Abstract
Rights: UNKNOWN · cc-by-nc-nd · Source: journal-auto-sync:external:CROSSREF_ISSN
Contact and support
Need help, have a question, or want to contact the ResearchHub team?
© 2026 ResearchHub. Built for responsible scholarly connection.
Andreas Jacobs, Xandra O. Breakefield, Cornel Fraefel
Abstract
Rights: UNKNOWN · cc-by-nc-nd · Source: journal-auto-sync:external:CROSSREF_ISSN
Authors
Institutions
No ROR-resolved institution is linked to this work yet.
Provenance
crossref
Confidence 100%
pubmed
Confidence 98%
europepmc
Confidence 96%
unpaywall
Confidence 95%
doaj
Confidence 92%
datacite
Confidence 0%
No local reference links have been materialized yet.
No local citing links have been materialized yet.
Neurological Disorders: An Overwiew
1998
Benefits and risks of hosting animal cells in the human brain
10.1038/nm0997-964 · 1997
Herpes Simplex Viruses and Their Replication
1996
Sequence determination and genetic content of the short unique region in the genome of herpes simplex virus type 1
10.1016/0022-2836(85)90320-1 · 1985
The complete DNA sequence of the long unique region in the genome of herpes simplex virus type 1
10.1099/0022-1317-69-7-1531 · 1988
Regulation of herpesvirus macromolecular synthesis: I
1974
Induction of both thymidine and deoxycytidine kinase activity by herpes viruses
10.1099/0022-1317-24-3-465 · 1974
Biochemical studies on the herpes simplex virus-specified deoxypyrimidine kinase activity
10.1099/0022-1317-24-3-481 · 1974
9-(2-Hydroxyethoxymethyl) guanine activity against viruses of the herpes group
10.1038/272583a0 · 1978
Tumor chemosensitivity conferred by inserted herpes thymidine kinase genes: paradigm for a prospective cancer control strategy
1986
Imaging of adenoviral-directed herpes simplex virus type 1 thymidine kinase reporter gene expression in mice with radiolabeled ganciclovir
1998
Imaging adenoviral-directed reporter gene expression in living animals with positron emission tomography
10.1073/pnas.96.5.2333 · 1999
Imaging HSV-1 vector replication and gene delivery in vivo
1999
Quantitative autoradiographic mapping of herpes simplex virus encephalitis with a radiolabeled antiviral drug
10.1126/science.7112121 · 1982
Imaging the expression of transfected genes in vivo
1995
Imaging herpes virus thymidine kinase gene transfer and expression by positron emission tomography
1998
Identification and separation of the two subunits of the herpes simplex virus ribonucleotide reductase
10.1128/jvi.57.3.1177-1181.1986 · 1986
Induction of uracil-DNA glycosylase and dUTP nucleotidohydrolase activity in herpes simplex virus-infected human cells
10.1016/s0021-9258(19)68704-1 · 1981
Herpes simplex virus type 1 alkaline nuclease is required for efficient processing of viral DNA replication intermediates
10.1128/jvi.70.4.2075-2085.1996 · 1996
Proteins specified by herpes simplex virus: XII
1974
Proteins specified by herpes simplex virus: V
1972
Herpes simplex virus glycoproteins associated with different morphological entities projecting from the virion envelope
10.1099/0022-1317-68-3-715 · 1987
Glycoprotein C of herpes simplex virus type 1 plays a principal role in the adsorption of virus to cells and in infectivity
10.1128/jvi.65.3.1090-1098.1991 · 1991
Herpes simplex virus type 1 entry through a cascade of virus-cell interactions requires different roles of gD and gH in penetration
10.1128/jvi.66.8.5002-5012.1992 · 1992
Herpes simplex virus glycoprotein K promotes egress of virus particles
10.1128/jvi.69.9.5401-5413.1995 · 1995
Herpes simplex virus glycoproteins E and I facilitate cell-to-cell spread in vivo and across junctions of cultured cells
10.1128/jvi.68.2.834-845.1994 · 1994
Antigenic structure of soluble herpes simplex virus (HSV) glycoprotein D correlates with inhibition of HSV infection
10.1128/jvi.71.4.2940-2946.1997 · 1997
The gH-gL complex of herpes simplex virus (HSV) stimulates neutralizing antibody and protects mice against HSV type 1 challenge
10.1128/jvi.72.1.65-72.1998 · 1998
Glycoprotein C of herpes simplex virus 1 acts as a receptor for the C3b complement component on infected cells
10.1038/309633a0 · 1984
