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Thymidine analog and multinucleoside resistance mutations are associated with decreased phenotypic susceptibility to stavudine in HIV type 1 isolated from zidovudine-naive patients experiencing viremia on stavudine-containing regimens.

Studies have demonstrated that HIV-1 isolated from subjects experiencing virologic failure on stavudine (d4T)-containing regimens often contains thymidine analog mutations (TAMs), consisting of reverse transcriptase (RT) mutations M41L, D67N, K70R, L210W, T215Y/F, and K219Q/E, previously associated only with zidovudine (ZDV) resistance. In clinical study NZT40012, HIV-1 was isolated from 86 ZDV-naive subjects experiencing viremia on d4T-based therapies (plasma HIV-1 RNA > or =1000 copies/ml) and analyzed to examine the association between RT mutations and phenotypic resistance to d4T. Resistance-associated mutations were analyzed from HIV-1 isolated from 85 subjects. Of these, 24 samples (28%) had TAMs, and 30 samples (35%) had either TAMs and/or the Q151M multinucleoside resistance (MNR) mutation. Phenotypic susceptibility to d4T was determined by two commercially available methods. Statistically significant increases (p < 0.001) in phenotypic fold resistance to d4T were observed in virus with at least one TAM or MNR mutation. However, the mean increases in phenotypic resistance were 4-fold for the Antivirogram assay and 3-fold for the Phenosense HIV assay, only slightly above the levels used to designate decreased susceptibility to d4T. Subjects can experience viremia on d4T-containing regimens with virus exhibiting only small increases in IC(50), suggesting that relatively small changes in viral susceptibility to d4T may influence drug efficacy.

Anti-HIV Agents↗

Stavudine: an update of its use in the treatment of HIV infection.

UNLABELLED: Stavudine is a thymidine nucleoside analogue which is phosphorylated intracellularly to an active metabolite, stavudine 5'-triphosphate. This metabolite inhibits HIV replication, either by competing with thymidine 5'-triphosphate for incorporation into viral DNA by reverse transcriptase or by causing premature termination of the viral chain after incorporation. Resistance to stavudine, either alone or as part of resistance to multiple nucleoside reverse transcriptase inhibitors, has been reported; however, high-level resistance is uncommon even after long periods of treatment. Initial treatment with stavudine-containing triple therapies reduced HIV RNA levels to below the limit of detection (LOD; 500 copies/ml) in 68 to 100% of antiretroviral-naive patients after at least 20 weeks of treatment. Effects on clinical outcomes have not yet been established, although earlier trials showed significant improvements with stavudine (alone or with 1 other drug) in patients who had previously received zidovudine. Results from 2 randomised nonblind clinical trials indicated that the efficacy of stavudine-containing triple therapy was similar to that of zidovudine-containing triple therapy (when used in combination with the same drugs), although there were no statistical comparisons. Improvements in surrogate end-points have also been seen in trials in antiretroviral-experienced patients receiving stavudine and 2 or 3 other antiretroviral agents. Stavudine-containing combination therapies have also been effective in reducing viral load and increasing CD4+ lymphocyte count in children, although data are limited. Like other nucleoside analogues, stavudine treatment can cause mitochondrial toxicity. The major adverse effect from this observed with stavudine therapy is peripheral neuropathy, which is both dosage- and treatment duration-dependent. Most cases respond to short term cessation of treatment and reintroduction of stavudine at half the previous dosage. CONCLUSION: Stavudine-containing triple therapies are effective in the treatment of antiretroviral-naive adults with HIV infection as assessed by surrogate end-points; earlier trials involving 1 or 2-drug therapy showed that stavudine can significantly improve clinical end-points. Stavudine has also been beneficial as part of combination regimens in antiretroviral-experienced patients and children with HIV infection, although data are limited and more studies are needed. High-level resistance to stavudine is uncommon. The major adverse event associated with treatment is peripheral neuropathy, which may limit its use in some patients. Currently, stavudine has a valuable role as part of initial triple therapy in antiretroviral-naive adults with HIV/AIDS.

Anti-HIV Agents↗

Stavudine: a review of its pharmacodynamic and pharmacokinetic properties and clinical potential in HIV infection.

