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The Type I NADH Dehydrogenase of Counters Phagosomal NOX2 Activity to Inhibit TNF-α-Mediated Host Cell Apoptosis


The capacity of infected cells to undergo apoptosis upon insult with a pathogen is an ancient innate immune defense mechanism. Consequently, the ability of persisting, intracellular pathogens such as the human pathogen Mycobacterium tuberculosis (Mtb) to inhibit infection-induced apoptosis of macrophages is important for virulence. The nuoG gene of Mtb, which encodes the NuoG subunit of the type I NADH dehydrogenase, NDH-1, is important in Mtb-mediated inhibition of host macrophage apoptosis, but the molecular mechanism of this host pathogen interaction remains elusive. Here we show that the apoptogenic phenotype of MtbΔnuoG was significantly reduced in human macrophages treated with caspase-3 and -8 inhibitors, TNF-α-neutralizing antibodies, and also after infection of murine TNF−/− macrophages. Interestingly, incubation of macrophages with inhibitors of reactive oxygen species (ROS) reduced not only the apoptosis induced by the nuoG mutant, but also its capacity to increase macrophage TNF-α secretion. The MtbΔnuoG phagosomes showed increased ROS levels compared to Mtb phagosomes in primary murine and human alveolar macrophages. The increase in MtbΔnuoG induced ROS and apoptosis was abolished in NOX-2 deficient (gp91−/−) macrophages. These results suggest that Mtb, via a NuoG-dependent mechanism, can neutralize NOX2-derived ROS in order to inhibit TNF-α-mediated host cell apoptosis. Consistently, an Mtb mutant deficient in secreted catalase induced increases in phagosomal ROS and host cell apoptosis, both of which were dependent upon macrophage NOX-2 activity. In conclusion, these results serendipitously reveal a novel connection between NOX2 activity, phagosomal ROS, and TNF-α signaling during infection-induced apoptosis in macrophages. Furthermore, our study reveals a novel function of NOX2 activity in innate immunity beyond the initial respiratory burst, which is the sensing of persistent intracellular pathogens and subsequent induction of host cell apoptosis as a second line of defense.


Vyšlo v časopise: The Type I NADH Dehydrogenase of Counters Phagosomal NOX2 Activity to Inhibit TNF-α-Mediated Host Cell Apoptosis. PLoS Pathog 6(4): e32767. doi:10.1371/journal.ppat.1000864
Kategorie: Research Article
prolekare.web.journal.doi_sk: https://doi.org/10.1371/journal.ppat.1000864

Souhrn

The capacity of infected cells to undergo apoptosis upon insult with a pathogen is an ancient innate immune defense mechanism. Consequently, the ability of persisting, intracellular pathogens such as the human pathogen Mycobacterium tuberculosis (Mtb) to inhibit infection-induced apoptosis of macrophages is important for virulence. The nuoG gene of Mtb, which encodes the NuoG subunit of the type I NADH dehydrogenase, NDH-1, is important in Mtb-mediated inhibition of host macrophage apoptosis, but the molecular mechanism of this host pathogen interaction remains elusive. Here we show that the apoptogenic phenotype of MtbΔnuoG was significantly reduced in human macrophages treated with caspase-3 and -8 inhibitors, TNF-α-neutralizing antibodies, and also after infection of murine TNF−/− macrophages. Interestingly, incubation of macrophages with inhibitors of reactive oxygen species (ROS) reduced not only the apoptosis induced by the nuoG mutant, but also its capacity to increase macrophage TNF-α secretion. The MtbΔnuoG phagosomes showed increased ROS levels compared to Mtb phagosomes in primary murine and human alveolar macrophages. The increase in MtbΔnuoG induced ROS and apoptosis was abolished in NOX-2 deficient (gp91−/−) macrophages. These results suggest that Mtb, via a NuoG-dependent mechanism, can neutralize NOX2-derived ROS in order to inhibit TNF-α-mediated host cell apoptosis. Consistently, an Mtb mutant deficient in secreted catalase induced increases in phagosomal ROS and host cell apoptosis, both of which were dependent upon macrophage NOX-2 activity. In conclusion, these results serendipitously reveal a novel connection between NOX2 activity, phagosomal ROS, and TNF-α signaling during infection-induced apoptosis in macrophages. Furthermore, our study reveals a novel function of NOX2 activity in innate immunity beyond the initial respiratory burst, which is the sensing of persistent intracellular pathogens and subsequent induction of host cell apoptosis as a second line of defense.


