Two strains of minute virus of mice (MVM) show different host-cell specificities. MVM(i) grows in T lymphocytes whereas MVM(p) is fibroblast-specific. By constructing recombinant viral DNAs between the genomes of the two strains, we have shown that two segments of the MVM(i) genome are required for lytic viral growth in T lymphocytic EL4 cells. One segment (iE) was found between nucleotides 1084 and 2070, in a region encoding the early viral proteins and containing mRNA splice signals and the late P39 promoter. The other (iL) was between nucleotides 3523 and 4339 in the region coding for capsid protein. The P39 promoters within the E segment from MVM(i) or MVM(p) were equally active in transfected EL4 cells. However, pE-containing MVM DNA produced more NS2 mRNA than iE-containing DNA, apparently the result of virus-strain-specific differences in the regulation of splicing.
Simian virus 40 (SV40) can be disassembled under mild conditions by reducing disulfide bonds in the capsid and removing calcium ions. The nucleoprotein complexes formed, analyzed by electron microscopy, were circular and made up of 59 +/- 4 subunits, each with a diameter of about 10 nm. The complexes contained the viral DNA, histones, and the viral capsid proteins. The complexes had much-reduced infectivities compared with intact SV40. Addition of calcium ions to the disrupted virus caused the nucleoprotein complexes to refold into virus-like structures which sedimented at the same rate as intact SV40 and regained infectivity. Treatment of the disrupted SV40 with a high concentration of salt dissociated the viral proteins from the DNA. Lowering stepwise the salt concentration, removing the reducing agent, and adding calcium ions allowed structures to be reformed, and these structures sedimented, like SV40, at 240S and were infectious. The plaque-forming ability of the reconstituted particles was between that of the dissociated components and that of intact SV40. The addition of purified DNA of polyomavirus to the dissociated SV40 before the lowering of the salt concentration showed that virus-like structures could be formed from SV40 proteins and a foreign DNA.