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de Souza AF, Pieri NCG, Martins DDS. Step by Step about Germ Cells Development in Canine. Animals (Basel) 2021; 11:ani11030598. [PMID: 33668687 PMCID: PMC7996183 DOI: 10.3390/ani11030598] [Citation(s) in RCA: 3] [Impact Index Per Article: 0.8] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 11/20/2020] [Revised: 01/13/2021] [Accepted: 01/19/2021] [Indexed: 12/26/2022] Open
Abstract
Simple Summary The progression of germ cells is a remarkable event that allows biological discovery in the differ-entiation process during in vivo and in vitro development. This is crucial for understanding one toward making oogenesis and spermatogenesis. Companion animals, such as canine, could offer new animal models for experimental and clinical testing for translation to human models. In this review, we describe the latest and more relevant findings on germ cell development. In addition, we showed the methods available for obtaining germ cells in vitro and the characterization of pri-mordial germ cells and spermatogonial stem cells. However, it is necessary to further conduct basic research in canine to clarify the beginning of germ cell development. Abstract Primordial germ cells (PGCs) have been described as precursors of gametes and provide a connection within generations, passing on the genome to the next generation. Failures in the formation of gametes/germ cells can compromise the maintenance and conservation of species. Most of the studies with PGCs have been carried out in mice, but this species is not always the best study model when transposing this knowledge to humans. Domestic animals, such as canines (canine), have become a valuable translational research model for stem cells and therapy. Furthermore, the study of canine germ cells opens new avenues for veterinary reproduction. In this review, the objective is to provide a comprehensive overview of the current knowledge on canine germ cells. The aspects of canine development and germ cells have been discussed since the origin, specifications, and development of spermatogonial canine were first discussed. Additionally, we discussed and explored some in vitro aspects of canine reproduction with germ cells, such as embryonic germ cells and spermatogonial stem cells.
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PATHAK JUHI, KHARCHE SD, GOEL ANJANA. Development of caprine chimeric embryos reconstructed through ES-tetraploid complementation assay. THE INDIAN JOURNAL OF ANIMAL SCIENCES 2019. [DOI: 10.56093/ijans.v89i5.90018] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Track Full Text] [Subscribe] [Scholar Register] [Indexed: 12/28/2022]
Abstract
The aim of the present study was to evaluate the development of caprine chimeric embryos in different culture media, viz. RVCL and mCR2aa + 10% FBS. Inner cell mass (ICM) from hatched blastocysts of parthenogenetic activated embryos were used to produce ES cell-like cells (103) while 4-cell embryos obtained from IVF were utilized to produce tetraploid embryos (231). The aggregates prepared were randomly divided into 2 groups, viz. Gr 1 (RVCL) (53) and Gr 2 (mCR2aa +10% FBS) (50) followed by culture in humidified atmosphere of 5% CO2 at 38.5°C in a CO2 incubator. Outcome measures were aggregation, 8–16 cell, morula and blastocyst formation. The percentage of aggregation, 8–16 cell, morula and blastocyst in Gr 1 (RVCL) was 83.33±6.00%, 42.24±7.71%,29.59±7.64% and 11.49±5.36%, respectively while the percentage of aggregation, 8–16 cell, morula and blastocyst in Gr 2 (mCR2aa +10% FBS) was 91.66±4.32%, 54.76±7.75%, 22.32±5.75% and 14.58±5.18%, respectively. In conclusion, both the media supported the development of chimeric embryos up to blastocyst.
