in plasma and white blood cells, were determined at days 1 and 3 of treatment as well as 2 and 7 days after the end of treatment. Of all compartments, azithromycin concentrations were highest in white blood cells, attesting for intracellular accumulation. However, azithromycin concentrations in both soft tissues were markedly lower than in plasma both during and after treatment. Calculation of the area under the concentration-time curve from 0 to 24 h (AUC 0–24 )/MIC 90 ratios for selected pathogens suggests that azithromycin concentrations measured in the present study are subinhibitory at all time points in both soft tissues and at the large majority of observed time points in plasma. Hence, it might be speculated that azithromycin's clinical efficacy relies not only on elevated intracellular concentrations but possibly also on its known pleotropic effects, including immunomodulation and influence on bacterial virulence factors. However, prolonged subinhibitory azithromycin concentrations at the target site, as observed in the present study, might favor the emergence of bacterial resistance and should therefore be considered with concern. In conclusion, this study has added important information to the pharmacokinetic profile of the widely used antibiotic drug azithromycin and evidentiates the need for further research on its potential for induction of bacterial resistance.
The transversus abdominis plane (TAP) block is a regional anesthetic technique used for pain control following abdominal surgical procedures. While a minimum of systemic side effects is usually expected after local anesthesia, it is unknown to which extent systemic absorption and redistribution to the abdominal wall contributes to the effects of anesthetics. The aim of this study was to determine concentration–time profiles of ropivacaine after the injection of 150 mg of ropivacaine into the lateral abdominal wall in various compartments.
For macrolides, clinical activity but also the development of bacterial resistance has been attributed to prolonged therapeutic and subtherapeutic concentrations. Although erythromycin is a long-established antimicrobial, concomitant determination of the pharmacokinetics of erythromycin and its metabolites in different compartments is limited. To better characterize the pharmacokinetics of erythromycin and its anhydrometabolite (anhydroerythromycin [AHE]) in different compartments during and after the end of treatment with 500 mg of erythromycin four times daily, concentration-time profiles were determined in plasma, interstitial space of muscle and subcutaneous adipose tissue, and white blood cells (WBCs) at days 1 and 3 of treatment and 2 and 7 days after end of therapy. In WBCs, concentrations of erythromycin exceeded those in plasma approximately 40-fold, while free concentrations in plasma and tissue were comparable. The observed delay of peak concentrations in tissue might be caused by fast initial cellular uptake. Two days after the end of treatment, subinhibitory concentrations were observed in plasma and interstitial space of both soft tissues, while 7 days after the end of treatment, erythromycin was not detectable in any compartment. This relatively short period of subinhibitory concentrations may be advantageous compared to other macrolides. The ratio of erythromycin over AHE on day 1 was highest in plasma (2.81 ± 3.45) and lowest in WBCs (0.27 ± 0.22). While the ratio remained constant between single dose and steady state, after the end of treatment the concentration of AHE declined more slowly than that of the parent compound, indicating the importance of the metabolite for the prolonged drug interaction of erythromycin.
Ralfinamide is an α-aminoamide derivative with ion channel blocking properties, acting both peripherally and centrally through different molecular targets important in pain control. Absorption, blood and plasma time courses, and urinary and faecal excretion of total radioactivity were assessed in 6 male healthy volunteers administered a single oral dose of 320 mg 14C-(S)-ralfinamide. Pharmacokinetics of the parent drug were investigated over 120 h, urinary and plasma metabolites up to 192 h post-dose. 14C-(S)-ralfinamide was rapidly and completely absorbed. Ralfinamide and the dealkylated ralfinamide metabolite (NW-1716) represented the majority of plasma radioactivity. Plasma elimination of the parent compound occurred mono-exponentially (half-life approx. 15 h). 14C-radioactivity was eliminated in a bi-phasic manner (terminal half-life of 60 and 24 h for plasma and whole blood, respectively). Plasma-concentrations of unchanged ralfinamide were significantly lower than radioactivity concentrations, indicating metabolism of the parent compound. At 192 h post-dose the total balance of radioactivity was almost complete (95%). The main route of excretion was via the kidneys (94% of the dose). Major metabolites identified in urine and plasma were the N-dealkylated acid of ralfinamide and deaminated ralfinamide acid (NW-1799). Other metabolites, in particular the product of glucuronide conjugation N-dealkylated-β-glucuronide, were identified.
