The chemotherapeutic arsenal against human African trypanosomiasis, sleeping sickness, is limited and can cause severe, often fatal, side effects. One of the classic and most widely used drugs is pentamidine, an aromatic diamidine compound introduced in the 1940s. Recently, a genome-wide loss-of-function screen and a subsequently generated trypanosome knockout strain revealed a specific aquaglyceroporin, TbAQP2, to be required for high-affinity uptake of pentamidine. Yet, the underlying mechanism remained unclear. Here, we show that TbAQP2 is not a direct transporter for the di-basic, positively charged pentamidine. Even though one of the two common cation filters of aquaglyceroporins, i.e. the aromatic/arginine selectivity filter, is unconventional in TbAQP2, positively charged compounds are still excluded from passing the channel. We found, instead, that the unique selectivity filter layout renders pentamidine a nanomolar inhibitor of TbAQP2 glycerol permeability. Full, non-covalent inhibition of an aqua(glycero)porin in the nanomolar range has not been achieved before. The remarkable affinity derives from an electrostatic interaction with Asp265 and shielding from water as shown by structure-function evaluation and point mutation of Asp265. Exchange of the preceding Leu264 to arginine abolished pentamidine-binding and parasites expressing this mutant were pentamidine-resistant. Our results indicate that TbAQP2 is a high-affinity receptor for pentamidine. Taken together with localization of TbAQP2 in the flagellar pocket of bloodstream trypanosomes, we propose that pentamidine uptake is by endocytosis.
References
[1]
Alsford S, Horn D (2008) Single-locus targeting constructs for reliable regulated RNAi and transgene expression in Trypanosoma brucei. Mol Biochem Parasitol 161: 76–79. doi: 10.1016/j.molbiopara.2008.05.006. pmid:18588918
[2]
Baker N, Glover L, Munday JC, Aguinaga Andrés D, Barrett MP, de Koning HP, Horn D (2012) Aquaglyceroporin 2 controls susceptibility to melarsoprol and pentamidine in African trypanosomes. Proc Natl Acad Sci U S A 109: 10996–11001. doi: 10.1073/pnas.1202885109. pmid:22711816
[3]
Munday JC, Eze AA, Baker N, Glover L, Clucas C, Aguinaga Andrés D, Natto MJ, Teka IA, McDonald J, Lee RS, Graf FE, Ludin P, Burchmore RJ, Turner CM, Tait A, MacLeod A, M?ser P, Barrett MP, Horn D, De Koning HP (2014) Trypanosoma brucei aquaglyceroporin 2 is a high-affinity transporter for pentamidine and melaminophenyl arsenic drugs and the main genetic determinant of resistance to these drugs. J Antimicrob Chemother 69: 651–663. doi: 10.1093/jac/dkt442. pmid:24235095
[4]
Wu B, Beitz E (2007) Aquaporins with selectivity for unconventional permeants. Cell Mol Life Sci 64: 2413–2421. doi: 10.1007/s00018-007-7163-2. pmid:17571212
[5]
Mukhopadhyay R, Beitz E (2010) Metalloid transport by aquaglyceroporins: consequences in the treatment of human diseases. Adv Exp Med Biol 679: 57–69. doi: 10.1007/978-1-4419-6315-4_5. pmid:20666224
[6]
Song J, Mak E, Wu B, Beitz E (2014) Parasite aquaporins: current developments in drug facilitation and resistance. Biochim Biophys Acta 1840: 1566–1573. doi: 10.1016/j.bbagen.2013.10.014. pmid:24140393
[7]
Tsukaguchi H, Shayakul C, Berger UV, Mackenzie B, Devidas S, Guggino WB, van Hoek AN, Hediger MA (1998) Molecular characterization of a broad selectivity neutral solute channel. J Biol Chem 273: 24737–24743. doi: 10.1074/jbc.273.38.24737. pmid:9733774
[8]
Liu Z, Shen J, Carbrey JM, Mukhopadhyay R, Agre P, Rosen BP (2002) Arsenite transport by mammalian aquaglyceroporins AQP7 and AQP9. Proc Natl Acad Sci U S A 99: 6053–6058. doi: 10.1073/pnas.092131899. pmid:11972053
[9]
Gourbal B, Sonuc N, Bhattacharjee H, Legare D, Sundar S, Ouellette M, Rosen BP, Mukhopadhyay R (2004) Drug uptake and modulation of drug resistance in Leishmania by an aquaglyceroporin. J Biol Chem 279: 31010–31017. doi: 10.1074/jbc.M403959200. pmid:15138256
[10]
Pavlovi?-Djuranovi? S, Schultz JE, Beitz E (2003) A single aquaporin gene encodes a water/glycerol/urea facilitator in Toxoplasma gondii with similarity to plant tonoplast intrinsic proteins. FEBS Lett 555: 500–504. doi: 10.1016/S0014-5793(03)01313-9. pmid:14675763
[11]
Uzcátegui NL, Szallies A, Pavlovi?-Djuranovi? S, Palmada M, Figarella K, Boehmer C, Lang F, Beitz E, Duszenko M (2004) Cloning, heterologous expression, and characterization of three aquaglyceroporins from Trypanosoma brucei. J Biol Chem 279: 42669–42676. doi: 10.1074/jbc.M404518200. pmid:15294911
[12]
Uzcátegui NL, Figarella K, Bassarak B, Meza NW, Mukhopadhyay R, Ramirez JL, Duszenko M (2015) Trypanosoma brucei aquaglyceroporins facilitate the uptake of arsenite and antimonite in a pH dependent way. Cell Physiol Biochem 32: 880–888. doi: 10.1159/000354490.
