35
Views
0
CrossRef citations to date
0
Altmetric
Papers

Cell-specific temporal infection of the brain in a simian immunodeficiency virus model of human immunodeficiency virus encephalitis

, , , , , , , , , , & show all
Pages 300-311 | Received 18 Dec 2008, Published online: 27 Aug 2009

References

  • Anthony IC, Ramage SN, Carnie FW, Simmonds P, Bell JE. Does drug abuse alter microglial phenotype and cell turnover in the context of advancing HIV infection?. Neuropathol Appl Neurobiol 2005; 31: 325–338
  • Babas T, Dewitt JB, Mankowski JL, Tarwater PM, Clements JE, Zink MC. Progressive selection for neurovirulent genotypes in the brain of SIV-infected macaques. AIDS 2006; 20: 197–205
  • Babas T, Munoz D, Mankowski JL, Tarwater PM, Clements JE, Zink MC. Role of microglial cells in selective replication of simian immunodeficiency genotypes in the brain. J Virol 2003; 77: 208–216
  • Bechmann I, Kwidzinski E, Kovac AD, Simburger E, Horvath T, Gimsa U, Dirnagl U, Priller J, Nitsch R. Turnover of rat brain perivascular cells. Exp Neurol 2001; 168: 242–249
  • Bell JE. An update on the neuropathology of HIV in the HAART era. Histopathology 2004; 45: 549–559
  • Bell JE, Anthony IC, Simmonds P. Impact of HIV on regional and cellular organisation of the brain. Curr HIV Res 2006; 4: 249–257
  • Bonavia A, Bullock BT, Gisselman KM, Margulies BJ, Clements JE. A single amino acid change and truncated TM are sufficient for simian immunodeficiency virus to enter cells using CCR5 in a CD4-independent pathway. Virology 2005; 341: 12–23
  • Chakrabarti L, Hyrtel M, Maire MA, Vazeux R, Dormont D, Montagnier L, Hurtel B. Early viral replication in the brain of SIV-infected Rhesus monkeys. Am J Path 1991; 139: 1273–1280
  • Churchill MJ, Gorry PR, Cowley D, lal L, Sonza S, Purcell DF, Thompson KA, Gabuzda D, McArthur JC, Pardo CA, Wesselingh SL. Use of laser capture microdissection to detect integrated HIV-1 DNA in macrophages and astrocytes from autopsy brain tissue. J NeuroVirol 2006; 12: 146–152
  • Clarke JN, Lake JA, Burrell CJ, Wesselingh SL, Gorry PR, Peng L. Novel pathway of human immunodeficiency virus type 1 uptake and release in astrocytes. Virology 2006; 348: 141–155
  • Clay CC, Rodrigues DS, Ho YS, Fallert BA, Janatpour K, Reinhart TA, Esser U. Neuroinvasion of fluorescein-positive monocytes in acute simian immunodeficiency virus infection. J Virol 2007; 81: 12040–12048
  • Clements JE, Anderson MG, Zink MC, Joag SV, Narayan O. The SIV model of AIDS encephalopathy. Role of neurotropic viruses in diseases. HIV, AIDS and the brain, RW Price, SW Perry. Raven Press, New York 1994; 147–157
  • Clements JE, Babas T, Mankowski JL, Suryanarayana K, Piatak M, Jr, Tarwater PM, Lifson JD, Zink MC. The central nervous system as a reservoir for simian immunodeficiency virus (SIV): steady-state levels of SIV DNA in brain from acute through asymptomatic Infection. J Infect Dis 2002; 186: 905–913
  • Clements JE, Zink MC. Molecular biology and pathogenesis of animal lentivirus infections. Clin Microbiol Rev 1996; 9: 100–117
  • Dore GJ, Correll PK, Li Y, Kaldor JM, Cooper DA, Brew BJ. Changes to AIDS dementia complex in the era of highly active antiretroviral therapy. AIDS 1999; 13: 1249–53
