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Biomedical subjects

A Hsu

Publications and source records attributed to A Hsu.

At least 37 records · Page 2Linked to original sources

Stabilization of the intermediate in frameshift mutation.

A mismatch repair, proofreading deficient mutant of Escherichia coli lost a C from a C8 run at a rate 10 times higher than the loss of A from an A8 sequence in the same double mutant. This greater frameshift instability of a homopolymeric run of C's may be due to stabilization of a stacked intermediate. Gain of a (CA) unit in a similarly constructed (CA)15 sequence occurred at a rate about 1/3 that previously reported for a (CA)14 construct losing a (CA) repeat unit.

Base Sequence↗

Induction chemotherapy followed by concurrent chemoradiotherapy in stage III unresectable non-small cell lung cancer.

The favourable experience with the combination regimen of vinorelbine, ifosfamide and cisplatin (NIP) in patients with metastatic non-small cell lung cancer (NSCLC) has led to a protocol assessing this regimen as an induction treatment in patients with stage III unresectable NSCLC, followed by thoracic radiotherapy with concurrent daily cisplatin as a radiosensitizer. Two cycles of NIP were administered 21 days apart; each cycle comprised i.v. vinorelbine 25 mg/m2 on days 1 and 8, i.v. ifosfamide 3 g/m2 on day 1 with MESNA as uroprotection, and i.v. cisplatin 50 mg/m2 on day 1. Radical thoracic radiotherapy commenced on day 43 to a total dose of 64 Gy and i.v. cisplatin 6 mg/m2 was given concurrently prior to each fraction of radiation as a sensitiser. Two more cycles of NIP were given to patients who responded favourably to the induction treatment about 2 weeks after completion of radiation. Between July 1995 and July 1997, 44 patients were treated with this protocol. This treatment schedule was generally well tolerated. Grade 3-4 neutropenia occurred in 50% of the patients and neutropenic sepsis was seen in 8. Grade 3-4 oesophagitis was uncommon. Most of the patients were able to complete the induction and concurrent chemoradiotherapy phase. Major response occurred in 75% of the patients with 2 (4.5%) complete responses (CR). A total of 6 patients achieved CR after chemoradiotherapy. At a median follow-up of 35 months, the median overall survival for all patients was 15 months with a 3-year survival rate of 24%. The median overall survival for stage IIIA patients was 19 months with a 3-year survival rate of 39% in contrast to 13 months' median overall survival and only 15% 3-year survival rate for stage IIIB. The NIP regimen results in a high response rate in NSCLC and this treatment programme seems to benefit selected patients with stage III disease.

Adult↗

A breathless lady with lumpy kidneys.

Tuberous sclerosis complex (TSC) is now known to be associated with pulmonary lymphangiomyomatosis (PLAM). Patients with either isolated PLAM or pulmonary involvement in TSC suffer from progressive respiratory failure and death within ten years of diagnosis. We report a case of TSC with PLAM, and a short review of recent literature regarding the conditions.

Adult↗

Pharmacokinetic interaction between ritonavir and didanosine when administered concurrently to HIV-infected patients.

The effect of coadministration of ritonavir and didanosine (ddI) on the pharmacokinetics of these drugs was investigated in a single-center, three-period, crossover study. Eighteen asymptomatic, HIV-positive men were assigned randomly to 6 different sequences of 3 regimens: ddI (200 mg every 12 hours) alone for 4 days, ritonavir (600 mg every 12 hours) alone for 4 days, and 4 days of ddI with ritonavir under dose-staggering conditions. Although not statistically significant, ritonavir concentrations were slightly higher on average (<10%) with concurrent administration of ddI compared with those of ritonavir alone. In contrast, ddI concentrations were lower with concurrent administration compared with those of ddI alone; maximum concentration and area under the concentration-time curve were reduced by about 15% (p < .05). The ddI elimination rate constant was unaffected by ritonavir, suggesting no change in ddI's systemic metabolism. Adverse events were similar between regimens. The relatively minor changes in ritonavir and ddI pharmacokinetics are probably not clinically relevant; therefore, dosage adjustment of either compound appears unnecessary when administered concurrently. However, the combination regimen of ddI and ritonavir continue to be evaluated clinically.