This is the first study where an ED(99) volume of local anaesthetic for sciatic nerve block has been evaluated. The resulting local anaesthetic volume of 0.10 ml mm(-2) cross-sectional nerve area seems to have no impact on sensory onset time, whereas the duration of sensory block is shorter.
Chunshan Gui, Kansas City, Kans., USA K. Gyires, Budapest, Hungary Hantz Hercule, Tallahassee, Fla., USA Noriyasu Hirasawa, Sendai, Japan Andrea Hoffmann, Braunschweig, Germany Sung-Hyeok Hong, Bethesda, Md., USA Yongcheng Huang, Dallas, Tex., USA Tracey Ignatowski, Buffalo, N.Y., USA Magnus Ingelman-Sundberg, Stockholm, Sweden Susie Ingram, Vancouver, B.C., Canada Nobuhiko Ishizuka, Shizuoka, Japan Kaichiro Kamiya, Nagoya, Japan Ko-Ichi Kawahara, Kagoshima, Japan Christopher G. Kevil, Los Angeles, Calif., USA Koichiro Kuwahara, Kyoto, Japan M.S. Lennard, Sheffield, UK Qiang Lu, Buffalo, N.Y., USA Roberto Lupi, Pisa, Italy Robert H. Lyles, Atlanta, Ga., USA Christopher J. Lynch, Hershey, Pa., USA F. Markwardt, Halle, Germany Lisbeth Marner, Copenhagen, Denmark Francesco Mazzini, Perugia, Italy Hiroyuki Mizuguchi, Tokushima, Japan Irena Mlinaric-Rascan, Ljubljana, Slovenia Hasan Mukhtar, Madison, Wisc., USA Silvio Naviglio, Naples, Italy T.D. Oberley, Madison, Wisc., USA G.W. Pasternak, New York, N.Y., USA B.B. Aggarwal, Houston, Tex., USA Muzamil Ahmad, Pittsburgh, Pa., USA Y.M. Al Suleimani, Maskat, Oman Decio Armanini, Padua, Italy Corinne Aubel, Clermont-Ferrand, France Zoltan Balajthy, Debrecen, Hungary Wolfgang Bäumer, Hannover, Germany Paulo S.L. Beirao, Belo Horizonte, Brazil Ilaria Bellezza, Perugia, Italy S. Benoff, Manhasset, N.Y., USA Sandor Benyhe, Szeged, Hungary Joel Bockaert, Montpellier, France William Dalby Brown, Ballerup, Denmark B.J. Canning, Baltimore, Md., USA N.C. Chang, Taipei, Taiwan P. Clave, Mataro, Spain Ralph Clinckers, Brussels, Belgium Michael Cole, Newcastle upon Tyne, UK A.K. Daly, Newcastle upon Tyne, UK Ana Paula Dantas, Barcelona, Spain A. Darszon, Cuernavaca, Mexico Claude Delcayre, Paris, France Oscar E. Della-Pasqua, Leiden, The Netherlands Paul C. Dolber, Durham, N.C., USA Robin P.F. Dullaart, Groningen, The Netherlands John Ellis, Hershey, Pa., USA Gilles Faury, Grenoble, France Gong Feng, Evanston, Ill., USA Andrea Gaedigk, Kansas City, Kans., USA P. Gerner, Boston, Mass., USA
Heat shock protein 32 (Hsp32), also known as heme oxygenase-1 (HO-1), is a stress-related anti-apoptotic molecule, that has been implicated in enhanced survival of neoplastic cells and in drug-resistance. We here show that Hsp32 is expressed in most solid tumors and hematopoietic neoplasms and may be employed as a new therapeutic target as evidenced by experiments using specific siRNA and a Hsp32-targeting pharmacologic inhibitor. This Hsp-32 targeting drug, SMA-ZnPP, was found to inhibit the proliferation of neoplastic cells with IC(50) values ranging between 1 and 50 microM. In addition, SMA-ZnPP induced apoptosis in all neoplastic cells examined. Furthermore, SMA-ZnPP was found to synergize with other targeted and conventional drugs in producing growth-inhibition. Resulting synergistic effects were observed in all tumor and leukemia cells examined. Interestingly, several of the drug partners, when applied as single agents, induced the expression of Hsp32 in neoplastic cells, suggesting that synergistic effects resulted from SMA-ZnPP-induced ablation of a Hsp32-mediated survival-pathway that is otherwise used by tumor cells to escape drug-induced apoptosis. Together, Hsp32 is an important survival factor and target in solid tumors and hematopoietic neoplasms, and may be used to optimize anticancer therapy by combining conventional or targeted drugs with Hsp32-inhibitors. Based on these data, it seems desirable to explore the value of Hsp32-targeting drugs as anti-cancer agents in clinical trials.