[13]
Beitz E, Wu B, Holm LM, Schultz JE, Zeuthen T (2006) Point mutations in the aromatic/arginine region in aquaporin 1 allow passage of urea, glycerol, ammonia and protons. Proc Natl Acad Sci U S A 103: 269–274. doi: 10.1073/pnas.0507225103. pmid:16407156
[14]
Wu B, Steinbronn C, Alsterfjord M, Zeuthen T, Beitz E (2009) Concerted action of two cation filters in the aquaporin water channel. EMBO J 28: 2188–2194. doi: 10.1038/emboj.2009.182. pmid:19574955
[15]
Kosinska Eriksson U, Fischer G, Friemann R, Enkavi G, Tajkhorshid E, Neutze R (2013) Subangstrom resolution X-ray structure details aquaporin-water interactions. Science 340: 1346–1349. doi: 10.1126/science.1234306. pmid:23766328
[16]
Wree D, Wu B, Zeuthen T, Beitz E (2011) Requirement for asparagine in the aquaporin NPA signature motifs for cation exclusion. FEBS J 278: 740–748. doi: 10.1111/j.1742-4658.2010.07993.x. pmid:21205205
[17]
Beitz E, Golldack A, Rothert M, von Bülow J. (2015) Challenges and achievements in the therapeutic modulation of aquaporin functionality. Pharmacol Ther 155: 22–35. doi: 10.1016/j.pharmthera.2015.08.002. pmid:26277280
[18]
Bitter W, Gerrits H, Kieft R, Borst P (1998) The role of transferrin-receptor variation in the host range of Trypanosoma brucei. Nature 391: 499–502. doi: 10.1038/35166. pmid:9461219
[19]
Nok AJ, Nock IH (2002) Transferrin coupled azanthraquinone enhances the killing effect on trypanosomes. The role of lysosomal mannosidase. Parasite 9: 375–379. doi: 10.1051/parasite/2002094375. pmid:12514955
[20]
Zeuthen T, Wu B, Pavlovi?-Djuranovi? S, Holm LM, Uzcategui NL, Duszenko M, Kun JF, Schultz JE, Beitz E (2006) Ammonia permeability of the aquaglyceroporins from Plasmodium falciparum, Toxoplasma gondii and Trypanosoma brucei. Mol Microbiol 61: 1598–1608. doi: 10.1111/j.1365-2958.2006.05325.x. pmid:16889642
[21]
Ludewig G, Williams JM, Li Y, Staben C (1994) Effects of pentamidine isethionate on Saccharomyces cerevisiae. Antimicrob Agents Chemother 38: 1123–1128. doi: 10.1128/AAC.38.5.1123. pmid:8067749
Song J, Almasalmeh A, Krenc D, Beitz E (2012) Molar concentrations of sorbitol and polyethylene glycol inhibit the Plasmodium aquaglyceroporin but not that of E. coli: involvement of the channel vestibules. Biochim Biophys Acta 1818: 1218–1224. doi: 10.1016/j.bbamem.2012.01.025. pmid:22326891
[24]
Martins AP, Marrone A, Ciancetta A, Galán Cobo A, Echevarría M, Moura TF, Re N, Casini A, Soveral G (2012) Targeting aquaporin function: potent inhibition of aquaglyceroporin-3 by a gold-based compound. PLoS One 5: e37435. doi: 10.1371/journal.pone.0037435.