Adult↗

The effect of multiple doses of ritonavir on the pharmacokinetics of rifabutin.

OBJECTIVE: To investigate the effects of ritonavir on the pharmacokinetics of rifabutin. METHODS: In a multiple-dose, randomized, parallel-group, double-blind study, subjects received 150 mg rifabutin daily for 24 days coadministered on days 15 to 24 with twice-daily doses of either placebo or ritonavir (300 mg on day 15, 400 mg on day 16, and 500 mg on days 17 to 24). Plasma concentrations of rifabutin and 25-O-desacetylrifabutin were measured by HPLC, and the pharmacokinetics were determined after the rifabutin doses on days 14 and 24. RESULTS: For subjects receiving rifabutin and placebo who completed the study (n = 11), there were small but statistically significant differences (< or = 32%) in several rifabutin and 25-O-desacetylrifabutin pharmacokinetic parameters between the regimens of rifabutin alone and rifabutin with placebo. In contrast, the effect of ritonavir on rifabutin pharmacokinetics of subjects completing the study (n = 5) was substantial. Rifabutin mean minimum observed concentration (Cmin), maximum observed concentration (Cmax), and area under the concentration-time curve [AUC(0-24)] increased by approximately sixfold, 2.5-fold, and fourfold, respectively, and 25-O-desacetylrifabutin mean Cmin, Cmax, and AUC(0-24) increased by approximately 200-, 16-, and 35-fold, respectively, when coadministered with ritonavir compared with rifabutin administered alone. The sum of the mean AUC(0-24) of rifabutin and 25-O-desacetylrifabutin increased nearly sevenfold when coadministered with ritonavir. CONCLUSIONS: Ritonavir inhibited the metabolism of rifabutin and 25-O-desacetylrifabutin, suggesting that both are metabolized at least in part by CYP3A. Ritonavir may have enhanced rifabutin bioavailability by reducing either intestinal of hepatic metabolism of both. Clarithromycin is an alternative to rifabutin for antimycobacterial therapy that may be administered concurrently with ritonavir. Administration of ritonavir with a reduced rifabutin dosage regimen (150 mg every Monday, Wednesday, and Friday) is being investigated.

Adult↗

Pharmacokinetic interactions between two human immunodeficiency virus protease inhibitors, ritonavir and saquinavir.

OBJECTIVE: To assess the pharmacokinetic interaction between ritonavir and saquinavir. METHODS: Ritonavir and saquinavir were administered in single doses to six groups of healthy volunteers in a two-way (saquinavir alone and ritonavir plus saquinavir for groups I through V) and a three-way (ritonavir alone, saquinavir alone, and ritonavir plus saquinavir for group VI) crossover manner with the following doses: group I, 200 mg saquinavir and 300 mg ritonavir; group II, 200 mg saquinavir and 600 mg ritonavir; group III, 400 mg saquinavir and 300 mg ritonavir; group IV, 400 mg saquinavir and 600 mg ritonavir; group V; 600 mg saquinavir and 200 mg ritonavir; group VI, 600 mg saquinavir and 600 mg ritonavir. RESULTS: Coadministration of ritonavir markedly increased the area under the plasma concentration-time curve (AUC) and peak concentration of saquinavir (> 50-fold and 22-fold, respectively). For a constant ritonavir dose, the pharmacokinetics of saquinavir were relatively proportional to dose. For a constant saquinavir dose, the increase in saquinavir concentration tended to be less than proportional to ritonavir dose. Ritonavir reduced intersubject variability in the saquinavir AUC from 60% to 28%. The in vivo inhibition constant was 0.025 +/- 0.020 micrograms/ml with noncompartmental estimation and 0.0164 +/- 0.0004 micrograms/ml with nonlinear mixed-effects model compartmental analysis. Saquinavir showed no clinically significant effect on the pharmacokinetics of ritonavir (+6.4% in AUC). The regimens were well tolerated. CONCLUSIONS: The large effect of ritonavir on the pharmacokinetics of saquinavir is consistent with a large reduction of saquinavir first-pass metabolism and postabsorptive clearance. Given the limited bioavailability of saquinavir given in the hard gelatin capsule formulation, this drug interaction is expected to have implications in the use of protease inhibitors in the management of human immunodeficiency virus infection.