14122 Background: Heat shock protein 32 (Hsp32) is a stress-related survival factor that is overexpressed in various neoplastic cells. Recently, specific Hsp32- targeting drugs such as styrene maleic acid encapsulated zinc protoporphyrin (SMA-ZnPP) have been developed. Methods: We examined the effects of SMA-ZnPP on proliferation and survival of various tumor cell-lines, including U97MG (glioblastoma), A549 (lung cancer), MDA-MB-231 (breast cancer), BxPC-3 (pancreatic), HepG2 (hepatocellular), Colo201, Colo320DM, DLD-1 (colon), OvCar3 (ovarian carcinoma), KG1, U937, HL60, K562 (myeloid leukemias), RAJI, NALM-6 (lymphatic leukemias), RPMI 8226, U266 (multiple myeloma) as well as on primary neoplastic cells. Moreover, Ba/F3 cells with doxycycline-inducible expression of oncoproteins (RAS-G12V, BCR/ABL, KIT-D816V) were analyzed. Expression of Hsp32 mRNA was examined by RT-PCR and Northern blotting, and expression of the Hsp32 protein by Western blotting. To silence Hsp32 in neoplastic cells, we used specific siRNA as well as SMA-ZnPP. Proliferation was analyzed by 3H-thymidine uptake and apoptosis by light microscopy. Results: All neoplastic cells tested were found to express Hsp32 mRNA and the Hsp32 protein in a constitutive manner. In Ba/F3 cells, induction of RAS-G12V, BCR/ABL, or KIT D816V enhanced the expression of Hsp32. The Hsp32 siRNA was found to lead to a reduced viability and induction of apoptosis. Treatment of malignant cells with SMA-ZnPP resulted in a significant decrease in proliferation and induction of apoptosis. The effects of SMA- ZnPP on primary neoplastic cells and cell lines were dose-dependent and occurred at pharmacologic concentrations (IC50 1–30 μM). Moreover, SMA-ZnPP was found to synergize with various anti-neoplastic drugs (cisplatin, cytarabine, tyrosine kinase inhibitors, bortezomib) in producing growth-inhibition in neoplastic cells. Conclusions: The Hsp32-targeting drug SMA-ZnPP counteracts malignant cell growth and sensitizes neoplastic cells against various other targeted or conventional antineoplastic drugs. Hsp32-targeting drugs may represent an interesting new aproach to inhibit malignant cell growth in solid tumors and leukemias. No significant financial relationships to disclose.
