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M Munsie

Publications and source records attributed to M Munsie.

3 recordsLinked to original sources

Electrical and neurotransmitter activity of mature neurons derived from mouse embryonic stem cells by Sox-1 lineage selection and directed differentiation.

Sx1TV2/16C is a mouse embryonic stem (ES) cell line in which one copy of the Sox1 gene, an early neuroectodermal marker, has been targeted with a neomycin (G418) selection cassette. A combination of directed differentiation with retinoic acid and G418 selection results in an enriched neural stem cell population that can be further differentiated into neurons. After 6-7 days post-plating (D6-7PP) most neurons readily fired tetrodotoxin (TTX)-sensitive action potentials due to the expression of TTX-sensitive Na(+) and tetraethylammonium (TEA)-sensitive K(+) channels. Neurons reached their maximal cell capacitance after D6-7PP; however, ion channel expression continued until at least D21PP. The percentage of cells receiving spontaneous synaptic currents (s.s.c.) increased with days in culture until 100% of cells received a synaptic input by D20PP. Spontaneous synaptic currents were reduced in amplitude and frequency by TTX, or upon exposure to a Ca(2+)-free, 2.5 mm Mg(2+) saline. S.s.c. of rapid decay time constants were preferentially blocked by the nonNMDA glutamatergic receptor antagonists CNQX or NBQX. Ca(2+) levels within ES cell-derived neurons increased in response to glutamate receptor agonists l-glutamate, AMPA, N-methyl-d-aspartate (NMDA) and kainic acid and to acetylcholine, ATP and dopamine. ES cell-derived neurons also generated cationic and Cl(-)-selective currents in response to NMDA and glycine or GABA, respectively. It was concluded that ES-derived neurons fire action potentials, receive excitatory and inhibitory synaptic input and respond to various neurotransmitters in a manner akin to primary central neurons.

6-Cyano-7-nitroquinoxaline-2,3-dione↗

Novel method for demonstrating nuclear contribution in mouse nuclear transfer.

Confirmation of nuclear contribution is essential to all nuclear transfer experiments. Contribution is easily demonstrated in nuclear transfer progeny but more difficult to confirm in nuclear transfer embryos. The use of donor nuclei isolated from lacZ transgenic mice offers a clear and simple method to demonstrate contribution in nuclear transfer embryos and offspring. The unique line of transgenic mice (Zin40) used in this study displays nuclear localised lacZ expression in all cells, including embryonic blastomeres, and demonstrates distinctive blue nuclei when treated with X-gal substrate. This characteristic staining pattern provided an ideal marker for demonstrating nuclear contribution. Nuclear transfer embryos were generated following serial nuclear transfer of metaphase-arrested nuclei from transgenic and non-transgenic 4-cell embryos. Totipotency of nuclear transfer blastocysts was confirmed by the generation of live born offspring. Transgenic blastocysts and all tissue samples from fetuses and pups generated by nuclear transfer displayed distinctive blue nuclei when stained with X-gal. This staining pattern was characteristic of the transgenic mice from which the donor nuclei were isolated and clearly confirmed nuclear origin. The use of this marker will also allow the opportunity to investigate the developmental potential of nuclear transfer embryos by examining the contribution of nuclear transfer embryonic cells in chimaeric embryos.

Animals↗

Expression of stem cell factor in the postnatal rat testis.

The expression of stem cell factor (SCF) mRNA and protein was examined in the postnatal rat testis. Northern blot analysis of total RNA from 1-4 days postpartum (dpp) testes showed none or barely detectable levels of the approximately 6.5 kb SCF transcript. At 5 dpp, there was a striking elevation in this mRNA, a timing that coincides with the onset of spermatogonial proliferation. Immunohistochemical staining of testes showed that SCF protein was readily detected within Sertoli cells at 1-7 dpp and in the adult. Immunoreactive material was also detected within gonocytes and within Leydig cells at 1-7 dpp and in Leydig cells in the adult. Given the intense staining of Leydig cells by two different antibodies to SCF, the potential synthesis of SCF mRNA by these cells was investigated. Northern blot and reverse transcription/polymerase chain reaction analysis indicated that adult Leydig cells do not synthesize SCF mRNA, and Sertoli cells do. The significance of these findings is discussed in the context of germ cell-Sertoli cell interactions and Leydig cell function.

Animals↗