Adult↗

Pharmacokinetic interaction between ritonavir and clarithromycin.

BACKGROUND: Because ritonavir, a human immunodeficiency virus (HIV) protease inhibitor, and clarithromycin, a macrolide antibiotic used in the treatment of disseminated infection caused by Mycobacterium avium complex, are likely to be administered concurrently for treatment of patients with HIV and acquired immunodeficiency syndrome (AIDS), the drug interaction potential of these 2 agents was evaluated. Both clarithromycin and ritonavir are metabolized to a significant extent through cytochrome P450-mediated biotransformation and are potential inhibitors of these enzymes. OBJECTIVE: To evaluate the pharmacokinetic effects of concomitant administration of multiple doses of ritonavir and clarithromycin. METHODS: This was an open-label, randomized, 3-period crossover study. Ritonavir alone (200 mg every 8 hours), clarithromycin alone (500 mg every 12 hours), and ritonavir and clarithromycin in combination were administered to 22 healthy volunteers. Blood samples were collected on day 4 for determination of ritonavir, clarithromycin, and its metabolite 14-(R)-hydroxyclarithromycin. RESULTS: Ritonavir practically completely inhibited the formation of 14-(R)-hydroxyclarithromycin. The mean area under the plasma concentration-time curve (AUC) for clarithromycin increased by 77% with concomitant ritonavir, and the harmonic mean terminal half-life increased from 5 hours to 14 hours. Statistically significant increases in peak plasma concentration (31%) and minimum plasma concentration (182%) were also observed. The effect of concomitant clarithromycin administration on ritonavir pharmacokinetics was statistically significant but small, with a 12.5% increase in mean AUC and a 15.3% increase in peak plasma concentration. The terminal half-life increased from 3.47 to 3.87 hours with concomitant clarithromycin. CONCLUSIONS: No adjustment of the ritonavir dose is necessary when administered with clarithromycin. In addition, no changes in clarithromycin dose are warranted in patients with normal renal function.

AIDS-Related Opportunistic Infections↗

Functional architecture of primate cone and rod axons.

The cone axon is nearly four times thicker than the rod axon (1.6 vs 0.45 microns diameter). To assess how signal transfer and integration at the terminal depend on cable dimensions, a transducer (cone = ohmic conductance, rod = current source) coupled via passive cable to a sphere with a chloride conductance (representing GABAA receptor) was modelled. For a small signal in peripheral cone with a short axon, steady photosignal transfers independently of axon diameter despite a significant chloride conductance at the cone terminal. Temporally varying photosignal also transfers independently of axon diameter up to 20 Hz and is attenuated only 20% at 50 Hz. Thus, to accomplish the basic electrical functions of a peripheral cone, a thin axon would suffice. For a foveal cone with a long axon steady photosignal transfers independently of axon diameter, but temporally varying photosignal is attenuated 5-fold at 50 Hz for a thick axon and 10-fold for a thin axon. This might contribute to the lower sensitivity of central retina to high temporal frequencies. The cone axon contains 14-fold more microtubules than the rod axon, and its terminal contains at least 20-fold more ribbon synapses than the rod's. Since ribbon synapses sustain high rates of exocytosis, the additional microtubules (which require a thicker axon) may be needed to support a greater flux of synaptic vesicle components.

Animals↗

Effect of heparin on dextran sulfate sodium-induced colitis.