  • Flaherty MT, Hauer DA, Mankowski JL, Zink MC, Clements JE. Molecular and biological characterization of a neurovirulent molecular clone of simian immunodeficiency virus. J Virol 1997; 71: 5790–5798
  • Galea I, Palin K, Newman TA, Van Rooijen N, Perry VH, Boche D. Mannose receptor expression specifically reveals perivascular macrophages in normal, injured, and diseased mouse brain. Glia 2005; 49: 375–384
  • Gonzalez-Scarano F, Martin-Garcia J. The neuropathogenesis of AIDS. Nat Rev Immunol 2005; 5: 69–81
  • Gray F, Scaravilli F, Everall I, Chretien F, An S, Boche D, Adle-Biassette H, Wingertsmann L, Durigon M, Hurtrel B, Chiodi F, Bell JE, Lantos P. Neuropathology of early HIV-1 infection. Brain Path 1996; 6: 1–15
  • Hulette CM, Downey BT, Burger PC. Macrophage markers in diagnostic neuropathology. Am J Surg Path 1992; 16: 493–499
  • Iacono RF, Berria MI. Cell differentiation increases astrocyte phagocytic activity. A quantitative analysis of both GFAP labeling and PAS-stained yeast cells. Medicina (Mex) 1999; 59: 171–175
  • Kalmar B, Kittel A, Lemmens R, Kornyei Z, Madarasz E. Cultured astrocytes react to LPS with increased cyclooxygenase activity and phagocytosis. Neurochem Int 2001; 38: 453–461
  • Kim WK, Alvarez X, Fisher J, Bronfin B, Westmoreland S, McLaurin J, Williams K. CD163 identifies perivascular macrophages in normal and viral encephalitic brains and potential precursors to perivascular macrophages in blood. Am J Pathol 2006; 168: 822–834
  • Kreutzberg GW, Blakemore WF, Graaber MB. Cellular pathology in the central nervous system. Greenfield's neuropathology, DI Graham, PL Lantos. Oxford University Press, New York 1997; 126–137
  • Laast VA, Pardo CA, Tarwater PM, Queen SE, Reinhart TA, Ghosh M, Adams RJ, Zink MC, Mankowski JL. Pathogenesis of simian immunodeficiency virus-induced alterations in macaque trigeminal ganglia. J Neuropathol Exp Neurol 2007; 66: 26–34
  • Liu Y, Liu H, Kim BO, Gattone VH, Li J, Nath A, Blum J, He JJ. CD4-independent infection of astrocytes by human immunodeficiency virus type 1: requirement for the human mannose receptor. J Virol 2004; 78: 4120–4133
  • Mankowski JL, Flaherty MT, Spelman JP, Hauer DA, Didier PJ, Amedee AM, Murphey-Corb M, Kirstein LM, Munoz A, Clements JE, Zink MC. Pathogenesis of simian immunodeficiency virus encephalitis: viral determinants of neurovirulence. J Virol 1997; 71: 6055–6060
  • Mankowski JL, Spelman JP, Ressetar HG, Strandberg JD, Laterra J, Carter DL, Clements JE, Zink MC. Neurovirulent simian immunodeficiency virus replicates productively in endothelial cells of the central nervous system in vivo and in vitro. J Virol 1994; 68: 8202–8208
  • Overholser ED, Coleman GD, Bennett JL, Casaday RJ, Zink MC, Barber SA, Clements JE. Expression of simian immunodeficiency virus Nef in astorcytes during acute and terminal infection and requirement of Nef for optimal replication of neurovirulent SIV in vitro. J Virol 2003; 77: 6855–6866
  • Petito CK, Chen H, Mastri AR, Torres-Munoz J, Roberts B, Wood C. HIV infection of choroid plexus in AIDS and asymptomatic HIV-infected patients suggests that the choroid plexus may be a reservoir of productive infection. J NeuroVirol 1999; 5: 670–677
