Background The rectum is particularly vulnerable to HIV transmission having only a single protective layer of columnar epithelium overlying tissue rich in activated lymphoid cells; thus, unprotected anal intercourse in both women and men carries a higher risk of infection than other sexual routes. In the absence of effective prophylactic vaccines, increasing attention is being given to the use of microbicides and preventative antiretroviral (ARV) drugs. To prevent mucosal transmission of HIV, a microbicide/ARV should ideally act locally at and near the virus portal of entry. As part of an integrated rectal microbicide development programme, we have evaluated rectal application of the nucleotide reverse transcriptase (RT) inhibitor tenofovir (PMPA, 9-[(R)-2-(phosphonomethoxy) propyl] adenine monohydrate), a drug licensed for therapeutic use, for protective efficacy against rectal challenge with simian immunodeficiency virus (SIV) in a well-established and standardised macaque model. Methods and Findings A total of 20 purpose-bred Indian rhesus macaques were used to evaluate the protective efficacy of topical tenofovir. Nine animals received 1% tenofovir gel per rectum up to 2 h prior to virus challenge, four macaques received placebo gel, and four macaques remained untreated. In addition, three macaques were given tenofovir gel 2 h after virus challenge. Following intrarectal instillation of 20 median rectal infectious doses (MID50) of a noncloned, virulent stock of SIVmac251/32H, all animals were analysed for virus infection, by virus isolation from peripheral blood mononuclear cells (PBMC), quantitative proviral DNA load in PBMC, plasma viral RNA (vRNA) load by sensitive quantitative competitive (qc) RT-PCR, and presence of SIV-specific serum antibodies by ELISA. We report here a significant protective effect (p = 0.003; Fisher exact probability test) wherein eight of nine macaques given tenofovir per rectum up to 2 h prior to virus challenge were protected from infection (n = 6) or had modified virus outcomes (n = 2), while all untreated macaques and three of four macaques given placebo gel were infected, as were two of three animals receiving tenofovir gel after challenge. Moreover, analysis of lymphoid tissues post mortem failed to reveal sequestration of SIV in the protected animals. We found a strong positive association between the concentration of tenofovir in the plasma 15 min after rectal application of gel and the degree of protection in the six animals challenged with virus at this time point. Moreover, colorectal explants from non-SIV
References
[1]
Vittinghoff E, Douglas J, Judson F, McKirnan D, MacQueen K, et al. (1999) Per-contact risk of human immunodeficiency virus transmission between male sexual partners. Am J Epidemiol 150: 306–311.
[2]
Kalichman SC, Pompa D, Luke W, Austin J (2002) HIV transmission risk behaviours among HIV-positive persons in serodiscordant relationships. Int J STD AIDS 13: 677–682.
[3]
Padian NS, Shiboski SC, Glass SO, Vittinghoff E (1997) Heterosexual transmission of human immunodeficiency virus (HIV) in northern California: results from a ten-year study. Am J Epidemiol 146: 350–357.
[4]
Leynaert B, Downs AM, De V I (1998) Heterosexual transmission of human immunodeficiency virus: variability of infectivity throughout the course of infection. European Study Group on Heterosexual Transmission of HIV. Am J Epidemiol 148: 88–96.
[5]
Poles MA, Elliot J, Taing P, Anton PA, Chen IS (2001) A preponderance of CCR5(+) CXCR4(+) mononuclear cells enhances gastrointestinal mucosal susceptibility to human immunodeficiency virus type 1 infection. J Virol 75: 8390–8399.
[6]
Shattock RJ, Moore JP (2003) Inhibiting sexual transmission of HIV-1 infection. Nat Rev Micobiol 1: 25–34.
[7]
Misegades L, Page-Shafer K, Halperin D, McFarland W (2001) Anal intercourse among young low-income women in California: an overlooked risk factor for HIV. AIDS 15: 534–535.
[8]
Alves K, Shafer KP, Caseiro M, Rutherford G, Falcao ME, et al. (2003) Risk factors for incident HIV infection among anonymous HIV testing site clients in Santos, Brazil: 1996–1999. J Acquir Immune Defic Syndr 32: 551–559.
[9]
Alarcon JO, Johnson KM, Courtois B, Rodriguez C, Sanchez J, et al. (2003) Determinants and prevalence of HIV infection in pregnant Peruvian women. AIDS 17: 613–618.
[10]
Gross M, Holte SE, Marmor M, Mwatha A, Koblin BA, et al. (2000) Anal sex among HIV-seronegative women at high risk of HIV exposure. The HIVNET Vaccine Preparedness Study 2 Protocol Team. J Acquir Immune Defic Syndr 24: 393–398.
[11]
Weber AE, Boivin JF, Blais L, Haley N, Roy E (2002) HIV risk profile and prostitution among female street youths. J Urban Health 79: 525–535.
[12]
Karim SS, Ramjee G (1998) Anal sex and HIV transmission in women. Am J Public Health 88: 1265–1266.