Immune evasion properties of herpes simplex virus type 1 glycoprotein gC
10.1128/jvi.70.7.4253-4260.1996 · 1996
Glycoprotein C of herpes simplex virus 1 is an inhibitor of the complement cascade
10.4049/jimmunol.137.5.1636 · 1986
Glycoprotein C of herpes simplex virus type 1 is essential for the virus to evade antibody-independent complement-mediated virus inactivation and lysis of virus-infected cells
10.1099/0022-1317-72-4-915 · 1991
Mechanism of complement inactivation by glycoprotein C of herpes simplex virus
10.4049/jimmunol.158.4.1763 · 1997
Herpes simplex virus type 1 glycoprotein gC mediates immune evasion in vivo
10.1128/jvi.72.10.8257-8263.1998 · 1998
Membrane proteins specified by herpes simplex viruses: V
1979
Herpes simplex virus type 1 encodes two Fc receptors which have different binding characteristics for monomeric immunoglobulin G (IgG) and IgG complexes
10.1128/jvi.64.6.2725-2731.1990 · 1990
Herpes simplex virus type 1 Fc receptor protects infected cells from antibodydependent cellular cytotoxicity
10.1128/jvi.65.12.7046-7050.1991 · 1991
A novel function of the herpes simplex virus type 1 Fc receptor: participation in bipolar bridging of antiviral immunoglobulin G
10.1128/jvi.63.11.4479-4488.1989 · 1989
Herpes simplex virus immunoglobulin G Fc receptor activity depends on a complex of two viral glycoproteins, gE and gl
10.1128/jvi.62.4.1347-1354.1988 · 1988
Direct evidence for antibody bipolar bridging on herpes simplex virus-infected cells
1992
Varicella-zoster-virus myelitiswithout herpes
10.1055/s-2008-1043009 · doi-reference
Recovery of herpes-simplex virus from human trigeminal ganglions
10.1056/nejm197303292881303 · doi-reference
Infections with herpes simplex viruses (1)
10.1056/nejm198603133141105 · doi-reference
The probability of in vivo reactivation of herpes simplex virus type 1 increases with the number of latently infected neurons in the ganglia
10.1128/jvi.72.8.6888-6892.1998 · doi-reference
Induction of cellular transcription factors in trigeminal ganglia of mice by corneal scarification, herpes simplex virus type 1 infection, and explantation of trigeminal ganglia
10.1128/jvi.65.8.4142-4152.1991 · doi-reference
10.1128/jvi.72.2.1252-1261.1998
10.1128/jvi.72.2.1252-1261.1998 · doi-reference
Gene expression during reactivation of herpes simplex virus type 1 from latency in the peripheral nervous system is different from that during lytic infection of tissue cultures
10.1128/jvi.71.7.5268-5276.1997 · doi-reference
The latent herpes simplex virus type 1 genome copy number in individual neurons is virus strain specific and correlates with reactivation
10.1128/jvi.72.7.5343-5350.1998 · doi-reference
Evidence for a novel regulatory pathway for herpes simplex virus gene expression in trigeminal ganglion neurons
10.1128/jvi.67.9.5383-5393.1993 · doi-reference
Quantitative polymerase chain reaction analysis of herpes simplex virus DNA in ganglia of mice infected with replication-incompetent mutants
10.1128/jvi.64.9.4288-4295.1990 · doi-reference
Replication, establishment of latency, and induced reactivation of herpes simplex virus gamma(1)34.5 deletion mutants in rodent models
10.1172/jci116527 · doi-reference
Characterization of a nerve growth factor-inducible cellular activity that enhances herpes simplex virus type 1 gene expression and replication of an ICPO null mutant in cells of neural lineage
10.1128/jvi.72.7.5373-5382.1998 · doi-reference
Reactivation of latent herpes simplex virus by adenovirus recombinants encoding mutant IE-0 gene products
10.1128/jvi.64.9.4489-4498.1990 · doi-reference
The herpes simplex virus type 1 immediate-early protein ICPO is necessary forthe efficient establishment of latent infection
10.1128/jvi.71.9.6777-6785.1997 · doi-reference
A cellular factor binding to the TAATGARAT DNA sequence prevents the expression of the HSV immediate-early genes following infection of nonpermissive cell lines derived from dorsal root ganglion neurons
10.1016/0014-4827(91)90132-e · doi-reference
Two herpes simplex virus type 1 latency-active promoters differ in their contributions to latency-associated transcript expression during lytic and latent infections