Heparin has been shown to ameliorate inflammatory bowel disease in several series. In addition to its anticoagulant properties, heparin has numerous other effects that may be beneficial in inflammatory bowel disease. Other sulfated polysaccharides, such as dextran sulfate, cause colitis in mice through unknown mechanisms. We postulate that dextran sulfate and heparin may act via similar pathways with opposite effects. To examine this thesis, the effect of heparin on dextran sulfate-induced colitis was studied. Swiss-Webster mice were given 5% dextran sulfate in their drinking water for five days to induce colitis. Heparin was given both therapeutically after the induction of colitis and prophylactically by subcutaneous injections, with saline injections given in controls. Histologic sections of colon were randomized and graded for colitis. Heparinized animals showed no significant difference in the pattern or severity of colitis when compared to control animals. It is concluded that heparin does not ameliorate the murine colitis induced by dextran sulfate in the doses given.

Animals↗

Effect of ritonavir on the pharmacokinetics of ethinyl oestradiol in healthy female volunteers.

AIMS: To assess the effects of the protease inhibitor ritonavir on the pharmacokinetics of ethinyl oestradiol in healthy female volunteers. METHODS: This was an open-label, single centre study in 23 subjects who received two single doses of oral contraceptive containing 50 microg ethinyl oestradiol on Day 1 (alone) and on Day 29 during concomitant ritonavir. Each subject received 16 days of every 12 h doses of ritonavir from Day 15 through Day 30. Blood samples were collected for serum ethinyl oestradiol concentrations for 48 h after each dose and for plasma ritonavir on Day 29 at 0 and 4 h postdose. RESULTS: Statistically significant decreases in ethinyl oestradiol mean Cmax (-32%) and mean AUC (-41%), and a statistically significant increase in the mean terminal elimination rate constant (+31%) were observed during concomitant ritonavir. The harmonic mean terminal half-life decreased from 17 h to 13 h during concomitant ritonavir. No statistically significant change was noted in tmax. The ratios of means (95% confidence intervals) for Cmax and AUC were 0.682 (0.612-0.758) and 0.595 (0.506-0.694), respectively. The changes in ethinyl oestradiol pharmacokinetics were consistent with an increase in clearance from enzymatic induction of glucuronidation and/or cytochrome P450 hydroxylation. Mean steady-state ritonavir concentrations of 6.5 and 13.4 microg ml(-1) were observed at 0 and 4 h postdose, respectively. CONCLUSIONS: Considering the extent of the decrease in ethinyl oestradiol concentrations, the use of alternate contraceptive measures should be considered when ritonavir is being administered.

Adult↗

Protein nitration in Parkinson's disease.

Oxidative stress has been proposed as a pathogenetic mechanism in Parkinson's disease (PD). One mechanism of oxidative cellular injury is the nitration of protein tyrosine residues, mediated by peroxynitrite, a reaction product of nitric oxide and superoxide radicals. We demonstrate here the presence of nitrotyrosine immunoreactivity in Lewy bodies within melanized neurons and in amorphous deposits associated with intact and degenerating neurons. The core of the Lewy body was frequently intensely immunolabeled, while the rim was lightly labeled or unlabeled. This likely reflects the fact that tyrosine residues of neurofilament proteins are primarily localized to Lewy body cores, and suggests that nitrotyrosine is present in neurofilament protein itself. Although these observations are as yet unable to provide a definitive link between oxidative stress and neuronal dysfunction, they demonstrate that oxidative stress has occurred within the vulnerable neurons of PD, leaving a permanent marker of oxidative modification of neuronal proteins within the target cells of neurodegeneration. In addition, these observations provide a potential link between excitotoxicity and oxidative stress within the vulnerable neurons of PD and represent a pathogenetic mechanism in common with the 2 other major age-related neurodegenerative diseases, Alzheimer disease and amyotrophic lateral sclerosis.

Adult↗

Pharmacokinetic interaction between ritonavir and indinavir in healthy volunteers.