Stavudine is a nucleoside analogue which undergoes intracellular phosphorylation to its active metabolite, stavudine-5'-triphosphate. At clinically relevant concentrations, the active metabolite restricts HIV replication by inhibiting the inclusion of thymidine-5'-triphosphate into proviral DNA by HIV reverse transcriptase, and/or by causing DNA chain termination. Viral resistance to stavudine does not commonly develop during treatment. Where it has developed, up to a 12-fold increase in resistance has been observed in clinical isolates from patients treated with stavudine for long periods. Stavudine 40mg twice daily and zidovudine 200mg 3 times daily were compared in 822 patients at various stages of HIV infection who had previously received long term zidovudine therapy. Stavudine was superior for both primary and surrogate end-points including clinical progression, treatment failure, increase in CD4+ cell counts and bodyweight gain. In a larger study, stavudine 40mg twice daily provided greater benefit than stavudine 20mg twice daily in terms of weight gain, haematological findings and the number of hospitalisations in 11 784 patients intolerant of or resistant to, zidovudine and didanosine. Peripheral neuropathy is the major dose-limiting adverse event associated with stavudine therapy and occurred more frequently with stavudine than zidovudine. However, haematological adverse events were observed less frequently with stavudine than with zidovudine. Thus, stavudine is effective in alleviating signs and symptoms of HIV infection in patients intolerant of or no longer responding to, zidovudine or didanosine. It is also more effective than zidovudine in slowing disease progression in patients previously treated with zidovudine for long periods. The results of studies which will reveal the role of stavudine therapy in untreated patients and in combination with other anti-HIV agents are awaited with interest.

Animals↗

Clinical efficacy of monotherapy with stavudine compared with zidovudine in HIV-infected, zidovudine-experienced patients. A randomized, double-blind, controlled trial. Bristol-Myers Squibb Stavudine/019 Study Group.

BACKGROUND: Stavudine is a promising antiretroviral agent, but its clinical efficacy has not been determined. OBJECTIVE: To evaluate the clinical effect of stavudine (2',3'-didehydro-3'-deoxythymidine) monotherapy in patients with human immunodeficiency virus (HIV) infection. DESIGN: Randomized, controlled, double-blind trial. SETTING: 56 outpatient clinics in private practices, universities, and contract research organizations in the United States, France, and Italy. PATIENTS: 822 HIV-infected adults who had 50 to 500 CD4+ cells/mm3 and had previously received at least 6 months of zidovudine treatment. INTERVENTION: Monotherapy with peroral stavudine capsules or peroral zidovudine capsules. MEASUREMENTS: The primary end point was clinical progression, which was defined as all occurrences of acquired immunodeficiency syndrome (AIDS)-defining events or death. RESULTS: Patients receiving stavudine reached clinical end points at a rate of 26 per 100 person-years, compared with 32 per 100 person-years for patients receiving zidovudine (relative risk, 0.75 [95% CI, 0.58 to 0.98]; P = 0.03). The risk for death alone was 26% lower in the stavudine group than in the zidovudine group, but the comparison was not statistically significant (relative risk, 0.74 [CI, 0.53 to 1.02]; P = 0.066). The benefit of stavudine therapy was seen in all CD4+ cell strata (< or = 100 cells/mm3, 101 to 300 cells/mm3, and > 300 cells/mm3) and clinical stages of HIV disease (asymptomatic, symptomatic, and AIDS). Four weeks after treatment began, CD4+ cell counts were 30 cells/mm3 higher in the stavudine group than in the zidovudine group; this difference was sustained for 96 weeks (P < 0.001). Nausea and vomiting were more common in patients receiving zidovudine (P < 0.01), and neuropathy occurred more frequently in those receiving stavudine (12% in the stavudine group compared with 4% in the zidovudine group; P < 0.001). Neuropathy resolved completely in many patients (63%) after interruption of stavudine treatment; these patients could resume stavudine therapy at a lower dose. CONCLUSIONS: Stavudine was well tolerated and delayed progression of HIV disease in patients who had previously received 6 or more months of zidovudine treatment. Benefits were apparent in all CD4+ cell strata and clinical stages of HIV disease. Stavudine is an important agent to consider for trials of combination chemotherapy.

Adult↗

In vivo maternal-fetal pharmacokinetics of stavudine (2',3'-didehydro-3'-deoxythymidine) in pigtailed macaques (Macaca nemestrina).