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Huang Y, Li Z, Wang A, Han X, Song Y, Yuan L, Li T, Wang B, Lai L, Ouyang H, Pang D. Chimerism in piglets developed from aggregated cloned embryos. FEBS Open Bio 2016; 6:285-302. [PMID: 27239442 PMCID: PMC4821359 DOI: 10.1002/2211-5463.12037] [Citation(s) in RCA: 2] [Impact Index Per Article: 0.2] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 10/13/2015] [Revised: 12/18/2015] [Accepted: 01/25/2016] [Indexed: 12/02/2022] Open
Abstract
Porcine chimeras are valuable in the study of pluripotency, embryogenesis and development. It would be meaningful to generate chimeric piglets from somatic cell nuclear transfer embryos. In this study, two cell lines expressing the fluorescent markers enhanced green fluorescent protein (EGFP) and tdTomato were used as donor cells to produce reconstructed embryos. Chimeric embryos were generated by aggregating two EGFP‐cell derived embryos with two tdTomato‐cell derived embryos at the 4‐cell stage, and embryo transfer was performed when the aggregated embryos developed into blastocysts. Live porcine chimeras were successfully born and chimerism was observed by their skin color, gene integration, microsatellite loci composition and fluorescent protein expression. The chimeric piglets were largely composed of EGFP‐expressing cells, and this phenomenon was possibly due to the hyper‐methylation of the promoter of the tdTomato gene. In addition, the expression levels of tumorigenicity‐related genes were altered after tdTomato transfection in bladder cancer cells. The results show that chimeric pigs can be produced by aggregating cloned embryos and that the developmental capability of the cloned embryo in the subsequent chimeric development could be affected by the growth characteristics of its donor cell.
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Affiliation(s)
- Yongye Huang
- College of Life and Health Sciences Northeastern University Shenyang China; Jilin Provincial Key Laboratory of Animal Embryo Engineering College of Animal Sciences Jilin University Changchun China
| | - Zhanjun Li
- Jilin Provincial Key Laboratory of Animal Embryo Engineering College of Animal Sciences Jilin University Changchun China
| | - Anfeng Wang
- Jilin Provincial Key Laboratory of Animal Embryo Engineering College of Animal Sciences Jilin University Changchun China
| | - Xiaolei Han
- Jilin Provincial Key Laboratory of Animal Embryo Engineering College of Animal Sciences Jilin University Changchun China
| | - Yuning Song
- Jilin Provincial Key Laboratory of Animal Embryo Engineering College of Animal Sciences Jilin University Changchun China
| | - Lin Yuan
- Jilin Provincial Key Laboratory of Animal Embryo Engineering College of Animal Sciences Jilin University Changchun China
| | - Tianye Li
- College of Life and Health Sciences Northeastern University Shenyang China
| | - Bing Wang
- College of Life and Health Sciences Northeastern University Shenyang China
| | - Liangxue Lai
- Jilin Provincial Key Laboratory of Animal Embryo Engineering College of Animal Sciences Jilin University Changchun China
| | - Hongsheng Ouyang
- Jilin Provincial Key Laboratory of Animal Embryo Engineering College of Animal Sciences Jilin University Changchun China
| | - Daxin Pang
- Jilin Provincial Key Laboratory of Animal Embryo Engineering College of Animal Sciences Jilin University Changchun China
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Razza EM, Satrapa RA, Emanuelli IP, Barros CM, Nogueira MF. Screening of biotechnical parameters for production of bovine inter-subspecies embryonic chimeras by the aggregation of tetraploid Bos indicus and diploid crossbred Bos taurus embryos. Reprod Biol 2016; 16:34-40. [DOI: 10.1016/j.repbio.2015.11.003] [Citation(s) in RCA: 3] [Impact Index Per Article: 0.3] [Reference Citation Analysis] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 07/19/2015] [Revised: 11/18/2015] [Accepted: 11/26/2015] [Indexed: 11/16/2022]
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De AK, Garg S, Singhal DK, Malik H, Mukherjee A, Jena MK, Kumar S, Kaushik JK, Mohanty AK, Das BC, Bag S, Bhanja SK, Malakar D. Derivation of goat embryonic stem cell-like cell lines from in vitro produced parthenogenetic blastocysts. Small Rumin Res 2013. [DOI: 10.1016/j.smallrumres.2013.01.018] [Citation(s) in RCA: 1] [Impact Index Per Article: 0.1] [Reference Citation Analysis] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 01/25/2023]
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Nowak-Imialek M, Niemann H. Pluripotent cells in farm animals: state of the art and future perspectives. Reprod Fertil Dev 2013; 25:103-28. [PMID: 23244833 DOI: 10.1071/rd12265] [Citation(s) in RCA: 36] [Impact Index Per Article: 3.0] [Reference Citation Analysis] [Abstract] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 12/19/2022] Open
Abstract
Pluripotent cells, such as embryonic stem (ES) cells, embryonic germ cells and embryonic carcinoma cells are a unique type of cell because they remain undifferentiated indefinitely in in vitro culture, show self-renewal and possess the ability to differentiate into derivatives of the three germ layers. These capabilities make them a unique in vitro model for studying development, differentiation and for targeted modification of the genome. True pluripotent ESCs have only been described in the laboratory mouse and rat. However, rodent physiology and anatomy differ substantially from that of humans, detracting from the value of the rodent model for studies of human diseases and the development of cellular therapies in regenerative medicine. Recently, progress in the isolation of pluripotent cells in farm animals has been made and new technologies for reprogramming of somatic cells into a pluripotent state have been developed. Prior to clinical application of therapeutic cells differentiated from pluripotent stem cells in human patients, their survival and the absence of tumourigenic potential must be assessed in suitable preclinical large animal models. The establishment of pluripotent cell lines in farm animals may provide new opportunities for the production of transgenic animals, would facilitate development and validation of large animal models for evaluating ESC-based therapies and would thus contribute to the improvement of human and animal health. This review summarises the recent progress in the derivation of pluripotent and reprogrammed cells from farm animals. We refer to our recent review on this area, to which this article is complementary.