The pharmacokinetic interaction between indinavir and ritonavir was evaluated in five groups of healthy adult volunteers to explore the potential for twice-daily (b.i.d.) dosing of this combination. All subjects received 800 mg of indinavir every 8 h (q8h) on day 2. In addition, subjects in group I received one dose of 800 mg of indinavir on day 1 and 800 mg of indinavir q8h on day 17. Subjects in Groups II and IV each received one dose of 600 mg of indinavir on days 1 and 17, and subjects in groups III and V each received one dose of 400 mg of indinavir on days 1 and 17. During days 3 to 17, ritonavir placebo or ritonavir at 200, 300, 300, or 400 mg q12h was given to groups I, II, III, IV, and V, respectively. Ritonavir at steady state probably inhibited the cytochrome P-450 3A metabolism of indinavir and substantially increased plasma indinavir concentrations, with the area under the plasma concentration-time curve (AUC) increasing up to 475% and the peak concentration in serum (Cmax) increasing up to 110%. The Cmax/trough concentration ratio decreased from 50 in standard q8h regimens to less than 14 when indinavir was administered with ritonavir. For a constant indinavir dose, an increase in the ritonavir dose yielded similar indinavir AUCs, Cmaxs, and concentrations at 12 h (C12s). For a constant ritonavir dose, an increase in the indinavir dose resulted in approximately proportional increases in the indinavir AUC, less than proportional increases in Cmax, and slightly more than proportional increases in C12. Ritonavir reduced between-subject variability in the indinavir AUC and trough concentrations and did not affect indinavir renal clearance. With the altered pharmacokinetic profile, indinavir likely could be given as a b.i.d. combination regimen with ritonavir. This could potentially improve patient compliance and thereby reduce treatment failures.

Adolescent↗

Effect of fluoxetine on pharmacokinetics of ritonavir.

The potential interaction between fluoxetine, a known inhibitor of cytochrome P-450 isoform 2D6 (CYP2D6), and ritonavir, a human immunodeficiency virus type 1 protease inhibitor, was evaluated in this open-label study. Sixteen male and female subjects ranging in age from 18 to 40 years completed the study. Subjects received single doses of 600 mg of ritonavir on days 1 and 10. On study days 3 to 10, all subjects received 30 mg of fluoxetine every 12 h for a total of 16 consecutive doses. Serial blood samples for determination of ritonavir concentrations in plasma were collected after the administration of ritonavir on days 1 and 10. A limited number of blood samples for determination of fluoxetine and norfluoxetine concentrations were collected after administration of the morning dose on day 10. A statistically significant increase (19%) in the ritonavir area under the concentration-time curve (AUC) was observed with concomitant fluoxetine administration, with individual changes ranging from -12 to +56%. The change in the ritonavir AUC with concomitant fluoxetine administration was positively correlated with the norfluoxetine 24-h AUC (AUC24) (r2 = 0.42), the norfluoxetine/fluoxetine AUC24 ratio (r2 = 0.53), and the fluoxetine elimination rate constant (r2 = 0.65), with larger increases in the ritonavir AUC tending to occur with higher norfluoxetine concentrations and higher fluoxetine elimination rate constants. The effect of fluoxetine appeared to be larger in subjects with the CYP2D6 wt/wt genotype. There was little or no effect on the time to maximum drug concentration (Cmax) in serum, Cmax, and the elimination rate constant of ritonavir with concomitant fluoxetine administration. Considering the magnitude of the change observed, no ritonavir dose adjustment is recommended during concomitant fluoxetine administration.

Adolescent↗

ABT-378, a highly potent inhibitor of the human immunodeficiency virus protease.

The valine at position 82 (Val 82) in the active site of the human immunodeficiency virus (HIV) protease mutates in response to therapy with the protease inhibitor ritonavir. By using the X-ray crystal structure of the complex of HIV protease and ritonavir, the potent protease inhibitor ABT-378, which has a diminished interaction with Val 82, was designed. ABT-378 potently inhibited wild-type and mutant HIV protease (Ki = 1.3 to 3.6 pM), blocked the replication of laboratory and clinical strains of HIV type 1 (50% effective concentration [EC50], 0.006 to 0.017 microM), and maintained high potency against mutant HIV selected by ritonavir in vivo (EC50, </=0. 06 microM). The metabolism of ABT-378 was strongly inhibited by ritonavir in vitro. Consequently, following concomitant oral administration of ABT-378 and ritonavir, the concentrations of ABT-378 in rat, dog, and monkey plasma exceeded the in vitro antiviral EC50 in the presence of human serum by >50-fold after 8 h. In healthy human volunteers, coadministration of a single 400-mg dose of ABT-378 with 50 mg of ritonavir enhanced the area under the concentration curve of ABT-378 in plasma by 77-fold over that observed after dosing with ABT-378 alone, and mean concentrations of ABT-378 exceeded the EC50 for >24 h. These results demonstrate the potential utility of ABT-378 as a therapeutic intervention against AIDS.

