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1 xenotropic murine leukemia virus, and type C feline leukemia virus.
2 mphomas bearing insertions at fit-1 (fti-1) (feline leukemia virus) and Ahi-1 (Moloney murine leukemi
3 , including murine leukemia viruses (MuLVs), feline leukemia viruses, and gibbon-ape leukemia virus,
5 uences from Moloney murine leukemia virus or feline leukemia virus did function in place of the SL3 e
7 and insertional polymorphisms of endogenous feline leukemia viruses (enFeLVs) were determined in fou
8 olated and sequenced two complete endogenous feline leukemia viruses (enFeLVs), designated enFeLV-AGT
9 The 11-aa targeting domain of the modified feline leukemia virus envelope consists of a constrained
11 ency viruses (HIV and SIV)] and oncoviruses [feline leukemia virus (FeLV) and human T cell leukemia v
12 an immunodeficiency-inducing, T cell-tropic feline leukemia virus (FeLV) has evolved such that it ca
15 ated immunity is important in the control of feline leukemia virus (FeLV) infection led us to test a
26 5 is a representative isolate of the natural feline leukemia virus (FeLV) variant predominant in non-
27 ary pathogenic determinant for T-cell-tropic feline leukemia virus (FeLV) variants, the best studied
28 n cats by intradermal injection of ecotropic feline leukemia virus (FeLV), subgroup A, plasmid DNA.
29 uses, including the subgroups A, B, and C of feline leukemia virus (FeLV), use a multiple-membrane-sp
31 irus (GALV) envelope proteins, tagged with a feline leukemia virus (FeLV)-derived epitope tag, which
35 of Mus dunni tail fibroblasts to subgroup C feline leukemia viruses (FeLV-C) was eliminated simply b
39 hat the long terminal repeat (LTR) region of feline leukemia viruses (FeLVs) can enhance expression o
40 mestic exposure to gammaretroviruses such as feline leukemia viruses (FeLVs) occurs worldwide, but th
41 to viruses that infect human cells in vitro Feline leukemia viruses (FeLVs) rank high on this list,
42 me appears to be more closely related to the feline leukemia virus group of retroviruses than to the
45 rary within the receptor-binding domain of a feline leukemia virus retroviral Envelope (FeLV Env) pro
46 s infected with the horizontally transmitted feline leukemia virus subgroup A (FeLV-A) often produce
48 The surface (SU) envelope glycoproteins of feline leukemia virus subgroup B (FeLV-B) and amphotropi
49 viruses gibbon ape leukemia virus (GALV) and feline leukemia virus subgroup B (FeLV-B) can use the sa
50 differences between two different strains of feline leukemia virus subgroup B (FeLV-B), we compared t
52 bon ape leukemia virus, woolly monkey virus, feline leukemia virus subgroup B, feline leukemia virus
53 ed a single-nucleotide coding variant in the feline leukemia virus subgroup C cellular receptor 1 (FL
57 abrando et al. reveal that an isoform of the feline leukemia virus subgroup C receptor (FLVCR1) expor
58 e the genomic structure and context of human feline leukemia virus subgroup C receptor (hFLVCR), a hu
59 ated to mRNA expression of the heme exporter feline leukemia virus subgroup C receptor 1 (beta = -0.3
61 f T lymphocytes by the cytopathic retrovirus feline leukemia virus subgroup T (FeLV-T) requires FeLIX
62 key virus, feline leukemia virus subgroup B, feline leukemia virus subgroup T, and 10A1 murine leukem
66 orted the isolation from a thymic tumor of a feline leukemia virus that had transduced a fragment of
67 eptors of the feline retroviruses, RD114 and feline leukemia virus type C (FeLV-C), were significantl
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