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Affiliation(s)
- Monika Nowak-Imialek
- Institut of Farm Animal Genetics, Friedrich-Loefller-Institut (FLI), Biotechnology, Höltystrasse 10, Mariensee, 31535 Neustadt, Germany.
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Alberio R, Perez AR. Recent advances in stem and germ cell research: implications for the derivation of pig pluripotent cells. Reprod Domest Anim 2013; 47 Suppl 4:98-106. [PMID: 22827357 DOI: 10.1111/j.1439-0531.2012.02062.x] [Citation(s) in RCA: 11] [Impact Index Per Article: 0.9] [Reference Citation Analysis] [Abstract] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 11/28/2022]
Abstract
Pluripotent stem cells have the unique capacity to contribute to all the tissues of an adult animal after transfer into a host embryo. How pluripotency is acquired during early development and how it is maintained in stem cells have attracted the interest of many scientists for over three decades. Much progress in our understanding of how stem cells arise in culture and the signals required for homoeostasis has enabled the derivation of pluripotent cells in multiple species. Here, we discuss recent developments in stem cell biology that will impact the generation of pluripotent cells from different embryonic origins and will contribute to increase our capacity for generating transgenic animals.
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Affiliation(s)
- R Alberio
- Division of Animal Sciences, School of Biosciences, University of Nottingham, Loughborough, UK.
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Zhao Y, Lin J, Wang L, Chen B, Zhou C, Chen T, Guo M, He S, Zhang N, Liu C, Liu M, Huang J. Derivation and characterization of ovine embryonic stem-like cell lines in semi-defined medium without feeder cells. ACTA ACUST UNITED AC 2011; 315:639-48. [PMID: 22021232 DOI: 10.1002/jez.715] [Citation(s) in RCA: 13] [Impact Index Per Article: 0.9] [Reference Citation Analysis] [Abstract] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 05/29/2011] [Revised: 08/24/2011] [Accepted: 08/29/2011] [Indexed: 01/12/2023]
Abstract
Domestic animal embryonic stem (ES) cells would provide an invaluable research tool for genetic breeding and the production of transgenic animals. Unfortunately, authentic domestic animals ES cells have not been established despite progress made over more than two decades. Here, we show that ovine ES-like cells can be efficiently derived and propagated in a semi-defined medium that contains N2, B27, GSK3 inhibitor (CHIR99021), and basic fibroblast growth factor (bFGF). These ovine ES-like cells had a characteristic three-dimensional appearance, showed a bFGF dose-dependence, expressed specific markers such as alkaline phosphatase (AP), Oct-4, Sox2, Nanog and can be maintained for 30 passages. Moreover, these cells differentiated in vitro into neuronal cells, and formed teratomas containing a variety of different tissues including cartilage and neural tissue when injected into kidney capsules of severe combined immunodeficiency (SCID) mice. But the cell lines fail to contribute to embryonic development upon blastocyst transplantation. To our knowledge, this is the first experiment to use semi-defined medium without feeder-cells to derive ES-like cells from ovine blastocysts, and opens the door to deriving authentic ES cells from domesticated ungulates.
