• Title/Summary/Keyword: Porcine hematopoietic cells

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Efficient Labeling of Porcine Hematopoietic Cells by Fluorescence-Conjugated Nanoparticles

  • Lee, Hyun-Joo;Park, Eun-Ji;Lee, Yong-Soo;Park, Sung-Won;Kim, Jae-Hwan;Kim, Dong-Ku
    • Reproductive and Developmental Biology
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    • v.34 no.3
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    • pp.175-180
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    • 2010
  • Nanotechnology is currently receiving considerable attention in various fields of biotechnology. The uptake of nanoparticles by cells for labeling and tracking is a critical process for many biomedical therapeutic applications. However, nanoparticle labeling of porcine hematopoietic cells has not been demonstrated so far. In the present study, silica-coated nanoparticles conjugated with rhodamine B isothiocyanate (SR-RITC) were used to investigate the uptake of nanoparticles by porcine hematopoietic cells. Flow cytometric and confocal microscopic analyses reveled that the cells were efficiently internalized by the silica-coated nanoparticles. Furthermore, biocompatibility tests demonstrated that the SR nanoparticles were not cytotoxic, and they had no impact on proliferation. Our study demonstrates that silica-coated nanoparticles are taken up very rapidly and with high efficiency into porcine hematopoietic cells, with no apparent deleterious effects. Therefore, silica-coated nanoparticles appear to be a promising tool for tracking porcine hematopoietic cells.

Effective Reconstitution of Porcine Hematopoietic Cells in Newborn NOD/SCID Mice Xenograft (돼지 골수 조혈 세포의 이종 마우스 동물 모델 생체 증식 및 분화 특성)

  • Lee, Yong-Soo;Lee, Hyun-Joo;Kim, Tea-Sik;Kim, Hye-Sun;Kim, Yoo-Kyong;Kim, Jae-Hwan;Park, Jin-Ki;Chung, Hak-Jae;Chang, Won-Kyong;Kim, Dong-Ku
    • Reproductive and Developmental Biology
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    • v.32 no.1
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    • pp.1-7
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    • 2008
  • The SCID-repopulation cells(SRCs) assay has been widely used to determine the self-renewal capacity of hematopoietic stem cells (HSCs). In this study, we tested the repopulating efficiency of porcine bone marrow derived hematopoietic stem cells using nonobese diabetic/severe combined immunodieficient (NOD/SCID) mice which was inherited immunodeficiency mire with defect of T cells, B cells, and low activity of NK cells. We transplanted porcine bone marrow hematopoietic stem/progenitor cells with intraperitoneal injection into neonate NOD/SCID mice. We confirmed efficient reconstitution activity of inoculated porcine hematopoietis cells in variety of organs of NOD/SCID mice. Interestingly, pig $CD3^+$ T lymphocytes detected with high level in liver($15.6{\pm}3.7%$), spleen($5.6{\pm}3.0%$), thymus($1.5{\pm}1.3%$), and BM($2.3{\pm}0.9%$), respectively. These data imply that microenvironment of neonate NOD/SCID mice is very efficient for proliferation and differentiation of porcine T cells, and can be useful for the study of T cells development and renogeneic organ transplantation.

Differentiation and Proliferation of Porcine T Lymphocytes in NOD/SCID Mice (NOD/SCID 모델 마우스 생체 내 돼지 T 면역세포의 증식 및 분화)

  • Lee, Yong-Soo;Kim, Tae-Sik;Kim, Jae-Hwan;Chung, Hak-Jae;Park, Jin-Ki;Chang, Won-Kyong;Kim, Dong-Ku
    • Reproductive and Developmental Biology
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    • v.31 no.1
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    • pp.1-6
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    • 2007
  • The nonobese diabetic / severe combined immune deficiency (NOD/SCID) has been used for determination of proliferation and differentiation of hematopoietic stem cells as xenotransplantation animal model. In this study, we transplanted porcine hematopoietic cells from bone marrow into NOD/SCID mice via intravenous injection to confirm the activity of differentiation and proliferation for porcine hematopoietic cells in vivo. Interestingly, we observed the result of high efficiency with pig T lymphocytes in hematopoietic organs, liver, spleen lymph node, and bone marrow in NOD/SCID mice. The porcine $CD3^{+}$ T cells were detected with $5.4{\pm}1.9%$ in bone marrow, $15.4{\pm}7.3%$ in spleen, $21.3{\pm}1.4%$ in liver, and $33.5{\pm}32.8%$ in lymph node of NOD/SCID mice at 6 weeks after trans-plantation Furthermore, immunohistochemical analysis showed the high engraftment of porcine T lymphocytes in spleen of NOD/SCID mice. Our data suggest that NOD/SCID mice are excellent animal model to determinate the generation md function of pig T lymphocytes.