  • Rothenaigner I, Kramer S, Ziegler M, Wolff H, Kleinschmidt A, Brack-Werner R. Long-term HIV-1 infection of neural progenitor populations. AIDS 2007; 21: 2271–2281
  • Ryzhova EV, Crino P, Shawver L, Westmoreland SV, Lackner AA, Gonzalez-Scarano F. Simian immunodeficiency virus encephalitis: analysis of envelope sequences from individual brain multinucleated giant cells and tissue samples. Virology 2002; 297: 57–67
  • Sacktor N. The epidemiology of human immunodeficiency virus-associated neurological disease in the era of highly active antiretroviral therapy. J NeuroVirol 2002; 8: 115–121
  • Schuetze K, Becker I, Becker KF, Thalhammer S, Strack R, Heckl WM, Bohm M, Posl H. Cut out or poke in—the key to the world of single genes: laser micromanipulation as a valuable tool on the look-out for the origin of disease. Genet Anal 1997; 14: 1–8
  • Schwartz L, Civitello L, Dunn-Pirio A, Ryschkewitsch S, Berry E, Cavert W, Kinzel N, Lawrence DMP, Hazra R, Major EO. Evidence of human immunodeficiency virus type 1 infection of nestin-positive neural progenitors in archival pediatric brain tissue. J NeuroVirol 2007; 13: 274–283
  • Sieczkarski SB, Whittaker GR. Dissecting virus entry via endocytosis. J Gen Virol 2002; 83: 1535–1545
  • Speth C, Diericha MP, Sopperb S. HIV-infection of the central nervous system: the tightrope walk of innate immunity. Mol Immunol 2005; 42: 213–228
  • Subramanian S, Bourdette DN, Corless C, Vandenbark AA, Offner H, Jones RE. T lymphocytes promote the development of bone marrow-derived APC in the central nervous system. J Immunol 2001; 166: 370–376
  • Thompson KA, Churchill MJ, Gorry PR, Stervjoski J, Oerlichs RB, Wesselingh SL, McLean CA. Astrocyte specific viral strains in HIV dementia. Ann Neurol 2004; 56: 873–877
  • Thompson KA, McArthur JC, Wesselingh SL. Correlation between neurological progression and astrocyte apoptosis in HIV-associated dementia. Ann Neurol 2001; 49: 745–752
  • Trillo-Pazos G, Diamanturos A, Rislove L, Menza T, Chao W, Belem P, Sadiq S, Morgello S, Sharer L, Volsky DJ. Detection of HIV-1 DNA in microglia/macrophages, astroyctes and neurons isolated from brain tissue with HIV-1 encephalitis by laser capture microdissection. Brain Pathol 2003; 13: 144–154
  • Williams KC, Corey S, Westmoreland SV, Pauley D, Knight H, deBakker C, Alvarez X, Lackner AA. Perivascular macrophages are the primary cell type productively infected by simian immunodeficiency virus in the brains of macaques: implications for the neuropathogenesis of AIDS. J Exp Med 2001; 193: 905–916
  • Zink MC, Amedee AM, Mankowski JL, Craig L, Didier PJ, Carter DL, Munoz A, Murphey-Corb M, Clements JE. Pathogenesis of SIV encephalitis. Selection and replication of neurovirulent SIV. Am J Pathol 1997; 151: 793–803
  • Zink MC, Spelman JP, Robinson RB, Clements JE. SIV infection of macaques—modeling the progression to AIDS dementia. J NeuroVirol 1998; 4: 249–259
  • Zink MC, Suryanarayana K, Mankowski JL, Shen A, Piatak M, Spelman JP, Carter DL, Adams RJ, Lifson JD, Clements JE. High viral load in the cerebrospinal fluid and brain correlates with severity of simian immunodeficiency virus encephalitis. J Virol 1999; 73: 10480–10488

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.