To determine whether stavudine (2',3'-didehydro-3'-deoxythymidine) is actively transported in vivo across the placenta and to determine the extent of its transfer, stavudine was administered as an intravenous bolus to four near-term macaques (Macaca nemestrina) (5 mg/kg of body weight via the femoral vein) or to their fetuses (10 mg/kg via the carorid artery) at gestational age 134 +/- 5 days, with the administrations about 1 week apart. Antipyrine (a passive diffusion marker) was always coadministered (20 mg/kg) with stavudine. Samples of maternal and fetal plasma and amniotic fluid were collected at frequent intervals up to 240 min after the dose. In a separate experiment, three animals received stavudine for 30 h at a low rate of infusion (22 micrograms/min/kg via the femoral vein) to the dam or at a 10-fold-higher rate of infusion (220 micrograms/min/kg), separated by at least one week, in order to determine if the transplacental transfer of stavudine is saturable. Antipyrine (41.7 micrograms/min/kg) was coinfused with stavudine. Samples of maternal and fetal plasma and amniotic fluid were collected at regular intervals for up to 30 h. The concentrations of stavudine and antipyrine were determined by high-performance liquid chromatography. The transplacental maternal-fetal drug clearances were compared by the paired Student t test. The clearance associated with maternal-fetal transfer of the drug (CLdf) (0.54 +/- 0.08 ml/min/kg) was not significantly different (P > 0.05) from the clearance associated with fetal-maternal transfer of the drug, CLfd (0.66 +/- 0.11 ml/min/kg). Also, CLdf was not significantly different (P > 0.05) from CLfd when normalized with respect to the corresponding transplacental clearance of antipyrine (0.23 +/- 0.04 versus 0.36 +/- 0.25). The ratios of the steady-state plasma stavudine concentration in the fetus to that in the dam were 0.77 +/- 0.06 at the low stavudine infusion rate and 0.81 +/- 0.09 at the high stavudine infusion rate. The obtained data indicate that transfer of stavudine across the placenta is passive and constant over the dose range studied.

Amniotic Fluid↗

Diminished HIV-1 sensitivity to stavudine in patients on prolonged therapy occurs only at low levels and cannot be attributed to any single amino acid substitution in reverse transcriptase.

To study the extent to which phenotypic resistance to stavudine occurs under therapy, we studied 18 pairs of human immunodeficiency virus type 1 (HIV-1) isolates from patients both prior to and following 24-48 weeks of treatment with stavudine monotherapy or stavudine in combination with either didanosine or lamivudine. We also used a nested polymerase chain reaction (PCR) assay to probe for the presence of specific mutations associated in culture with stavudine resistance. The results showed that resistance to stavudine (approximately 3-10 fold) was observed in nine of ten cases of monotherapy, in three of four cases of therapy involving both stavudine and didanosine, and in two of four cases involving stavudine and lamivudine. Viruses from the four patients receiving stavudine plus didanosine became resistant to didanosine in only one instance while the use of lamivudine plus stavudine yielded resistance to lamivudine each time. Whereas changes in the reverse transcriptase (RT) genes of resistant isolates were frequently observed, two mutations, previously identified with stavudine resistance in tissue culture (i.e., V75T and I50T), could not be identified in the clinical samples by either direct sequencing of the RT gene or by PCR amplification. Thus, resistance to stavudine can occur, albeit at low levels, in the context of prolonged therapy with this drug but is not associated with specific mutations in HIV RT at either codons 75 or 50 in clinical samples.

Acquired Immunodeficiency Syndrome↗

Lamivudine or stavudine in two- and three-drug combinations against human immunodeficiency virus type 1 replication in vitro.

Two- and three-drug combinations of lamivudine or stavudine with other antiretroviral drugs were evaluated for activity against human immunodeficiency virus type 1 (HIV-1) activity in peripheral blood mononuclear cells. Other agents included zidovudine, didanosine, nevirapine, and saquinavir. Paired zidovudine-sensitive and -resistant clinical HIV-1 isolates were used. Additive or synergistic interactions were observed against the zidovudine-sensitive isolate with the following combinations: lamivudine-zidovudine, lamivudine-stavudine, lamivudine-saquinavir, lamivudine-nevirapine, stavudine-zidovudine, stavudine-didanosine, stavudine-saquinavir, stavudine-nevirapine, lamivudine-zidovudine-saquinavir, lamivudine-zidovudine-stavudine, stavudine-zidovudine-nevirapine, lamivudine-zidovudine-nevirapine, and stavudine-zidovudine-saquinavir. Against the zidovudine-resistant isolate, additive or synergistic interactions were seen with most two- and three-drug combinations, but the combination of stavudine-zidovudine was antagonistic. The clinical implications of these in vitro observations should be explored.