Animals↗

Multidose pharmacokinetics of ritonavir and zidovudine in human immunodeficiency virus-infected patients.

The effect of coadministration of ritonavir and zidovudine (ZDV) on the pharmacokinetics of these drugs was investigated in a three-period, multidose, crossover study. Eighteen asymptomatic, human immunodeficiency virus-positive men were assigned randomly to six different sequences of the following three regimens: ZDV (200 mg every 8 h [q8h] alone for 4 days, ritonavir (300 mg q6h) alone for 4 days, and ZDV with ritonavir for 4 days. Ritonavir pharmacokinetics were unaffected by coadministration with ZDV. However, ZDV exposure was reduced by about 26% (P < 0.05) in the presence of ritonavir. The maximum concentration in (Cmax) of ZDV plasma decreased from 748 +/- 375 (mean +/- standard deviation) to 546 +/- 296, and area under the concentration-time curve from 0 to 24 h (AUC0-24) decreased from 3,052 +/- 1,007 to 2,261 +/- 715 when coadministered with ritonavir. In contrast, the ZDV elimination rate constant was unaffected by ritonavir, suggesting that there was no change in ZDV systemic metabolism. Correspondingly, differences in ZDV-glucuronide Cmax and AUC were not statistically significantly different between regimens (P > 0.31). Also, there were no apparent differences in the formation of 3'-amino-3'-deoxythymidine or in the adverse event profiles between the regimens. The lack of change in ritonavir pharmacokinetics suggests that dosage adjustment of ritonavir is unnecessary when it is administered concurrently with ZDV. The clinical relevance of a 26% reduction in ZDV exposure when ZDV is administered with ritonavir is unknown. In addition to other multidrug regimens, the long-term safety and efficacy of coadministration of ritonavir and ZDV is being investigated.

Acquired Immunodeficiency Syndrome↗

A phase I/II study of the protease inhibitor ritonavir in children with human immunodeficiency virus infection.

BACKGROUND: Ritonavir, a potent antiretroviral protease inhibitor, has been approved for the treatment of adults and children with human immunodeficiency virus (HIV) infection. In a phase I/II study, we assessed the safety, tolerability, and pharmacokinetic profile of the oral solution of ritonavir in HIV-infected children and studied the preliminary antiviral and clinical effects. METHODS: HIV-infected children between 6 months and 18 years of age were eligible. Four dose levels of ritonavir oral solution (250, 300, 350, and 400 mg/m given every 12 hours) were evaluated in two age groups (</=2 years, >2 years). Ritonavir was administered alone for the first 12 weeks and then in combination with zidovudine and/or didanosine. Clinical and laboratory parameters were monitored every 2 to 4 weeks. RESULTS: A total of 48 children (median age, 7.7 years; range, 0.5 to 14.4 years) were included in this analysis. Dose-related nausea, diarrhea, and abdominal pain were the most common toxicities and resulted in discontinuation of ritonavir in 7 children. Ritonavir was well absorbed at all dose levels, and plasma concentrations reached a peak 2 to 4 hours after a dose. CD4 cells counts increased by a median of 79 cells/mm3 after 4 weeks of monotherapy and were maintained throughout the study. Plasma HIV RNA decreased by 1 to 2 log10 copies/mL within 4 to 8 weeks of ritonavir monotherapy, and this level was sustained in patients enrolled at the highest dose level of 400 mg/m for the 24-week period. CONCLUSIONS: The oral solution of ritonavir has potent antiretroviral activity as a single agent and is relatively well tolerated by children when administered alone or in combination with zidovudine or didanosine.