Composition of Indian Russell's viper (Daboia russelii russelii) venom, a medically important snake and member of “Big Four” snakes of India was done by gel filtration chromatography followed by tandem mass spectrometry. The MS/MS analyses of tryptic digested gel filtration peaks divulged the presence of 63 different proteins belonging to 12 families. Phospholipase A2 (PLA2), serine proteases, metalloproteases, cysteine-rich secretory proteins, l-amino acid oxidase, C-type lectin-like proteins, kunitz-type serine protease inhibitor, disintegrin, nucleotidase, phosphodiesterase, vascular endothelial growth factor and vascular nerve growth factor families were identified. PLA2 enzymes with isoforms of N-, S- and H-type based on their first N-terminal amino acid residue were observed. The venom is also found to be rich in RVV-X, RVV-V and thrombin-like enzymes. Homologues of disintegrins with RGD and RTS motifs were also observed. The high percentage of PLA2 and proteases in the venom proteome could be responsible for the observed coagulopathy, haemorrhage and edema which can be correlated with the clinical manifestations of Russell's viper envenomation. This is the first proteomic analysis of Indian D. russelii venom which might assist in understanding the pathophysiological effects of viper envenomation. Such study will also be important for developing more effective antivenom for viper bite management.
BACKGROUND:Mesalazine (5-aminosalicylic acid, 5-ASA) containing formulations represent a cornerstone in the treatment of inflammatory bowel diseases. A novel formulation with an Eudragit L/S mixture coating has been developed to provide selective release of 5-ASA to the ileo-caecal region and the colon.AIM:To determine the release of 5-ASA during the gastrointestinal transit.METHODS:A single oral dose of mesalazine EC 500 mg gastroresistant tablets (Asamax) was administered to eight healthy male volunteers. Gastrointestinal transit and tablet disintegration were monitored by scintigraphy. 5-ASA release was verified by assessing plasma pharmacokinetics.RESULTS:Initial tablet disintegration was observed 5.65 +/- 0.86 h after dosing, corresponding to the detection of 5-ASA in plasma. This occurred in the ileo-caecal region in three subjects and the ascending colon in the remaining five. The relative percentage of 5-ASA absorption was more pronounced in the ascending colon (41 +/- 27.4%) than the ileo-caecal region (6.6 +/- 9.2%).CONCLUSION:This mesalazine EC gastroresistant tablets release locally active 5-ASA specifically in the ileo-caecal region and the ascending colon.
OBJECTIVE It is unclear at the present time whether hydroxy-methylglutaryl coenzyme A reductase inhibitors (HMG-CoA reductase inhibitors; statins) exert a protective effect on low-density lipoproteins (LDL) oxidation in vivo. In addition, it is speculated that pharmacological differences between statins may account for differences in their antioxidative capacities. This is of clinical relevance, because there is strong evidence that oxidized LDL initiates the atherosclerosis process. MATERIAL AND METHODS In a controlled, randomized, double-blind study we compared the effects of three different statins (simvastatin, pravastatin and atorvastatin) on the ability to protect LDL from oxidation in 70 hypercholesterolemic but otherwise healthy subjects. Statins were administered in doses which were nearly equi-effective in lowering LDL-cholesterol. Changes in LDL oxidation were measured using diene conjugation (DIENES) and thiobarbituric acid reactive substances (TBARS) at entry and three months after beginning therapy with the statins. RESULTS Levels of DIENES, usually generated during the early phases of lipid peroxidation, were significantly reduced by 10.2 +/- 5.5% (mean +/- SEM; p < 0.03), 6.0 +/- 2.0% (p < 0.005) versus baseline in the case of pravastatin and atorvastatin but simvastatin had no significant effect with a mean reduction of 5.5 +/- 6.4% (p > 0.23). Levels of TBARS, reflecting late phases of LDL oxidation, showed no significant changes against baseline (p > 0.34). Pooled data (n = 70) indicated that statins reduce DIENES levels by approximately 9% versus baseline (p < 0.005) but had no significant effect on TBARS levels (p > 0.29) after three months of therapy. CONCLUSION This study showed that atorvastatin and pravastatin were capable of protecting LDL from oxidation in vivo in the early treatment phase. Pooled data levels of DIENES were significantly affected by statin therapy over a period of 3 months. No protective effect appeared to be present in the late phases of oxidation evaluated using measurement of TBARS but it should be noted that the clinical impact of such observations are currently discussed controversially in the literature.