Zdroje

1. BedardK

KrauseKH

2007 The NOX family of ROS-generating NADPH oxidases: physiology and pathophysiology. Physiol Rev 87 245 313

2. LetoTL

MorandS

HurtD

UeyamaT

2009 Targeting and Regulation of Reactive Oxygen Species Generation by Nox Family NADPH Oxidases. Antioxid Redox Signal

3. FangFC

2004 Antimicrobial reactive oxygen and nitrogen species: concepts and controversies. Nat Rev Microbiol 2 820 832

4. SavinaA

AmigorenaS

2007 Phagocytosis and antigen presentation in dendritic cells. Immunol Rev 219 143 156

5. FreemanAF

HollandSM

2007 Persistent bacterial infections and primary immune disorders. Curr Opin Microbiol 10 70 75

6. AllenLA

BeecherBR

LynchJT

RohnerOV

WittineLM

2005 Helicobacter pylori disrupts NADPH oxidase targeting in human neutrophils to induce extracellular superoxide release. J Immunol 174 3658 3667

7. Garcia-GarciaJC

Rennoll-BankertKE

PellyS

MilstoneAM

DumlerJS

2009 Silencing of host cell CYBB gene expression by the nuclear effector AnkA of the intracellular pathogen Anaplasma phagocytophilum. Infect Immun 77 2385 2391

8. LinM

RikihisaY

2007 Degradation of p22phox and inhibition of superoxide generation by Ehrlichia chaffeensis in human monocytes. Cell Microbiol 9 861 874

9. AllenLA

McCaffreyRL

2007 To activate or not to activate: distinct strategies used by Helicobacter pylori and Francisella tularensis to modulate the NADPH oxidase and survive in human neutrophils. Immunol Rev 219 103 117

10. GreenbergJT

YaoN

2004 The role and regulation of programmed cell death in plant-pathogen interactions. Cell Microbiol 6 201 211

11. HillemanMR

2004 Strategies and mechanisms for host and pathogen survival in acute and persistent viral infections. Proc Natl Acad Sci U S A 101 Suppl 2 14560 14566

12. CarmenJC

SinaiAP

2007 Suicide prevention: disruption of apoptotic pathways by protozoan parasites. Mol Microbiol 64 904 916

13. BrikenV

2008 Molecular mechanisms of host-pathogen interactions and their potential for the discovery of new drug targets. Curr Drug Targets 9 150 157

14. SharmaM

RudelT

2009 Apoptosis resistance in Chlamydia-infected cells: a fate worse than death? FEMS Immunol Med Microbiol 55 154 161

15. DereticV

2006 Autophagy as an immune defense mechanism. Curr Opin Immunol 18 375 382

16. RussellDG

2007 Who puts the tubercle in tuberculosis? Nat Rev Microbiol 5 39 47

17. PietersJ

2008 Mycobacterium tuberculosis and the macrophage: maintaining a balance. Cell Host Microbe 3 399 407

18. BrikenV

MillerJL

2008 Living on the edge: inhibition of host cell apoptosis by Mycobacterium tuberculosis. Future Microbiol 3 415 422

19. KeaneJ

RemoldHG

KornfeldH

2000 Virulent Mycobacterium tuberculosis strains evade apoptosis of infected alveolar macrophages. J Immunol 164 2016 2020

20. Balcewicz-SablinskaMK

KeaneJ

KornfeldH

RemoldHG

1998 Pathogenic Mycobacterium tuberculosis evades apoptosis of host macrophages by release of TNF-R2, resulting in inactivation of TNF-alpha. J Immunol 161 2636 2641