Antiviral Agents↗

Clinical pharmacokinetics of stavudine.

Stavudine (d4T) is a pyrimidine nucleoside analogue used in the treatment of human immunodeficiency virus (HIV) infection. It inhibits viral reverse transcriptase as do zidovudine (AZT), didanosine (ddI), zalcitabine (ddC) and lamivudine (3TC), which comprise the family of nucleoside HIV-reverse transcriptase inhibitors. Stavudine is currently approved by the US Food and Drug Administration for the treatment of patients who have become intolerant to or have failed to response to zidovudine, didanosine or zalcitabine therapy. Oral administration of stavudine results in maximal concentrations within 2 hours and increases linearly as doses increase. The absolute oral bioavailability is high, approaching 100%. There is evidence to suggest that stavudine does not accumulate in the plasma. It distributes into total body water and appears to enter cells by non-facilitated diffusion. Penetration into the cerebrospinal fluid occurs, as does the transfer of the drug across human placental tissue. Stavudine is cleared quickly by both renal and nonrenal processes. The pharmacokinetic properties of stavudine in children are similar to those of adults. The pharmacokinetic parameters of stavudine were not affected by simultaneous administration of didanosine. It appears that stavudine at doses < 2 mg/kg/day is most efficient at increasing CD4 + cell numbers. While stavudine is reported to be less cytotoxic than zidovudine, the principal toxicity in humans is peripheral neuropathy and appears to be related to daily, but not cumulative, doses.

Adult↗

Stavudine resistance: an update on susceptibility following prolonged therapy.

The current report summarizes the available published and unpublished data from several investigators on resistance in clinical isolates following prolonged stavudine therapy. Results suggest that stavudine resistance is both modest in degree and infrequent in appearance. Phenotypic evaluation of 61 patients on stavudine therapy showed only modest changes in drug sensitivity following up to 29 months of treatment. The post-treatment isolates from 15 patients exhibited an increase in EC50 value > fourfold (level above variability of assay) when compared with the corresponding pretreatment isolates. However, the vast majority (11) of these pretreatment isolates either had unexpectedly low EC50 levels and/or had post-treatment isolates that lacked any amino acid changes within their reverse transcriptase (RT) gene to account for the observed change in sensitivity. Of the four remaining isolates, two appeared to have a multi-resistant phenotype to several nucleoside analogues and two had no detectable RT amino acid changes to account for the observed change in stavudine sensitivity. To date, clinical HIV-1 isolates displaying stavudine-specific resistance have yet to be reported. Furthermore, full or partial RT sequence analysis of 194 post-treatment isolates failed to identify any consistent amino acid changes. The strain-specific V75T mutation reported to confer stavudine resistance to the HXB2 HIV-1 strain in vitro, was found in only six isolates and did not correlate with stavudine resistance. This low incidence of stavudine resistance is in striking contrast to that observed with other nucleoside analogues and further supports the use of stavudine in first-line combination therapy for HIV patients.

Acquired Immunodeficiency Syndrome↗

Selection of zidovudine resistance mutations and escape of human immunodeficiency virus type 1 from antiretroviral pressure in stavudine-treated pediatric patients.

The relationship between clinical changes in stavudine activity and stavudine resistance was investigated in 16 human immunodeficiency virus (HIV)-infected children who received stavudine monotherapy for 18 months. Seven patients responded well to stavudine therapy, 3 experienced transient reductions in virus load, and all others had no detectable virologic response. In both the responders and nonresponders, no changes in stavudine susceptibility or specific baseline/emergent mutations in reverse transcriptase were observed. Only posttherapy HIV isolates from transient responders had elevated IC(50) values for stavudine. In 2 of the 3 transient responders, substitutions at codons 41, 210, and 215 were selected. The significance of these mutations was confirmed in viral competition experiments, site-directed mutagenesis, and in vitro selection. Selection of mutations previously associated with zidovudine resistance can be an important mechanism through which HIV may escape stavudine. The effect of these mutations on phenotypic stavudine susceptibility is relatively small but apparently large enough to be clinically significant.

Acquired Immunodeficiency Syndrome↗

Genotypic and phenotypic analysis of human immunodeficiency virus type 1 isolates from patients on prolonged stavudine therapy.