[13]
Van Damme L, Ramjee G, Alary M, Vuylsteke B, Chandeying V, et al. (2002) Effectiveness of COL-1492, a nonoxynol-9 vaginal gel, on HIV-1 transmission in female sex workers: a randomised controlled trial. Lancet 360: 971–977.
[14]
Koblin BA, Chesney MA, Husnik MJ, Bozeman S, Celum CL, et al. (2003) High-risk behaviours among men who have sex with men in 6 US cities: baseline data from the EXPLORE study. Am J Public Health 93: 926–932.
[15]
Sabbarao S, Otten RA, Ramos A, Kim C, Jackson E, et al. (2006) Chemoprophylaxis with tenofovir disoproxil fumarate provided partial protection against infection with simian human immunodeficiency virus in macaques given multiple virus challenges. J Inf Dis 194: 904–911.
[16]
Van Rompay KK, Kearney BP, Sexton JJ, Colón R, Lawson JR, et al. (2006) Evaluation of oral tenofovir disoproxil fumarate and topical tenofovir GS-7340 to protect infant macaques against repeated oral challenges with virulent simian immunodeficiency virus. J Acquir Immune Defic Syndr 43: 6–14.
[17]
Cranage MP, Baskerville A, Ashworth LAE, Dennis M, Cook N, et al. (1992) Intrarectal challenge of macaques vaccinated with formalin-inactivated simian immunodeficiency virus. Lancet 339: 273–274.
[18]
Cranage MP, Baskerville A, Ashworth LAE, Dennis M, Cook N, et al. (1992) Mucosal infection and vaccine studies with simian immunodeficiency virus. Vaccine Res 1: 311–318.
[19]
Benson J, Chougnet C, Robert-Guroff M, Montefiori D, Markham P, et al. (1998) Recombinant vaccine-induced protection against the highly pathogenic simian immunodeficiency virus SIV(mac251): dependence on route of challenge exposure. J Virol 72: 4170–4182.
[20]
Patterson LJ, Robey F, Muck A, Van Remoortere K, Aldrich K, et al. (2001) A conformational C4 peptide polymer vaccine coupled with live recombinant vector priming is immunogenic but does not protect against rectal SIV challenge. AIDS Res Hum Retroviruses 10: 837–849.
[21]
Cranage MP, Sharpe SA, Whatmore AM, Polyanskaya N, Norley N, et al. (1998) resistance to simian immunodeficiency virus superinfection depends on attenuated virus dose. J Gen Virol 79: 1935–1944.
[22]
ten Haaft P, Verstrepen B, Uberla K, Rosenwirth B, Heeney J (1998) A pathogenic threshold of virus load defined in simian immunodeficiency virus- or simian-human immunodeficiency virus-infected macaques. J Virol 72: 10281–10285.
[23]
Clarke S, Almond N, Berry N (2003) Simian immunodeficiency virus Nef gene regulates the production of 2-LTR circles in vivo. Virology 306: 100–108.
[24]
Rezk NL, Crutchley RD, Kashuba ADM (2005) Simultaneous quantification of emtricitabine and tenofovir in human plasma using high-performance liquid chromatography after solid phase extraction. J Chromatog B 822: 201–208.
[25]
Polyanskaya N, Bergmeier LA, Sharpe SA, Cook N, Leech S, et al. (2001) Mucosal exposure to subinfectious doses of SIV primes gut-associated antibody-secreting cells and T cells: lack of enhancement by nonneutralizing antibody. Virology 279: 527–538.
[26]
Sharpe SA, Cope A, Dowall S, Berry N, Ham C, et al. (2004) Macaques infected long-term with attenuated simian immunodeficiency virus (SIVmac) remain resistant to wild-type challenge, despite declining cytotoxic T lymphocyte responses to an immunodominant epitope. J Gen Virol 85: 2591–2602.
[27]
Li Y, Hui H, Burgess CJ, Price RW, Sharp PM, et al. (1992) Complete nucleotide sequence, genome organization, and biological properties of human immunodeficiency virus type 1 in vivo: evidence for limited defectiveness and complementation. J Virol 66: 6587–6600.
[28]
Li Y, Kappes JC, Conway JA, Price RW, Shaw GM, et al. (1991) Molecular characterization of human immunodeficiency virus type 1 cloned directly from uncultured human brain tissue: identification of replication competent and –defective viral genomes. J Virol 65: 3973–3985.
[29]
Adachi A, Gedelman HE, Koenig S, Folks T, Willey R, et al. (1986) Production of acquired immunodeficiency syndrome-associated retrovirus in human and nonhuman cells transfected with an infectious molecular clone. J Virol 59: 284–291.
[30]
Herrera C, Klasse PJ, Michael E, Kake S, Barnes K, et al. (2005) The impact of envelope glycoprotein cleavage on the antigenicity, infectivity, and neutralizing sensitivity of Env-pseudotyped human immunodeficiency virus type 1 particles. Virology 338: 154–172.