21. OddoM

RennoT

AttingerA

BakkerT

MacDonaldHR

1998 Fas ligand-induced apoptosis of infected human macrophages reduces the viability of intracellular Mycobacterium tuberculosis. J Immunol 160 5448 5454

22. SlyLM

Hingley-WilsonSM

ReinerNE

McMasterWR

2003 Survival of Mycobacterium tuberculosis in host macrophages involves resistance to apoptosis dependent upon induction of antiapoptotic Bcl-2 family member Mcl-1. J Immunol 170 430 437

23. LeeJ

RemoldHG

IeongMH

KornfeldH

2006 Macrophage apoptosis in response to high intracellular burden of Mycobacterium tuberculosis is mediated by a novel caspase-independent pathway. J Immunol 176 4267 4274

24. GanH

LeeJ

RenF

ChenM

KornfeldH

2008 Mycobacterium tuberculosis blocks crosslinking of annexin-1 and apoptotic envelope formation on infected macrophages to maintain virulence. Nat Immunol 9 1189 1197

25. DivangahiM

ChenM

GanH

DesjardinsD

HickmanTT

2009 Mycobacterium tuberculosis evades macrophage defenses by inhibiting plasma membrane repair. Nat Immunol 10 899 906

26. VelmuruganK

ChenB

MillerJL

AzogueS

GursesS

2007 Mycobacterium tuberculosis nuoG is a virulence gene that inhibits apoptosis of infected host cells. PLoS Pathogens 3 e110 doi:10.1371/journal.ppat.0030110

27. HincheyJ

LeeS

JeonBY

BasarabaRJ

VenkataswamyMM

2007 Enhanced priming of adaptive immunity by a proapoptotic mutant of Mycobacterium tuberculosis. J Clin Invest 117 2279 2288

28. JayakumarD

JacobsWRJr

NarayananS

2007 Protein kinase E of Mycobacterium tuberculosis has a role in the nitric oxide stress response and apoptosis in a human macrophage model of infection. Cell Microbiol

29. SiegelRM

2006 Caspases at the crossroads of immune-cell life and death. Nat Rev Immunol 6 308 317

30. FlynnJL

GoldsteinMM

ChanJ

TrieboldKJ

PfefferK

1995 Tumor necrosis factor-alpha is required in the protective immune response against Mycobacterium tuberculosis in mice. Immunity 2 561 572

31. FratazziC

ArbeitRD

CariniC

Balcewicz-SablinskaMK

KeaneJ

1999 Macrophage apoptosis in mycobacterial infections. J Leukoc Biol 66 763 764

32. PapaS

BubiciC

ZazzeroniF

PhamCG

KuntzenC

2006 The NF-kappaB-mediated control of the JNK cascade in the antagonism of programmed cell death in health and disease. Cell Death Differ 13 712 729

33. KamataH

HondaS

MaedaS

ChangL

HirataH

2005 Reactive oxygen species promote TNFalpha-induced death and sustained JNK activation by inhibiting MAP kinase phosphatases. Cell 120 649 661

34. GunasekarPG

KanthasamyAG

BorowitzJL

IsomGE

1995 Monitoring intracellular nitric oxide formation by dichlorofluorescin in neuronal cells. J Neurosci Methods 61 15 21

35. NakanoH

NakajimaA

Sakon-KomazawaS

PiaoJH

XueX

2006 Reactive oxygen species mediate crosstalk between NF-kappaB and JNK. Cell Death Differ 13 730 737

36. ShenHM

PervaizS

2006 TNF receptor superfamily-induced cell death: redox-dependent execution. FASEB J 20 1589 1598

37. ImlayJA

2008 Cellular defenses against superoxide and hydrogen peroxide. Annu Rev Biochem 77 755 776

38. BlanderJM

2007 Coupling Toll-like receptor signaling with phagocytosis: potentiation of antigen presentation. Trends Immunol 28 19 25

