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L D Petrycky-Cox

Publications and source records attributed to L D Petrycky-Cox.

2 recordsLinked to original sources

Studies of the major reovirus core protein sigma 2: reversion of the assembly-defective mutant tsC447 is an intragenic process and involves back mutation of Asp-383 to Asn.

The reovirus group C temperature-sensitive mutant tsC447, whose defect maps to the S2 gene, which encodes the major core protein sigma 2, fails to assemble core particles at the nonpermissive temperature. To identify other proteins that may interact with sigma 2 during assembly, we generated and examined 10 independent revertants of the mutant. To determine which gene(s) carried a compensatory suppressor mutation(s), we generated intertypic reassortants between wild-type reovirus serotype 1 Lang and each revertant and determined the temperature sensitivities of the reassortants by efficiency-of-plating assays. Results of the efficiency-of-plating analyses indicated that reversion of the tsC447 defect was an intragenic process in all revertants. To identify the region(s) of sigma 2 that had reverted, we determined the nucleotide sequences of the S2 genes. In all revertant sequences examined, the G at nucleotide position 1166 in tsC447 had reverted to the A present in the wild-type sequence. This reversion leads to the restoration of a wild-type asparagine (in place of a mutant aspartic acid) at amino acid 383 in the sigma 2 sequence. These results collectively indicate that the functional lesion in tsC447 is Asp-383 and that this lesion cannot be corrected by alterations in other core proteins. These observations suggest that this region of sigma 2, which may be important in mediating assembly of the core particle, does not interact significantly with other reovirus proteins.

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Major histocompatibility complex class II-restricted cytotoxicity by self-myelin basic protein-reactive T-cell hybridomas: evidence for a tumour necrosis factor-independent nucleolytic mechanism.

Direct cytotoxicity by class II-restricted T cells has been proposed as a potential mechanism in autoimmune tissue damage, as well as in immunoregulation. We used I-A(s)-restricted non-granular cytotoxic T-cell hybridomas (BP24.29 and BP47.7), specific for self-determinants on myelin basic protein (MBP), and different monoclonal targets, in order to characterize the mechanism of killing used by these cells. An early lesion at the level of the target cell nucleus was indicated by the fact that target DNA lysis ([3H]thymidine release) proceeded 2-2.5-fold as rapidly as cytoplasmic lysis (51Cr release) over the first 14 hr after stimulation. Cytotoxicity was relatively resistant to inhibition by anti-calcium agents (TMB-8 and verapamil), even under conditions which blocked interleukin-2 (IL-2) release. Although tumour necrosis factor (TNF) has been proposed as one mediator of class II-restricted cytotoxicity, these cells (i) released no detectable TNF after stimulation with antigen, concanavalin A (Con A), or anti-CD3, (ii) readily lysed TNF-resistant targets (A20 and LS-102.9), and (iii) had no cytotoxic effect on TNF-sensitive cells (L929). Substantial 'bystander' killing of I-A-mismatched targets was observed, which was 13-37% of the cognate (I-A(s)-restricted) cytotoxicity measured in parallel. This finding may indicate an effector mechanism in autoimmune demyelination, since the myelin-forming oligodendrocytes of the central nervous system are not inducible for major histocompatibility complex (MHC) class II expression.

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