Development of stavudine resistance was studied using human immunodeficiency virus type 1 isolates from 13 patients treated with stavudine for 18-22 months. Drug sensitivity testing on 11 of these pre- and posttherapy isolates identified only 2 posttreatment isolates with decreased stavudine sensitivity (ED50s < 4-fold higher than the average pretreatment ED50). Genotypic analysis of all 13 pairs of isolates identified multiple mutations in the reverse transcriptase (RT) gene. However, no genetic basis was identified to account for the observed changes in stavudine susceptibility. A recombinant virus containing the entire RT gene of the posttherapy isolate displaying the greatest resistance remained sensitive to stavudine. Five of the stavudine posttreatment isolates developed resistance (9- to 176-fold) to zidovudine, although the relationship between stavudine treatment and the appearance of zidovudine resistance remains unexplained. Analysis of 10 additional pairs of isolates did not confirm this relationship. The low frequency and modest degree of change in stavudine sensitivity following prolonged treatment is very encouraging.

Acquired Immunodeficiency Syndrome↗

Zidovudine and stavudine sequencing in HIV treatment planning: findings from the CHORUS HIV cohort.

BACKGROUND: Optimal sequencing of zidovudine and stavudine in antiretroviral therapy has not been elucidated. OBJECTIVE: To examine the impact of the sequence of therapeutic regimens containing zidovudine and stavudine on HIV-1 RNA and CD4 lymphocyte counts over 12 months. DESIGN: Observational, multicenter, longitudinal cohort study. SETTING: Four large outpatient, HIV practices participating in the community-based Collaborations in HIV Outcomes Research-U.S. (CHORUS) cohort study. PARTICIPANTS: 940 HIV-infected patients. METHODS: Comparison of HIV-1 RNA and CD4 lymphocyte responses in patients sequenced from zidovudine to stavudine or from stavudine to zidovudine using repeated measures regression models fit to outcomes by application of generalized estimating equation (GEE) methodology. RESULTS: Patients treated with zidovudine prior to stavudine (n = 834) achieved a greater mean drop from baseline HIV-1 RNA (p = .01) and higher proportion of undetectable HIV-1 RNA results (p = .05) over 12 months than those sequenced from stavudine to zidovudine (n = 106). CD4+ lymphocyte increases did not differ between the groups (p = .6). CONCLUSIONS: Prior zidovudine therapy was not associated with long-term attenuation of HIV-1 RNA or CD4 response to subsequent stavudine-containing regimens. Zidovudine before stavudine may have benefit in a strategic long-term therapeutic plan.

Adolescent↗

Anti-HIV antiviral activity of stavudine in a thymidine kinase-deficient cellular line.

Stavudine (d4T) is a potent inhibitor of human immunodeficiency virus type 1 (HIV-1) reverse transcriptase. It is known that stavudine is metabolized in cells to the mono-, di- and triphosphate nucleotides but the enzymes responsible for its phosphorylation are as yet unidentified. In particular, there are conflicting results concerning the role of thymidine kinase 1 (TK1) in stavudine metabolism. To gain new insights into this phenomenon we analysed the antiviral activity of stavudine in a TK1-deficient, resistant cell line. The results indicate that TK1 is responsible for the phosphorylation of stavudine but it is not the only enzyme involved in its activation. The other enzyme(s) that might be involved in the metabolism of stavudine, however, are not able to phosphorylate stavudine with the same efficiency as TK1. Since it has been shown that prolonged treatment with zidovudine may induce an in vivo defect in TK1 activity, it is tempting to speculate that patients treated for a long time with zidovudine could be resistant to further treatment with stavudine.

Anti-HIV Agents↗

A phase I/II evaluation of stavudine (d4T) in children with human immunodeficiency virus infection.