39. SchutzeS

TchikovV

Schneider-BrachertW

2008 Regulation of TNFR1 and CD95 signalling by receptor compartmentalization. Nat Rev Mol Cell Biol 9 655 662

40. OakleyFD

AbbottD

LiQ

EngelhardtJ

2008 Signaling Components of Redox Active Endosomes: The Redoxosomes. Antioxid Redox Signal

41. BowdishDM

SakamotoK

KimMJ

KroosM

MukhopadhyayS

2009 MARCO, TLR2, and CD14 are required for macrophage cytokine responses to mycobacterial trehalose dimycolate and Mycobacterium tuberculosis. PLoS Pathog 5 e1000474 doi:10.1371/journal.ppat.1000474

42. LevitanI

VolkovS

SubbaiahPV

2009 Oxidized LDL: Diversity, patterns of recognition and pathophysiology. Antioxid Redox Signal

43. BarthelR

TsytsykovaAV

BarczakAK

TsaiEY

DascherCC

2003 Regulation of tumor necrosis factor alpha gene expression by mycobacteria involves the assembly of a unique enhanceosome dependent on the coactivator proteins CBP/p300. Mol Cell Biol 23 526 533

44. YangCS

ShinDM

KimKH

LeeZW

LeeCH

2009 NADPH oxidase 2 interaction with TLR2 is required for efficient innate immune responses to mycobacteria via cathelicidin expression. J Immunol 182 3696 3705

45. FriedrichT

BottcherB

2004 The gross structure of the respiratory complex I: a Lego System. Biochim Biophys Acta 1608 1 9

46. ShiL

SohaskeyCD

KanaBD

DawesS

NorthRJ

2005 Changes in energy metabolism of Mycobacterium tuberculosis in mouse lung and under in vitro conditions affecting aerobic respiration. Proc Natl Acad Sci U S A 102 15629 15634

47. RaoSP

AlonsoS

RandL

DickT

PetheK

2008 The protonmotive force is required for maintaining ATP homeostasis and viability of hypoxic, nonreplicating Mycobacterium tuberculosis. Proc Natl Acad Sci U S A 105 11945 11950

48. Gonzalo-AsensioJ

MostowyS

Harders-WesterveenJ

HuygenK

Hernandez-PandoR

2008 PhoP: a missing piece in the intricate puzzle of Mycobacterium tuberculosis virulence. PLoS ONE 3 e3496 doi:10.1371/journal.pone.0003496

49. RyndakM

WangS

SmithI

2008 PhoP, a key player in Mycobacterium tuberculosis virulence. Trends Microbiol 16 528 534

50. LeeJS

KrauseR

SchreiberJ

MollenkopfHJ

KowallJ

2008 Mutation in the transcriptional regulator PhoP contributes to avirulence of Mycobacterium tuberculosis H37Ra strain. Cell Host Microbe 3 97 103

51. PerezE

SamperS

BordasY

GuilhotC

GicquelB

2001 An essential role for phoP in Mycobacterium tuberculosis virulence. Mol Microbiol 41 179 187

52. LodgeR

DialloTO

DescoteauxA

2006 Leishmania donovani lipophosphoglycan blocks NADPH oxidase assembly at the phagosome membrane. Cell Microbiol 8 1922 1931

53. BraunsteinM

EspinosaBJ

ChanJ

BelisleJT

JacobsWRJr

2003 SecA2 functions in the secretion of superoxide dismutase A and in the virulence of Mycobacterium tuberculosis. Mol Microbiol 48 453 464

54. ChanJ

XingY

MagliozzoRS

BloomBR

1992 Killing of virulent Mycobacterium tuberculosis by reactive nitrogen intermediates produced by activated murine macrophages. J Exp Med 175 1111 1122

55. NgVH

CoxJS

SousaAO

MacMickingJD

McKinneyJD

2004 Role of KatG catalase-peroxidase in mycobacterial pathogenesis: countering the phagocyte oxidative burst. Mol Microbiol 52 1291 1302

56. PiddingtonDL

FangFC

LaessigT

CooperAM

OrmeIM

2001 Cu,Zn superoxide dismutase of Mycobacterium tuberculosis contributes to survival in activated macrophages that are generating an oxidative burst. Infect Immun 69 4980 4987

Štítky
Hygiena a epidemiológia Infekčné lekárstvo Laboratórium

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PLOS Pathogens


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