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Robert A Taft

Publications and source records attributed to Robert A Taft.

3 recordsLinked to original sources

Know thy mouse.

In science it is imperative that the basic reagents and materials are defined and uniform. Unlike chemical reagents, which are uniform over time, mice, like all living creatures, have an intrinsic genetic drive to change, with mutations accumulating over time leading to increasing genetic variation and phenotypic change. Such changes compromise the reproducibility of experimental data over time and place. The use of the mouse has expanded rapidly in recent years and many scientists who have turned to the mouse as a research model might be unaware of the profound impact of changes in genetic background. Here we discuss the sources of genetic change and strategies to reduce them with the idea of strengthening international genetic standards for inbred mice.

Animals↗

Strategies for managing an ever increasing mutant mouse repository.

Over 10,000 mouse strains and more than 20,000 mouse ES cells containing gene-trapped or targeted mutations are available to researchers. The mouse strains and stocks include those with spontaneous, genetically engineered and induced mutations, as well as 100s of inbred strains and strain panels, valuable for quantitative trait locus (QTL) and modifier gene identification. Current worldwide initiatives are expected to result in multiple mutations in every mouse gene in the first 10 years of the 21st century. Managing the rapid and cost effective distribution of these burgeoning resources to scientists around the world will be challenging for scientists and mouse repositories. Here we describe new strategies for managing and distributing mice.

Animals↗

Identification of genes encoding mouse oocyte secretory and transmembrane proteins by a signal sequence trap.

The oocyte plays a key role in follicular development. At all stages of follicular development, oocytes interact with surrounding granulosa cells and promote their differentiation into the types of cells that support further oocyte growth and developmental competence. These interactions suggest the existence of an oocyte-granulosa cell regulatory loop that includes both secreted proteins and cell surface receptors on both cell types. Factors involved in the regulatory loop will therefore contain a signal sequence, which can be used to identify them through a signal sequence trap (SST). A screen of an oocyte SST library identified three classes of oocyte-expressed sequences: known mouse genes, sequences homologous to known mammalian genes, and novel sequences of unknown function. Many of the recovered genes may have roles in the oocyte-granulosa cell regulatory loop. For several of the known mouse genes, new roles in follicular development are implied by identification of their expression, for the first time, in the oocyte. The future characterization of novel sequences may lead to the identification of novel proteins participating in the regulatory loop.

Animals↗