Administration, Oral↗

Ritonavir. Clinical pharmacokinetics and interactions with other anti-HIV agents.

Ritonavir is 1 of the 4 potent synthetic HIV protease inhibitors, approved by the US Food and Drug Administration (FDA) between 1995 and 1997, that have revolutionised HIV therapy. The extent of oral absorption is high and is not affected by food. Within the clinical concentration range, ritonavir is approximately 98 to 99% bound to plasma proteins, including albumin and alpha 1-acid glycoprotein. Cerebrospinal fluid (CSF) drug concentrations are low in relation to total plasma concentration. However, parallel decreases in the viral burden have been observed in the plasma, CSF and other tissues. Ritonavir is primarily metabolised by cytochrome P450 (CYP) 3A isozymes and, to a lesser extent, by CYP2D6. Four major oxidative metabolites have been identified in humans, but are unlikely to contribute to the antiviral effect. About 34% and 3.5% of a 600 mg dose is excreted as unchanged drug in the faeces and urine, respectively. The clinically relevant t1/2 beta is about 3 to 5 hours. Because of autoinduction, plasma concentrations generally reach steady state 2 weeks after the start of administration. The pharmacokinetics of ritonavir are relatively linear after multiple doses, with apparent oral clearance averaging 7 to 9 L/h. In vitro, ritonavir is a potent inhibitor of CYP3A. In vivo, ritonavir significantly increases the AUC of drugs primarily eliminated by CYP3A metabolism (e.g. clarithromycin, ketoconazole, rifabutin, and other HIV protease inhibitors, including indinavir, saquinavir and nelfinavir) with effects ranging from an increase of 77% to 20-fold in humans. It also inhibits CYP2D6-mediated metabolism, but to a significantly lesser extent (145% increase in desipramine AUC). Since ritonavir is also an inducer of several metabolising enzymes [CYP1A4, glucuronosyl transferase (GT), and possibly CYP2C9 and CYP2C19], the magnitude of drug interactions is difficult to predict, particularly for drugs that are metabolised by multiple enzymes or have low intrinsic clearance by CYP3A. For example, the AUC of CYP3A substrate methadone was slightly decreased and alprazolam was unaffected. Ritonavir is minimally affected by other CYP3A inhibitors, including ketoconazole. Rifampicin (rifampin), a potent CYP3A inducer, decreased the AUC of ritonavir by only 35%. The degree and duration of suppression of HIV replication is significantly correlated with the plasma concentrations. Thus, the large increase in the plasma concentrations of other protease inhibitors when coadministered with ritonavir forms the basis of rational dual protease inhibitor regimens, providing patients with 2 potent drugs at significantly reduced doses and less frequent dosage intervals. Combination treatment of ritonavir with saquinavir and indinavir results in potent and sustained clinical activity. Other important factors with combination regimens include reduced interpatient variability for high clearance agents, and elimination of the food effect on the bioavailibility of indinavir.

Animals↗

Are patellofemoral pain and quadriceps femoris muscle torque associated with locomotor function?

BACKGROUND AND PURPOSE: The purpose of this investigation was to determine the influence of pain and muscle weakness on gait variables in subjects with patellofemoral pain (PFP). SUBJECTS: Nineteen female subjects with a diagnosis of PFP and 19 female subjects without PFP participated in the study. METHODS: Subjects underwent gait analysis (stride characteristics and joint motion) during level walking, ascending and descending stairs, and ascending and descending ramps, in addition to isometric torque testing of the knee extensors of the involved limb. Pain and functional status also were assessed. RESULTS: Compared with the comparison group, the primary gait compensation in the PFP group was a reduced walking speed, which was a function of both a reduced stride length and cadence. Knee extensor torque was the only predictor of gait function, with increased torque correlating with improved stride characteristics. In addition, PFP was not associated with locomotor function. CONCLUSION AND DISCUSSION: These findings suggest that functional ability in persons with PFP is associated with increased quadriceps femoris muscle torque. Future research is needed to determine whether function improves with quadriceps femoris muscle strengthening.

Adolescent↗