OBJECTIVES: To determine the pharmacokinetic properties, tolerance, safety, and preliminary activity of stavudine in human immunodeficiency virus (HIV)-infected children. DESIGN: Phase I/II, open and dose-ranging (0.125 to 4 mg/kg/day in two divided doses). PATIENTS: Thirty-seven HIV-infected children (median age, 5.5 years; range, 7 months to 15 years) with a median CD4+ lymphocyte count at baseline of 242 cells/microL (range 2 to 2290 cells/microL). Thirty children had symptomatic HIV disease at entry; seven had HIV-related immunosuppression alone. Twenty-nine subjects had a history of prior zidovudine (ZDV) therapy. RESULTS: As compared with adults receiving the same weight-adjusted doses, the children we studied had lower maximum observed stavudine plasma concentrations (CMAX) and area under the plasma concentration versus time curves (AUC), and more rapid stavudine elimination. The absolute oral bioavailability of the drug ranged from 61% to 78%. There was no plasma accumulation of the drug between day 1 and week 12. Week 12 cerebrospinal fluid stavudine concentrations in seven subjects, obtained approximately 2 to 3 hours after oral doses, ranged from 16% to 97% of concomitant plasma concentrations. Stavudine was well-tolerated and there were no dose-related clinical or laboratory adverse events. One subject with baseline neurologic abnormalities experienced a transient episode of apparent pain or discomfort in her fingers, possibly related to stavudine. All other adverse events were attributed to underlying disease. Stavudine activity, measured indirectly by CD4+ lymphocyte count and serum p24 antigen concentration changes, was observed in some subjects. Progression of HIV disease and survival correlated with prior ZDV therapy, HIV disease classification, baseline CD4+ lymphocyte count, and weight growth velocity. CONCLUSIONS: Stavudine appears to hold promise for the treatment of HIV infection in children. Its pharmacokinetic properties are consistent and predictable, and it appears to be remarkably well-tolerated and safe. Although our study was not designed to assess the drug's efficacy, preliminary clinical and laboratory evidence of activity was observed.

Administration, Oral↗

Stavudine and the peripheral nerve in HIV-1 infected patients.

Stavudine (2',3'-didehydro-3'deoxythymidine) is a pyrimidine analogue that may be of great value in combination antiretroviral therapy (ART) for treating patients infected with human immunodeficiency virus type 1 (HIV-1). We assessed potential neurotoxic side effects by comparing peripheral nerve function in patients receiving ART including stavudine (n = 107) with that of patients receiving ART with zidovudine (n = 103). A cross-sectional analysis of electroneurographic data revealed no significant differences. In a follow-up examination of 31 patients newly started on ART with stavudine we observed no significant effects of the drug on electrophysiological measures. At a daily dose of 1.0 mg/kg the incidence of peripheral nervous system disease in our patients was about 10%. Repeated follow-up analysis of 13 patients on stavudine showed a significant reduction in sural nerve amplitude. Quantitative sensory testing in 13 patients revealed no systematic effect of stavudine on small nerve fibers. Peripheral nerve function in HIV-1 seropositive patients on ART with stavudine did not differ significantly from that in patients on ART with zidovudine. Therefore stavudine at a daily dose of 1.0 mg/kg is an alternative for patients who do not tolerate, or who have become resistant to zidovudine and can be recommended as a first-line drug in combination ART.

Acquired Immunodeficiency Syndrome↗

Stavudine selectively induces apoptosis in HIV type 1-infected cells.

We evaluated the cytotoxic effects of various human immunodeficiency virus (HIV-1) reverse transcriptase inhibitors (zidovudine, didanosine, zalcitabine, stavudine, and nevirapine) on HIV-1-infected and uninfected T cell lines. Among the compounds, only stavudine (not the others) proved to be more cytotoxic to MOLT-4/IIIB cells (MOLT-4 cells chronically infected with HIV-1) than to uninfected MOLT-4 cells. Its 50% cytotoxic concentrations were 59.8 and 2.2 microM for MOLT-4 and MOLT-4/IIIB cells, respectively. Stavudine was also more cytotoxic to CEM/ROD (CEM cells chronically infected with HIV type 2) than to uninfected CEM cells. Microscopic analysis revealed that stavudine induced apoptosis in MOLT-4/IIIB cells. Apparent chromatin condensation in the nucleus was observed by electron microscopy. Furthermore, a DNA fragmentation ladder was detected by agarose gel electrophoresis. Addition of thymidine to the culture medium could rescue the cells from stavudine-induced apoptosis. The expression of anti-apoptotic protein Bcl-2 was partially downregulated in MOLT-4/IIIB cells after treatment with stavudine. This downregulation was not identified in MOLT-4 cells. These results indicate that stavudine selectively induces apoptosis in HIV-1-infected T cells and may have potential as a novel strategy for effective chemotherapy of the acquired immune deficiency syndrome (AIDS).

Anti-HIV Agents↗