• 제목/요약/키워드: stem cell

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An efficient SCNT technology for the establishment of personalized and public human pluripotent stem cell banks

  • Lee, Jeoung Eun;Chung, Young Gie;Eum, Jin Hee;Lee, Yumie;Lee, Dong Ryul
    • BMB Reports
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    • 제49권4호
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    • pp.197-198
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    • 2016
  • Although three different research groups have reported successful derivations of human somatic cell nuclear transfer-derived embryonic stem cell (SCNT-ESC) lines using fetal, neonatal and adult fibroblasts, the extremely poor development of cloned embryos has hindered its potential applications in regenerative medicine. Recently, however, our group discovered that the severe methylation of lysine 9 in Histone H3 in a human somatic cell genome was a major SCNT reprogramming barrier, and the overexpression of KDM4A, a H3K9me3 demethylase, significantly improved the blastocyst formation of SCNT embryos. In particular, by applying this new approach, we were able to produce multiple SCNT-ES cell lines using oocytes obtained from donors whose eggs previously failed to develop to the blastocyst stage. Moreover, the success rate was closer to 25%, which is comparable to that of IVF embryos, so that our new human SCNT method seems to be a practical approach to establishing a pluripotent stem cell bank for the general public as well as for individual patients.

Expression of Gpnmb in NK Cell Development from Hematopoietic Stem Cells

  • Shin, Na-Ra;Lee, Ji-Won;Lee, Ji-Won;Jeong, Mi-Ra;Kim, Mi-Sun;Lee, Suk-Hyung;Yoon, Suk-Ran;Chung, Jin-Woong;Kim, Tae-Don;Choi, In-Pyo
    • IMMUNE NETWORK
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    • 제8권2호
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    • pp.53-58
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    • 2008
  • Background: Molecular mechanisms of natural killer (NK) cell development from hematopoietic stem cells (HSCs) have not been clearly elucidated, although the roles of some genes in NK cell development have been reported previously. Thus, searching for molecules and genes related NK cell developmental stage is important to understand the molecular events of NK cell development. Methods: From our previous SAGE data-base, Gpnmb (Glycoprotein non-metastatic melanoma protein B) was selected for further analysis. We confirmed the level of mRNA and protein of Gpnmb through RT-PCR, quantitative PCR, and FACS analysis. Then we performed cell-based ELISA and FACS analysis, to know whether there are some molecules which can bind to Gpnmb. Using neutralizing antibody, we blocked the interaction between NK cells and OP9 cells, and checked IFN-${\gamma}$ production by ELISA kit. Results: Gpnmb expression was elevated during in vitro developmental stage and bound to OP9 cells, but not to NK precursor cells. In addition, we confirmed that the levels of Gpnmb were increased at NK precursor stage in vivo. We confirmed syndecan4 as a candidate of Gpnmb's binding molecule. When the interaction between NK cells and OP9 cells were inhibited in vitro, IFN-${\gamma}$ production from NK cells were reduced. Conclusion: Based on these observations, it is concluded that Gpnmb has a potential role in NK cell development from HSCs.

The expression and functional roles of microRNAs in stem cell differentiation

  • Shim, Jiwon;Nam, Jin-Wu
    • BMB Reports
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    • 제49권1호
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    • pp.3-10
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    • 2016
  • microRNAs (miRNAs) are key regulators of cell state transition and retention during stem cell proliferation and differentiation by post-transcriptionally downregulating hundreds of conserved target genes via seed-pairing in their 3' untranslated region. In embryonic and adult stem cells, dozens of miRNAs that elaborately control stem cell processes by modulating the transcriptomic context therein have been identified. Some miRNAs accelerate the change of cell state into progenitor cell lineages—such as myoblast, myeloid or lymphoid progenitors, and neuro precursor stem cells—and other miRNAs decelerate the change but induce proliferative activity, resulting in cell state retention. This cell state choice can be controlled by endogenously or exogenously changing miRNA levels or by including or excluding target sites. This control of miRNA-mediated gene regulation could improve our understanding of stem cell biology and facilitate their development as therapeutic tools. [BMB Reports 2016; 49(1): 3-10]

줄기 세포 분야의 유전자 치료 연구 동향 (Current trends of stem cell-mediated gene therapy)

  • 오유경;정형민
    • Journal of Pharmaceutical Investigation
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    • 제32권2호
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    • pp.65-72
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    • 2002
  • Recently, stem cell-mediated gene therapy is emerging as a novel therapeutic approach. For the successful gene modification of stem cells, the development of a suitable gene transfer technique needs to be preceded. This review focuses on the various gene transfer techniques based on nonviral and viral vectors, and physical methods. The advantages and disadvantages of each gene transfer method are compared, and the general properties of these vectors are discussed in relation to the gene transfer in stem cell research. This review also highlights the therapeutic application of stem cell-mediated gene therapy. The choice of gene transfer vectors may vary depending on the type of the stem cells and the target of stem cell therapy. Of various gene transfer methods, viral vector-based gene therapy has been emphasized due to the higher transfection efficiency. The current status and up-to-date findings of stem cell-mediated gene therapy are discussed in the viewpoint of the various targets of stem cell therapy such as the modification of stem cell potency, the acceleration of regeneration process and the formation of expressional organization.