[31]
Fletcher PS, Elliot J, Grivel JC, Margolis L, Anton P, et al. (2006) Ex vivo culture of human colorectal tissue for the evaluation of candidate microbicides. AIDS 20: 1237–1245.
[32]
Robbins BL, Srinivas RV, Kim C, Bishofberger N, Fridland A (1998) Anti-human immunodeficiency virus activity and cellular metabolism of a potential prodrug of the acyclic nucleoside phosphanate 9-R-(2-Phosphonomethoxypropyl)adenine (PMPA), Bis (isopropyloxymethylcarbonyl) PMPA. Antimicrob Agents Chemother 42: 612–617.
[33]
Delaney WE 4th, Ray AS, Yang H, Qi X, Xiong S, et al. (2006) Intracellular metabolism and in vitro activity of tenofovir against hepatitis B virus. Antimicrob Agents Chemother 50: 2471–2477.
[34]
Balzarini J, van Herwege Y, Vanham G (2002) Metabolic activation of nucleoside and nucleotide reverse transcriptase inhibitors in dendritic and Langerhans cells. AIDS 16: 2159–2163.
[35]
Barouch DH, Kunstman J, Kuroda MJ, Schmitz JE, Santra S, et al. (2002) Eventual AIDS vaccine failure in a rhesus monkey by viral escape from cytotoxic T lymphocytes. Nature 415: 335–339.
[36]
Friedrich TC, Dodds EJ, Yant LJ, Vojnov L, Rudersdorf R, et al. (2004) Reversion of CTL escape-variant immunodeficiency viruses in vivo. Nat Med 10: 275–281.
[37]
US National Institutes of Health (2008) Clinicaltrials.gov. Available: http://clinicaltrials.gov. Accessed 1 July 2008.
[38]
Steinman RM, Granelli-Piperno A, Pope M, Trumpfheller C, Ignatius R, et al. (2003) The interaction of immunodeficiency viruses with dendritic cells. Curr Top Microbiol Immunol 276: 1–30.
[39]
Lehner T, Wang Y, Cranage M, Bergmeier LA, Mitchell E, et al. (1996) Protective mucosal immunity elicited by targeted iliac lymph node immunization with a subunit SIV envelope and core vaccine in macaques. Nat Med 2: 767–775.
[40]
Geijtenbeek TB, Kwon DS, Torensma R, van Vliet SJ, van Duijnhoven GC, et al. (2000) DC-SIGN, a dendritic cell-specific HIV-1-binding protein that enhances trans-infection of T cells. Cell 100: 587–597.
[41]
P?hlmann S, Baribaud F, Lee B, Leslie GJ, Sanchez MD, et al. (2001) DC-SIGN interactions with human immunodeficiency virus type 1 and 2 and simian immunodeficiency virus. J Virol 75: 4664–4672.
[42]
Kulkami PS, Butera ST, Duerr AC (2003) Resistance to HIV-1 infection: lessons learned from studies of highly exposed persistently seronegative (HEPS) individuals. AIDS Rev 5: 87–103.
[43]
Fuchs EJ, Lee LA, Torbenson MS, Parsons TL, Bakshi RP, et al. (2007) Hyperosmolar sexual lubricant causes epithelial damage in the distal colon: potential implication for HIV transmission. J Infect Dis 195: 703–710.
[44]
Lifson JD, Rossio JL, Piatak Jr M, Parks T, Li L, et al. (2001) Role of CD8+ lymphocytes in control of simian immunodeficiency virus infection and resistance to rechallenge after transient early antiretroviral treatment. J Virol 75: 10187–10199.
[45]
Pauza CD, Emau P, Salato MS, Triverdi P, MacKenzie (1993) Pathogenesis of SIVmac251 after atraumatic inoculation of the rectal mucosa in rhesus monkeys. J Med Primatol 22: 154–161.
Feinberg MB, Moore JP (2002) AIDS vaccine models: challenging challenge viruses. Nature Med 8: 207–210.
[48]
Casimiro DR, Wang F, Schleif WA, Liang X, Zhang Z-Q, et al. (2005) Attenuation of simian immunodeficiency virus SIVmac239 infection by prophylactic immunization with DNA and recombinant adenoviral vaccine vectors expressing Gag. J Virol 79: 15547–15555.
[49]
Wilson NA, Reed J, Napoe GS, Piaskowski S, Szymanski A, et al. (2006) Vaccine-induced cellular immune responses reduce plasma viral concentrations after repeated low-dose challenge with pathogenic simian immunodeficiency virus SIVmac239. J Virol 80: 5875–5885.
[50]
Saifuddin M (2008) Intravaginal administration of 6% cellulose sulfate (CS) gel prevented systemic infection in rhesus macaques in a multiple dose R5/X4 SHIV vaginal challenge model. Late-breaker presentation. Proceedings of Microbicides 2008 Conference. Delhi, India.