In Vivo-Selected Pyrazinoic Acid-Resistant Mycobacterium tuberculosis Strains Harbor Missense Mutations in the Aspartate Decarboxylase PanD and the Unfoldase CIpC1

被引:31
作者
Gopal, Pooja [1 ]
Tasneen, Rokeya [2 ]
Yee, Michelle [1 ]
Lanoix, Jean-Philippe [3 ]
Sarathy, Jansy [4 ]
Rasic, George [4 ]
Li, Liping [4 ]
Dartois, Veronique [4 ]
Nuermberger, Eric [2 ]
Dick, Thomas [1 ]
机构
[1] Natl Univ Singapore, Yong Loo Lin Sch Med, Dept Microbiol & Immunol, Singapore, Singapore
[2] Johns Hopkins Univ, Ctr TB Res, Baltimore, MD USA
[3] Univ Hosp Amiens Picardie, Dept Infect Dis, Amiens, France
[4] Rutgers State Univ, New Jersey Med Sch, Publ Hlth Res Inst, Newark, NJ USA
基金
英国医学研究理事会;
关键词
tuberculosis; pyrazinamide; pyrazinoic acid; resistance; in vivo; PYRAZINAMIDE RESISTANCE; PHTHIOCEROL DIMYCOCEROSATE; PNCA; VIRULENCE; PANTOTHENATE; PROTEASE; MURINE; MICE;
D O I
10.1021/acsinfecdis.7b00017
中图分类号
R914 [药物化学];
学科分类号
100701 ;
摘要
Through mutant selection on agar containing pyrazinoic acid (POA), the bioactive form of the prodrug pyrazinamide (PZA), we recently showed that missense mutations in the aspartate decarboxylase PanD and the unfoldase CIpC1, and loss-of-function mutation of polyketide synthases Mas and PpsA-E involved in phthiocerol dimycocerosate synthesis, cause resistance to POA and PZA in Mycobacterium tuberculosis. Here we first asked whether these in vitro-selected POA/PZA-resistant mutants are attenuated in vivo, to potentially explain the lack of evidence of these mutations among PZA-resistant clinical isolates. Infection of mice with panD, clpC1, and mas/ppsA-E mutants showed that whereas growth of clpC1 and mas/ppsA-E mutants was attenuated, the panD mutant grew as well as the wild-type. To determine whether these resistance mechanisms can emerge within the host, mice infected with wild-type M. tuberculosis were treated with POA, and POA-resistant colonies were confirmed for PZA and POA resistance. Genome sequencing revealed that 82 and 18% of the strains contained missense mutations in panD and clpC1, respectively. Consistent with their lower fitness and POA resistance level, independent mas/ppsA-E mutants were not found. In conclusion, we show that the POA/PZA resistance mechanisms due to panD and clpC1 missense mutations are recapitulated in vivo. Whereas the representative clpC1 mutant was attenuated for growth in the mouse infection model, providing a possible explanation for their absence among clinical isolates, the growth kinetics of the representative panD mutant was unaffected. Why POA/PZA resistance-conferring panD mutations are observed in POA-treated mice but not yet among clinical strains isolated from PZA-treated patients remains to be determined.
引用
收藏
页码:492 / 501
页数:10
相关论文
共 48 条
[1]   The active ClpP protease from M. tuberculosis is a complex composed of a heptameric ClpP1 and a ClpP2 ring [J].
Akopian, Tatos ;
Kandror, Olga ;
Raju, Ravikiran M. ;
UnniKrishnan, Meera ;
Rubin, Eric J. ;
Goldberg, Alfred L. .
EMBO JOURNAL, 2012, 31 (06) :1529-1541
[2]   Identification of a virulence gene cluster of Mycobacterium tuberculosis by signature-tagged transposon mutagenesis [J].
Camacho, LR ;
Ensergueix, D ;
Perez, E ;
Gicquel, B ;
Guilhot, C .
MOLECULAR MICROBIOLOGY, 1999, 34 (02) :257-267
[3]   Identifying Vulnerable Pathways in Mycobacterium tuberculosis by Using a Knockdown Approach [J].
Carroll, Paul ;
Faray-Kele, Marie-Claire ;
Parish, Tanya .
APPLIED AND ENVIRONMENTAL MICROBIOLOGY, 2011, 77 (14) :5040-5043
[4]   Evolution and transmission of drug-resistant tuberculosis in a Russian population [J].
Casali, Nicola ;
Nikolayevskyy, Vladyslav ;
Balabanova, Yanina ;
Harris, Simon R. ;
Ignatyeva, Olga ;
Kontsevaya, Irina ;
Corander, Jukka ;
Bryant, Josephine ;
Parkhill, Julian ;
Nejentsev, Sergey ;
Horstmann, Rolf D. ;
Brown, Timothy ;
Drobniewski, Francis .
NATURE GENETICS, 2014, 46 (03) :279-+
[5]   Genome-wide Mycobacterium tuberculosis variation (GMTV) database: a new tool for integrating sequence variations and epidemiology [J].
Chernyaeva, Ekaterina N. ;
Shulgina, Marina V. ;
Rotkevich, Mikhail S. ;
Dobrynin, Pavel V. ;
Simonov, Serguei A. ;
Shitikov, Egor A. ;
Ischenko, Dmitry S. ;
Karpova, Irina Y. ;
Kostryukova, Elena S. ;
Ilina, Elena N. ;
Govorun, Vadim M. ;
Zhuravlev, Vyacheslav Y. ;
Manicheva, Olga A. ;
Yablonsky, Peter K. ;
Isaeva, Yulia D. ;
Nosova, Elena Y. ;
Mokrousov, Igor V. ;
Vyazovaya, Anna A. ;
Narvskaya, Olga V. ;
Lapidus, Alla L. ;
O'Brien, Stephen J. .
BMC GENOMICS, 2014, 15
[6]   Expression, purification, and biochemical characterization of Mycobacterium tuberculosis aspartate decarboxylase, PanD [J].
Chopra, S ;
Pai, H ;
Ranganathan, A .
PROTEIN EXPRESSION AND PURIFICATION, 2002, 25 (03) :533-540
[7]   Complex lipid determine tissue specific replication of Mycobacterium tuberculosis in mice [J].
Cox, JS ;
Chen, B ;
McNeil, M ;
Jacobs, WR .
NATURE, 1999, 402 (6757) :79-83
[8]   Mycobacterium tuberculosis Strains Lacking Surface Lipid Phthiocerol Dimycocerosate Are Susceptible to Killing by an Early Innate Host Response [J].
Day, Tracey A. ;
Mittler, John E. ;
Nixon, Molly R. ;
Thompson, Cullen ;
Miner, Maurine D. ;
Hickey, Mark J. ;
Liao, Reiling P. ;
Pang, Jennifer M. ;
Shayakhmetov, Dmitry M. ;
Sherman, David R. .
INFECTION AND IMMUNITY, 2014, 82 (12) :5214-5222
[9]   Pyrazinamide resistance in Mycobacterium tuberculosis fails to bite? [J].
den Hertog, Alice L. ;
Sengstake, Sarah ;
Anthony, Richard M. .
PATHOGENS AND DISEASE, 2015, 73 (06)
[10]   Pantothenate and Pantetheine Antagonize the Antitubercular Activity of Pyrazinamide [J].
Dillon, Nicholas A. ;
Peterson, Nicholas D. ;
Rosen, Brandon C. ;
Baughn, Anthony D. .
ANTIMICROBIAL AGENTS AND CHEMOTHERAPY, 2014, 58 (12) :7258-7263