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Affiliation(s)
- Yuncheng Zhao
- The Key Lab of Animal Biotechnology of Xinjiang, Urumqi, People's Republic of China; The Key Lab of Livestock Reproduction & Biotechnology of MOA,Xinjiang Academy of Animal Science, Urumqi, People's Republic of China
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Nowak-Imialek M, Kues W, Carnwath JW, Niemann H. Pluripotent stem cells and reprogrammed cells in farm animals. MICROSCOPY AND MICROANALYSIS : THE OFFICIAL JOURNAL OF MICROSCOPY SOCIETY OF AMERICA, MICROBEAM ANALYSIS SOCIETY, MICROSCOPICAL SOCIETY OF CANADA 2011; 17:474-497. [PMID: 21682936 DOI: 10.1017/s1431927611000080] [Citation(s) in RCA: 32] [Impact Index Per Article: 2.3] [Reference Citation Analysis] [Abstract] [MESH Headings] [Track Full Text] [Subscribe] [Scholar Register] [Indexed: 05/30/2023]
Abstract
Pluripotent cells are unique because of their ability to differentiate into the cell lineages forming the entire organism. True pluripotent stem cells with germ line contribution have been reported for mice and rats. Human pluripotent cells share numerous features of pluripotentiality, but confirmation of their in vivo capacity for germ line contribution is impossible due to ethical and legal restrictions. Progress toward derivation of embryonic stem cells from domestic species has been made, but the derived cells were not able to produce germ line chimeras and thus are termed embryonic stem-like cells. However, domestic animals, in particular the domestic pig (Sus scrofa), are excellent large animals models, in which the clinical potential of stem cell therapies can be studied. Reprogramming technologies for somatic cells, including somatic cell nuclear transfer, cell fusion, in vitro culture in the presence of cell extracts, in vitro conversion of adult unipotent spermatogonial stem cells into germ line derived pluripotent stem cells, and transduction with reprogramming factors have been developed with the goal of obtaining pluripotent, germ line competent stem cells from domestic animals. This review summarizes the present state of the art in the derivation and maintenance of pluripotent stem cells in domestic animals.
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Affiliation(s)
- Monika Nowak-Imialek
- Institute of Farm Animal Genetics (FLI), Biotechnology, Mariensee, 31535 Neustadt, Germany
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Northrup E, Eisenblätter R, Glage S, Rudolph C, Dorsch M, Schlegelberger B, Hedrich HJ, Zschemisch NH. Loss of Dnd1 facilitates the cultivation of genital ridge-derived rat embryonic germ cells. Exp Cell Res 2011; 317:1885-94. [PMID: 21570390 DOI: 10.1016/j.yexcr.2011.04.013] [Citation(s) in RCA: 9] [Impact Index Per Article: 0.6] [Reference Citation Analysis] [Abstract] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 02/11/2011] [Revised: 03/31/2011] [Accepted: 04/26/2011] [Indexed: 11/27/2022]
Abstract
Pluripotent cells referred to as embryonic germ cells (EGCs) can be derived from the embryonic precursors of the mature gametes: the primordial germ cells (PGCs). A homozygous mutation (ter) of the dead-end homolog 1 gene (Dnd1) in the rat causes gonadal teratocarcinogenesis and sterility due to neoplastic transformation and loss of germ cells. We mated heterozygous ter/+ WKY-Dnd1(ter)/Ztm rats and were able to cultivate the first genital ridge-derived EGCs of the rat embryo at day 14.5 post coitum (pc). Genotyping revealed that ten EGC lines were Dnd1 deficient, while only one wild type cell line had survived in culture. This suggests that the inactivation of the putative tumor suppressor gene Dnd1 facilitates the immortalization of late EGCs in vitro. Injection of the wild type EGCs into blastocysts resulted in the first germ-line competent chimeras. These new pluripotent rat EGCs offer an innovative approach for studies on germ cell tumor development as well as a new tool for genetic manipulations in rats.
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Affiliation(s)
- Emily Northrup
- Institute of Laboratory Animal Science, Hannover Medical School, Carl-Neuberg-Strasse 1, Hannover, Germany.
