Literature DB >> 15576830

Isolation and enrichment of murine spermatogonial stem cells using rhodamine 123 mitochondrial dye.

Kirk C Lo1, Victor M Brugh, Michele Parker, Dolores J Lamb.   

Abstract

Stem cells possess enormous therapeutic potential in tissue replacement. To study stem cells further, they must be isolated. Techniques are available for enrichment and study of hematopoietic stems cells, but thus far, techniques for purification of spermatogonial stem cells have not been described. Enrichment techniques for hematopoietic stem cells include the use of fluorescence-activated cell sorter analysis with Hoechst 33342 and rhodamine 123 (Rho) dyes. Use of Hoechst dye to isolate spermatogonial stem cells has been unsuccessful in our laboratory, and our results have conflicted with those from other laboratories. Taking advantage of the differential staining of the Rho dye, we report a novel method to enrich murine spermatogonial stem cells. Testicular cells are harvested from cryptorchid ROSA26 male mice. Populations of these cells are then stained with the Hoechst and Rho dyes, allowing them to be sorted by flow cytometry into a side population (SP) of Hoechst low-intensity cells and populations of low (Rho(low)) or high (Rho(hi)) fluorescent intensity. Sterile recipients, W/W(v) mice, with an intrinsic germ cell deficiency were transplanted with the Hoechst SP cells, Rho(low), Rho(hi), and nonsorted donor cells. No spermatogonial stem cell colonies were derived from the Hoechst SP cells. The number of spermatogonial stem cell colonies from transplanted Rho(low) cells showed a 17- and 20-fold enrichment over those of Rho(hi) and nonsorted cells, respectively.

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Year:  2004        PMID: 15576830     DOI: 10.1095/biolreprod.104.033464

Source DB:  PubMed          Journal:  Biol Reprod        ISSN: 0006-3363            Impact factor:   4.285


  16 in total

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Journal:  Nat Cell Biol       Date:  2009-02       Impact factor: 28.824

Review 2.  Spermatogonial stem cells in higher primates: are there differences from those in rodents?

Authors:  Brian P Hermann; Meena Sukhwani; Marc C Hansel; Kyle E Orwig
Journal:  Reproduction       Date:  2009-10-30       Impact factor: 3.906

Review 3.  Spermatogonial stem cells.

Authors:  Hiroshi Kubota; Ralph L Brinster
Journal:  Biol Reprod       Date:  2018-07-01       Impact factor: 4.285

Review 4.  The Progresses of Spermatogonial Stem Cells Sorting Using Fluorescence-Activated Cell Sorting.

Authors:  Yihui Cai; Jingjing Wang; Kang Zou
Journal:  Stem Cell Rev Rep       Date:  2020-02       Impact factor: 5.739

5.  Can we grow sperm? A translational perspective on the current animal and human spermatogenesis models.

Authors:  Kirk C Lo; Trustin Domes
Journal:  Asian J Androl       Date:  2011-07-18       Impact factor: 3.285

6.  TALEN-mediated gene targeting in porcine spermatogonia.

Authors:  Lin Tang; Alla Bondareva; Raquel González; Jose R Rodriguez-Sosa; Daniel F Carlson; Dennis Webster; Scott Fahrenkrug; Ina Dobrinski
Journal:  Mol Reprod Dev       Date:  2018-02-22       Impact factor: 2.609

Review 7.  Spermatogonial stem cell regulation and spermatogenesis.

Authors:  Bart T Phillips; Kathrin Gassei; Kyle E Orwig
Journal:  Philos Trans R Soc Lond B Biol Sci       Date:  2010-05-27       Impact factor: 6.237

8.  Recent advances in application of male germ cell transplantation in farm animals.

Authors:  Ali Honaramooz; Yanfei Yang
Journal:  Vet Med Int       Date:  2010-10-04

9.  Glycan stem-cell markers are specifically expressed by spermatogonia in the adult non-human primate testis.

Authors:  T Müller; K Eildermann; R Dhir; S Schlatt; R Behr
Journal:  Hum Reprod       Date:  2008-07-10       Impact factor: 6.918

10.  Molecular dissection of the male germ cell lineage identifies putative spermatogonial stem cells in rhesus macaques.

Authors:  Brian P Hermann; Meena Sukhwani; David R Simorangkir; Tianjiao Chu; Tony M Plant; Kyle E Orwig
Journal:  Hum Reprod       Date:  2009-03-31       Impact factor: 6.918

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