Characterization of a murine cytomegalovirus class I major histocompatibility complex (MHC) homolog: Comparison to MHC molecules and to the human cytomegalovirus MHC homolog

Characterization of a murine cytomegalovirus class I major histocompatibility complex (MHC) homolog: Comparison to MHC molecules and to the human cytomegalovirus MHC homolog
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DOI:
10.1128/jvi.72.1.460-466.1998
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发表时间:
1998-01-01
影响因子:
5.4
通讯作者:
Bjorkman, PJ
Bjorkman, PJ
中科院分区:
医学2区
文献类型:
--
作者:
Chapman, TL;Bjorkman, PJ

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Both human and murine cytomegaloviruses (HCMV and MCMV) down-regulate expression of conventional class I major histocompatibility complex (MHC) molecules at the surfaces of infected cells. This allows the infected cells to evade recognition by cytotoxic T cells but leaves them susceptible to natural killer cells, which lyse cells that lack class I molecules. Both HCMV and MCMV encode class I MHC heavy-chain homologs that may function in immune response evasion. We previously shelved that a soluble form of the HCMV class I homolog (U(L)18) expressed in Chinese hamster ovary cells binds the class I MHC light-chain beta 2-microglobulin and a mixture of endogenous peptides (M. L. Fahnestock, J. L. Johnson, R. M. R. Feldman, J. M. Neveu, WS. Lane, and P. J. Bjorkman, Immunity 3:583-590, 1995). Consistent with this observation, sequence comparisons suggest that U(L)18 contains the well-characterized groove that serves as the binding site in MHC molecules for peptides derived from endogenous and foreign proteins. By contrast, the MCMV homolog (m144) contains a substantial deletion within the counterpart of its alpha 2 domain and might not be expected to contain a groove capable of binding peptides. We have now expressed a soluble version of m144 and verified that it forms a heavy chain-beta 2-microglobulin complex. By contrast to U(L)18 and classical class I MHC molecules, m144 does not associate with endogenous peptides yet is thermally stable. These results suggest that U(L)18 and m144 differ structurally and might therefore serve different functions for their respective viruses.