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Hua J, Zhu H, Pan S, Liu C, Sun J, Ma X, Dong W, Liu W, Li W. Pluripotent Male Germline Stem Cells from Goat Fetal Testis and Their Survival in Mouse Testis. Cell Reprogram 2011; 13:133-44. [PMID: 21473690 DOI: 10.1089/cell.2010.0047] [Citation(s) in RCA: 34] [Impact Index Per Article: 2.4] [Reference Citation Analysis] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 12/27/2022] Open
Affiliation(s)
- Jinlian Hua
- College of Veterinary Medicine, Shaanxi Centre of Stem Cells Engineering & Technology, Key Lab for Reproductive Physiology & Embryo Biotechnology of Agriculture Ministry of China Shaanxi Key Lab for Agriculture Molecular Biotechnology Centre, Northwest A&F University, Yangling, Shaanxi, People's Republic of China
| | - Haijing Zhu
- College of Veterinary Medicine, Shaanxi Centre of Stem Cells Engineering & Technology, Key Lab for Reproductive Physiology & Embryo Biotechnology of Agriculture Ministry of China Shaanxi Key Lab for Agriculture Molecular Biotechnology Centre, Northwest A&F University, Yangling, Shaanxi, People's Republic of China
| | - Shaohui Pan
- College of Veterinary Medicine, Shaanxi Centre of Stem Cells Engineering & Technology, Key Lab for Reproductive Physiology & Embryo Biotechnology of Agriculture Ministry of China Shaanxi Key Lab for Agriculture Molecular Biotechnology Centre, Northwest A&F University, Yangling, Shaanxi, People's Republic of China
| | - Chao Liu
- College of Veterinary Medicine, Shaanxi Centre of Stem Cells Engineering & Technology, Key Lab for Reproductive Physiology & Embryo Biotechnology of Agriculture Ministry of China Shaanxi Key Lab for Agriculture Molecular Biotechnology Centre, Northwest A&F University, Yangling, Shaanxi, People's Republic of China
| | - Junwei Sun
- College of Veterinary Medicine, Shaanxi Centre of Stem Cells Engineering & Technology, Key Lab for Reproductive Physiology & Embryo Biotechnology of Agriculture Ministry of China Shaanxi Key Lab for Agriculture Molecular Biotechnology Centre, Northwest A&F University, Yangling, Shaanxi, People's Republic of China
| | - Xiaoling Ma
- College of Veterinary Medicine, Shaanxi Centre of Stem Cells Engineering & Technology, Key Lab for Reproductive Physiology & Embryo Biotechnology of Agriculture Ministry of China Shaanxi Key Lab for Agriculture Molecular Biotechnology Centre, Northwest A&F University, Yangling, Shaanxi, People's Republic of China
| | - Wuzi Dong
- College of Veterinary Medicine, Shaanxi Centre of Stem Cells Engineering & Technology, Key Lab for Reproductive Physiology & Embryo Biotechnology of Agriculture Ministry of China Shaanxi Key Lab for Agriculture Molecular Biotechnology Centre, Northwest A&F University, Yangling, Shaanxi, People's Republic of China
| | - Weishuai Liu
- Department of Pathology, Yangling Demonstration Zone Hospital, Yang Ling, Shaanxi Province, People's Republic of China
| | - Wei Li
- North Branch Bio-Technology Co., Ltd. of Jiangsu Province, Taizhou, Jiangsu People's Republic of China
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Durcova-Hills G, Surani A. Reprogramming primordial germ cells (PGC) to embryonic germ (EG) cells. ACTA ACUST UNITED AC 2008; Chapter 1:Unit1A.3. [PMID: 18770625 DOI: 10.1002/9780470151808.sc01a03s5] [Citation(s) in RCA: 20] [Impact Index Per Article: 1.2] [Reference Citation Analysis] [Abstract] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 12/31/2022]
Abstract
In this unit we describe the derivation of pluripotent embryonic germ (EG) cells from mouse primordial germ cells (PGCs) isolated from both 8.5- and 11.5-days post-coitum (dpc) embryos. Once EG cells are derived we explain how to propagate and characterize the cell lines. We introduce readers to PGCs and explain differences between PGCs and their in vitro derivatives EG cells. Finally, we also compare mouse EG cells with ES cells. This unit will be of great interest to anyone interested in PGCs or studying the behavior of cultured PGCs or the derivation of new EG cell lines.
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Affiliation(s)
- Gabriela Durcova-Hills
- The Wellcome Trust/Cancer Research UK Gurdon Institute of Cancer and Developmental Biology, Cambridge, United Kingdom
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