[25]
Froger A, Tallur B, Thomas D, Delamarche C (1998) Prediction of functional residues in water channels and related proteins. Protein Sci 7: 1458–1468. doi: 10.1002/pro.5560070623. pmid:9655351
[26]
Fu D, Libson A, Miercke LJ, Weitzman C, Nollert P, Krucinski J, Stroud RM (2000) Structure of a glycerol-conducting channel and the basis for its selectivity. Science 290: 481–486. doi: 10.1126/science.290.5491.481. pmid:11039922
[27]
Gupta AB, Verma RK, Agarwal V, Vajpai M, Bansal V, Sankararamakrishnan R (2012) MIPModDB: a central resource for the superfamily of major intrinsic proteins. Nucleic Acids Res 40: D362–369. doi: 10.1093/nar/gkr914. pmid:22080560
[28]
Rambow J, Wu B, R?nfeldt D, Beitz E (2014) Aquaporins with anion/monocarboxylate permeability: mechanisms, relevance for pathogen-host interactions. Front Pharmacol 5: 199. doi: 10.3389/fphar.2014.00199. pmid:25225485
[29]
Diallinas G (2014) Understanding transporter specificity and the discrete appearance of channel-like gating domains in transporters. Front Pharmacol 5: 207. doi: 10.3389/fphar.2014.00207. pmid:25309439
[30]
Yool AJ, Campbell EM (2012) Structure, function and translational relevance of aquaporin dual water and ion channels. Mol Aspects Med 33: 553–561. doi: 10.1016/j.mam.2012.02.001. pmid:22342689
[31]
Wu B, Rambow J, Bock S, Holm-Bertelsen J, Wiechert M, Soares AB, Spielmann T, Beitz E (2015) Identity of a Plasmodium lactate/H+ symporter structurally unrelated to human transporters. Nat Commun 6: 6284. doi: 10.1038/ncomms7284. pmid:25669138
[32]
Lü W, Du J, Schwarzer NJ, Gerbig-Smentek E, Einsle O, Andrade SL (2012) The formate channel FocA exports the products of mixed-acid fermentation. Proc Natl Acad Sci U S A 109: 13254–13259. doi: 10.1073/pnas.1204201109. pmid:22847446
[33]
Field MC, Carrington M (2009) The trypanosome flagellar pocket. Nat Rev Microbiol 7: 775–86. doi: 10.1038/nrmicro2221. pmid:19806154
[34]
Damper D, Patton CL (1976) Pentamidine transport in Trypanosoma brucei-kinetics and specificity. Biochem Pharmacol 25: 271–276. pmid:1267824 doi: 10.1016/0006-2952(76)90213-6
[35]
Damper D, Patton CL (1976) Pentamidine transport and sensitivity in brucei-group trypanosomes. J Protozool 23: 349–356. doi: 10.1111/j.1550-7408.1976.tb03787.x. pmid:6797
[36]
Alsford S, Field MC, Horn D (2013) Receptor-mediated endocytosis for drug delivery in African trypanosomes: fulfilling Paul Ehrlich's vision of chemotherapy. Trends Parasitol 29: 207–212. doi: 10.1016/j.pt.2013.03.004. pmid:23601931
[37]
Uzureau P, Uzureau S, Lecordier L, Fontaine F, Tebabi P, Homblé F, Grélard A, Zhendre V, Nolan DP, Lins L, Crowet JM, Pays A, Felu C, Poelvoorde P, Vanhollebeke B, Moestrup SK, Lyngs? J, Pedersen JS, Mottram JC, Dufourc EJ, Pérez-Morga D, Pays E (2013) Mechanism of Trypanosoma brucei gambiense resistance to human serum. Nature 501: 430–434. doi: 10.1038/nature12516. pmid:23965626
[38]
Unciti-Broceta JD, Arias JL, Maceira J, Soriano M, Ortiz-González M, Hernández-Quero J, Mu?óz-Torres M, de Koning HP, Magez S, Garcia-Salcedo JA (2015) Specific cell targeting therapy bypasses drug resistance mechanisms in African trypanosomiasis. PLoS Pathog 11: e1004942. doi: 10.1371/journal.ppat.1004942. pmid:26110623
[39]
Mumberg D, Müller R, Funk M (1994) Regulatable promoters of Saccharomyces cerevisiae: comparison of transcriptional activity and their use for heterologous expression. Nucleic Acids Res 22: 5767–5768. doi: 10.1093/nar/22.25.5767. pmid:7838736
[40]
Marini AM, Soussi-Boudekou S, Vissers S, Andre B (1997) A family of ammonium transporters in Saccharomyces cerevisiae. Mol Cell Biol 17: 4282–4293 pmid:9234685 doi: 10.1128/mcb.17.8.4282
[41]
Ludewig U, von Wirén N, Frommer WB (2002) Uniport of NH4+ by the root hair plasma membrane ammonium transporter LeAMT1;1. J Biol Chem 277: 13548–13555. doi: 10.1074/jbc.M200739200. pmid:11821433
[42]
Garigipati RS (1990) An efficient conversion of nitriles to amidines. Tetrahedron Lett 31: 1969–1972. doi: 10.1016/s0040-4039(00)88891-7
[43]
Roger R, Neilson DG (1961) The Chemistry of Imidates. Chem Rev 61: 179–211. doi: 10.1021/cr60210a003.
[44]
Baker N, Alsford S, Horn D (2011) Genome-wide RNAi screens in African trypanosomes identify the nifurtimox activator NTR and the eflornithine transporter AAT6. Mol Biochem Parasitol 176: 55–57. doi: 10.1016/j.molbiopara.2010.11.010. pmid:21093499
[45]
R?z B, Iten M, Grether-Bühler Y, Kaminsky R, Brun R (1997) The Alamar Blue assay to determine drug sensitivity of African trypanosomes (T.b. rhodesiense and T.b. gambiense) in vitro. Acta Trop 68: 139–147. pmid:9386789 doi: 10.1016/s0001-706x(97)00079-x