10.1128/jvi.69.12.7899-7908.1995 · doi-reference
cis-acting elements involved in transcriptional regulation of the herpes simplex virus type 1 latency-associated promoter 1 (LAP1) in vitro and in vivo
10.1128/jvi.70.8.5384-5394.1996 · doi-reference
Herpes simplex virus type 1 latency-associated transcript (LAT) promoter deletion mutants can express a 2 kilobase transcript mapping to the LAT region
10.1128/jvi.67.12.7276-7283.1993 · doi-reference
A novel latency-active promoter is contained within the herpes simplex virus type 1 UL flanking repeats
10.1128/jvi.68.4.2239-2252.1994 · doi-reference
In vivo deletion analysis of the herpes simplex virus type 1 latencyassociated transcript promoter
10.1128/jvi.69.4.2264-2270.1995 · doi-reference
Identification of the latency-associated transcript promoter by expression of rabbit beta globin mRNA in mouse sensory nerve ganglia latently infected with a recombinant herpes simplex virus
10.1128/jvi.63.9.3844-3851.1989 · doi-reference
Localization of cis-acting sequence requirements in the promoter of the latency-associated transcript of herpes simplex virus type 1 required for cell-typespecific activity
10.1128/jvi.66.6.3573-3582.1992 · doi-reference
The latencyassociated promoter of herpes simplex virus type 1 requires a region downstream of the transcription start site for long-term expression during latency
10.1128/jvi.71.9.6714-6719.1997 · doi-reference
Herpes simplex virus type 1 latency-associated transcription unit promotes anatomical sitedependent establishment and reactivation from latency
10.1128/jvi.66.4.2157-2169.1992 · doi-reference
The region of the herpes simplex virus type 1 LAT gene that is co-linear with the ICP34.5 gene is not involved in spontaneous reactivation
10.1128/jvi.70.1.282-291.1996 · doi-reference
A437-base-pair deletion at the beginning of the latency-associated transcript promoter significantly reduced adrenergically induced herpes simplex virus type 1 ocular reactivation in latently infected rabbits
10.1128/jvi.71.9.6555-6559.1997 · doi-reference
In vivo epinephrine reactivation of ocular herpes simplex virus type 1 in the rabbit is correlated to a 370-base-pair region located between the promoter and the 5′ end of the 2.0 kilobase latency-associated transcript
10.1128/jvi.70.10.7270-7274.1996 · doi-reference
A 348-base-pair region in the latencyassociated transcript facilitates herpes simplex virus type 1 reactivation
10.1128/jvi.70.4.2449-2459.1996 · doi-reference
The herpes simplex virus type 1 latency-associated transcript gene regulates the establishment of latency
10.1128/jvi.71.7.5432-5440.1997 · doi-reference
Herpes simplex virus type 1 latency-associated transcripts are evidently not essential for latent infection
10.1002/j.1460-2075.1989.tb03404.x · doi-reference
Herpes simplex virus latent RNA (LAT) is not required for latent infection in the mouse
10.1073/pnas.86.19.7596 · doi-reference
Prominence of the herpes simplex virus latency-associated transcript in trigeminal ganglia from seropositive humans
10.1093/infdis/158.1.117 · doi-reference
RNA complementary to a herpesvirus alpha gene mRNA is prominent in latently infected neurons
10.1126/science.2434993 · doi-reference
Detection of herpes simplex virus type 1 transcripts during latent infection in mice
10.1128/jvi.61.12.3841-3847.1987 · doi-reference
The latency-associated transcripts of herpes simplex virus: RNA in search of function
10.1016/0042-6822(92)90160-q · doi-reference
Herpes simplex virus latency-associated transcript is a stable intron
10.1073/pnas.88.3.790 · doi-reference
Latent herpes simplex virus type 1 transcripts in peripheral and central nervous system tissues of mice map to similar regions of the viral genome
10.1128/jvi.62.3.749-756.1988 · doi-reference
Comprehensive quantification of herpes simplex virus latency at the single-cell level
10.1128/jvi.71.7.5423-5431.1997 · doi-reference
Pathogenesis of herpetic neuritis and ganglionitis in mice: evidence for intra-axonal transport of infection
10.1128/iai.7.2.272-288.1973 · doi-reference
Detection of HSV-1 genome in central nervous system of latently infected mice
10.1038/302523a0 · doi-reference