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Biomedical subjects

C A Jordan

Publications and source records attributed to C A Jordan.

7 recordsLinked to original sources

Infection of brain microglial cells by human immunodeficiency virus type 1 is CD4 dependent.

In the central nervous system of AIDS patients, human immunodeficiency virus (HIV) infects primarily microglia, a cell type of bone marrow origin. Moreover, microglial cells isolated from adult human brain support the replication of macrophage-adapted strains of HIV type 1 (HIV-1) (B.A. Watkins, H.H. Dorn, W.B. Kelly, R.C. Armstrong, B. Potts, F. Michaels, C.V. Kufta, and M. Dubois-Dalcq, Science 249:549-553, 1990). To determine whether the CD4 receptor, which is expressed in brain, mediates the entry of HIV-1 in microglial cells, we analyzed CD4 transcript expression in cultured microglia using highly sensitive polymerase chain reaction detection of cDNAs synthesized from RNA. With this method, CD4 transcripts could be detected in cultured microglia--as well as in various human brain regions and cultured macrophages used as positive controls--along with transcripts for the LDL and Fc receptors which are characteristic of cells of the macrophage lineage. We then attempted to block viral entry into microglial cells using anti-CD4 antibodies or soluble CD4 (sCD4), which recognize binding sites on CD4 and HIV-1 glycoprotein gp120, respectively. Cultures were pretreated with blocking antibodies (Leu-3a, OKT4A) or virus was preincubated with sCD4 prior to infection with HIV-1 strain AD87(M) or BaL. With either viral strain, these treatments resulted in the prevention of infection or significant and dose-dependent reduction in the number of infected cells and in the levels of reverse transcriptase or p24 antigen released in the medium. Thus, brain-derived microglial cells, which are the primary target of HIV-1 infection in the brain, express the CD4 receptor and this receptor is effectively used for viral entry in vitro.

Acquired Immunodeficiency Syndrome

Differential exon expression in myelin basic protein transcripts during central nervous system (CNS) remyelination.

1. In order to characterize some of the molecular events leading to repair of myelin in the adult central nervous system (CNS), we examined the expression of transcripts for myelin basic protein (MBP) during remyelination in the mouse. C57B1/6 mice develop a demyelinating disease when glial cells are selectively infected by the A59 strain of mouse coronavirus. The virus is spontaneously cleared from the mice by 4 weeks postinfection (WPI), a time when remyelination is starting. 2. At 3 WPI total MBP transcripts are decreased by 75% in demyelinating lesions compared to control white matter. Using RNase protection assays and in situ hybridization with probes for particular MBP exons, we detected an increase in MBP transcripts containing exon 2 information, coincident with the earliest histological signs of remyelination. 3. The expression of MBP transcripts containing exon 2 information was first seen clustered in the perinuclear cytoplasm of oligodendrocytes scattered within the lesions. This is reminiscent of the increased levels and perinuclear clustering of MBP transcripts containing exon 2 seen during early developmental myelination. The peak abundance of exon 2-containing transcripts in the lesions was 13-fold that seen in control white matter. At later stages of remyelination, additional forms of MBP transcripts (without exon 2) increased and their distribution was more diffuse. 4. Thus, during remyelination, preforms of MBP transcripts, which are normally present at low levels in the adult CNS, are abundantly expressed and regulated in a manner similar to that observed in developmental myelination.

Animals

Expression of viral and myelin gene transcripts in a murine CNS demyelinating disease caused by a coronavirus.

C57BI/6N mice develop a CNS demyelinating disease when inoculated intracranially at 4 weeks of age with the A59 strain of mouse hepatitis virus (MHV-A59). In order to explore the virus-host interactions, the histological features of the demyelinating disease were correlated with the spatial and temporal distribution of viral transcripts and the expression of oligodendrocyte-specific genes (myelin basic protein, proteolipid protein, myelin-associated glycoprotein, and 2',3' cyclic nucleotide 3'-phosphohydrolase) in the spinal cord of diseased mice. Three distinct phases in the disease were identified. In the first phase, 1 week postinfection (1 WPI), virus replication was widespread in both gray and white matter but was preferentially occurring in glial cells. In the ventral and dorsal root zones where viral transcripts were most abundant, all myelin gene transcripts were decreased before demyelination was seen. During the second phase of the disease (2-3 WPI), viral transcripts decreased in abundance and became restricted to the white matter. Numerous demyelinating lesions were observed and were characterized by inflammatory cells, paucity of oligodendrocytes, and a profound decrease of all myelin gene transcripts. In the third phase of the disease (4-6 WPI) no viral transcripts were detected, and remyelination began. In the lesions and the tissue surrounding them, transcripts of all myelin genes increased to levels above normal. The increased expression of myelin gene transcripts occurred in a synchronized manner and with a cellular distribution reminiscent of that seen in developmental myelination. These molecular events correlated with efficient remyelination and clinical recovery in this murine demyelinating disease.

Animals

A radiographic and histologic study of fracture healing in osteopetrotic rats.

Repair of tibial fractures in osteopetrotic rats was delayed in comparison to that of normal littermates, due to reduced remodeling. Reduced bone resorption, known to be the cause of the disease in this mutation, is expressed in both skeletal development and fracture repair. The possible implications for human juvenile osteopetrosis are discussed.

Animals