Progress of Inter-species Somatic Cell Nuclear Transfer in Bovidae and Felidae Family

  • Parnpai, Rangsun;Imsoonthornruksa, Sumeth;Srirattana, Kanokwan;Lorthongpanich, Chanchao;Sangmalee, Anawat;Sripunya, Nucharin;Keawmungkun, Kwanrudee;Phewsoi, Wanwisa;Laowtammathron, Chuti;Tunwattana, Wanchai;Somsa, Wachiravit;Kongkham, Wichit;Ketudat-cairns, Mariena
    • 한국동물번식학회:학술대회논문집
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    • 한국동물번식학회 2009년도 춘계학술대회
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    • pp.6-7
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    • 2009
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Profiling of Differentially Expressed Genes in Human Stem Cells by cDNA Microarray

  • Kim, Chul Geun;Lee, Jong Joo;Jung, Dae Young;Jeon, Jinseon;Heo, Hyen Seok;Kang, Ho Chul;Shin, June Ho;Cho, Yoon Shin;Cha, Kyung Joon;Kim, Chan Gil;Do, Byung-Rok;Kim, Kyung Suk;Kim, Hyun-Soo
    • Molecules and Cells
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    • 제21권3호
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    • pp.343-355
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    • 2006
  • Stem cells are unique cell populations with the ability to undergo both self-renewal and differentiation, although a wide variety of adult stem cells as well as embryonic stem cells have been identified and stem cell plasticity has recently been reported. To identify genes implicated in the control of the stem cell state as well as the characteristics of each stem cell line, we analyzed the expression profiles of genes in human embryonic, hematopoietic ($CD34^+$ and $CD133^+$), and mesenchymal stem cells using cDNA microarrays, and identified genes that were differentially expressed in specific stem cell populations. In particular we were able to identify potential hESC signature-like genes that encode transcription factors (TFAP2C and MYCN), an RNA binding protein (IMP-3), and a functionally uncharacterized protein (MAGEA4). The overlapping sets of 22 up-regulated and 141 down-regulated genes identified in this study of three human stem cell types may also provide insight into the developmental mechanisms common to all human stem cells. Furthermore, our comprehensive analyses of gene expression profiles in various adult stem cells may help to identify the genetic pathways involved in self-renewal as well as in multi-lineage specific differentiation.

Efficient Derivation of New Human Embryonic Stem Cell Lines

  • Kim, Sun Jong;Lee, Jeoung Eun;Park, Jong Hyuk;Lee, Jung Bok;Kim, Jin Mee;Yoon, Byung Sun;Song, Ji Min;Roh, Sung Il;Kim, Chul Geun;Yoon, Hyun Soo
    • Molecules and Cells
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    • 제19권1호
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    • pp.46-53
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    • 2005
  • Human embryonic stem (hES) cells, unlike most cells derived from adult or fetal human tissues, represent a potentially unlimited source of various cell types for basic clinical research. To meet the increased demand for characterized hES cell lines, we established and characterized nine new lines obtained from frozen-thawed pronucleus-stage embryos. In addition, we improved the derivation efficiency from inner cell masses (to 47.4%) and optimized culture conditions for undifferentiated hES cells. After these cell lines had been maintained for over a year in vitro, they were characterized comprehensively for expression of markers of undifferentiated hES cells, karyotype, and in vitro/in vivo differentiation capacity. All of the cell lines were pluripotent, and one cell line was trisomic for chromosome 3. Improved culture techniques for hES cells should make them a good source for diverse applications in regenerative medicine, but further investigation is needed of their basic biology.

Embryonic Stem Cell and Nuclear Transfer

  • 임정묵
    • 한국수정란이식학회:학술대회논문집
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    • 한국수정란이식학회 2002년도 춘계학술세미나 및 워크숍
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    • pp.19-25
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    • 2002
  • Researches on manipulation pluripotent stem cells derived from blastocysts or promordial germ cells (PGCs) have a great advantages for developing innovative technologies in various fields of life science including medicine, pharmaceutics, and biotechnology. Since the first isolation in the mouse embryos, stem cells or stem cell-like colonies have been continuously established in the mouse of different strains, cattle, pig, rabbit, and human. In the animal species, stem cell biology is important for developing transgenic technology including disease model animal and bioreactor production. ES cell can be isolated from the inner cell mass of blastocysts by either mechanical operation or immunosurgery. So, mass production of blastocyst is a prerequisite factor for successful undertaking ES cell manipulation. In the case of animal ES cell research, various protocol of gamete biotechnology can be applied for improving the efficiency of stem cell research. Somatic cell nuclear transfer technique can be applied to researches on animal ES cells, since it is powerful tool for producing clone embryos containing genes of interest. In this presentation, a brief review was made for explaining how somatic cell nuclear transfer technology could contribute to improving stem cell manipulation technology.

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