In Vitro Differentiation of Mesenchymal Progenitor Cells Derived from Porcine Umbilical Cord Blood

  • Kumar, Basavarajappa Mohana;Yoo, Jae-Gyu;Ock, Sun-A;Kim, Jung-Gon;Song, Hye-Jin;Kang, Eun-Ju;Cho, Seong-Keun;Lee, Sung-Lim;Cho, Jae-Hyeon;Balasubramanian, Sivasankaran;Rho, Gyu-Jin
    • Molecules and Cells
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    • v.24 no.3
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    • pp.343-350
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    • 2007
  • Mesenchymal stem/progenitor cells (MPCs) were isolated from porcine umbilical cord blood (UCB) and their morphology, proliferation, cell cycle status, cell-surface antigen profile and expression of hematopoietic cytokines were characterized. Their capacity to differentiate in vitro into osteocytes, adipocytes and chondrocytes was also evaluated. Primary cultures of adherent porcine MPCs (pMPCs) exhibited a typical fibroblast-like morphology with significant renewal capacity and proliferative ability. Subsequent robust cell growth was indicated by the high percentage of quiescent (G0/G1) cells. The cells expressed the mesenchymal surface markers, CD29, CD49b and CD105, but not the hematopoietic markers, CD45 and CD133 and synthesized hematopoietic cytokines. Over 21 days of induction, the cells differentiated into osteocytes adipocytes and chondrocytes. The expression of lineage specific genes was gradually upregulated during osteogenesis, adipogenesis and chondrogenesis. We conclude that porcine umbilical cord blood contains a population of MPCs capable of self-renewal and of differentiating in vitro into three classical mesenchymal lineages.

Generation of $CD2^+CD8^+$ NK Cells from c-$Kit^+$ Bone Marrow Cells in Porcine

  • Lim, Kyu-Hee;Han, Ji-Hui;Roh, Yoon-Seok;Kim, Bum-Seok;Kwon, Jung-Kee;You, Myoung-Jo;Han, Ho-Jae;Ejaz, Sohail;Kang, Chang-Won;Kim, Jong-Hoon
    • The Korean Journal of Physiology and Pharmacology
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    • v.16 no.3
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    • pp.167-174
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    • 2012
  • Natural killer (NK) cells provide one of the initial barriers of cellular host defense against pathogens, in particular intracellular pathogens. Because bone marrow-derived hematopoietic stem cells (HSCs), lymphoid protenitors, can give rise to NK cells, NK ontogeny has been considered to be exclusively lymphoid. Here, we show that porcine c-$kit^+$ bone marrow cells (c-$kit^+$ BM cells) develop into NK cells in vitro in the presence of various cytokines [interleukin (IL)-2, IL-7, IL-15, IL-21, stem cell factor (SCF), and fms-like tyrosine kinase-3 ligand (FLT3L)]. Adding hydrocortisone (HDC) and stromal cells greatly increases the frequency of c-$kit^+$ BM cells that give rise to $CD2^+CD8^+$ NK cells. Also, intracellular levels of perforin, granzyme B, and NKG2D were determined by RT-PCR and western blotting analysis. It was found that of perforin, granzyme B, and NKG2D levels significantly were increased in cytokine-stimulated c-$kit^+$ BM cells than those of controls. And, we compared the ability of the cytotoxicity of $CD2^+CD8^+$ NK cells differentiated by cytokines from c-$kit^+$ BM cells against K562 target cells for 28 days. Cytokines-induced NK cells as effector cells were incubated with K562 cells as target in a ratio of 100 : 1 for 4 h once a week. In results, $CD2^+CD8^+$ NK cells induced by cytokines and stromal cells showed a significantly increased cytotoxicity 21 days later. Whereas, our results indicated that c-$kit^+$ BM cells not pretreated with cytokines have lower levels of cytotoxicity. Taken together, this study suggests that cytokines-induced NK cells from porcine c-$kit^+$ BM cells may be used as adoptive transfer therapy if the known obstacles to xenografting (e.g. immune and non-immune problems) were overcome in the future.