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S A Moses

Publications and source records attributed to S A Moses.

3 recordsLinked to original sources

The fallacy of impoverishment.

Several recent studies have challenged the assumption that Medicaid requires impoverishment. Although two-thirds of the elderly poor are not covered by Medicaid, many nursing home Medicaid recipients retain sizeable assets, which pass to their heirs without repayment of public costs. The magnitude of asset spenddown is much smaller than previously believed. This article discusses these findings and explores their significance to the long-term care financing crisis.

Aged

Clastogenicity of PvuII and EcoRI in electroporated CHO cells assayed by metaphase chromosomal aberrations and by micronuclei using the cytokinesis-block technique.

The clastogenicity of two restriction endonucleases with almost equal cutting frequencies: PvuII, generating blunt-ended DNA double-strand breaks (dsb) and EcoRI, generating cohesive-ended dsb, has been measured after treatment of electroporated CHO cells with these enzymes. Chromosome damage was assessed by the micronucleus cytokinesis-block technique, and for certain electroporation voltages by analysis of metaphase preparations. As has been found in previous studies, PvuII was found to be more effective in causing chromosomal damage than EcoRI, indicating the greater importance of blunt-ended dsb in chromosome aberration induction. These findings also validate the use of the micronucleus cytokinesis-block technique for evaluating chromosomal damage from restriction endonucleases. The results show a biphasic induction of micronuclei in binucleate cells as a function of time after treatment. This pattern is interpreted as indicating variable sensitivity of cells to restriction endonucleases at different stages of the cell cycle. The micronucleus data show that late collection times (40-48 h after treatment) give higher frequencies than short times. Both micronucleus and metaphase aberration data indicate that voltages in excess of 260 V are more efficient in porating cells than lower voltages and, as a result, lower restriction endonuclease concentrations could be used.

Animals