• Title/Summary/Keyword: somatic plant

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Stem Cell Biology, 최근의 진보 (Recent Advancement in the Stem Cell Biology)

  • 한창열
    • Journal of Plant Biotechnology
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    • 제33권3호
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    • pp.195-207
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    • 2006
  • Stem cells are the primordial, initial cells which usually divide asymmetrically giving rise to on the one hand self-renewals and on the other hand progenitor cells with potential for differentiation. Zygote (fertilized egg), with totipotency, deserves the top-ranking stem cell - he totipotent stem cell (TSC). Both the ICM (inner cell mass) taken from the 6 days-old human blastocyst and ESC (embryonic stem cell) derived from the in vitro cultured ICM have slightly less potency for differentiation than the zygote, and are termed pluripotent stem cells. Stem cells in the tissues and organs of fetus, infant, and adult have highly reduced potency and committed to produce only progenitor cells for particular tissues. These tissue-specific stem cells are called multipotent stem cells. These tissue-specific/committed multipotent stem cells, when placed in altered environment other than their original niche, can yield cells characteristic of the altered environment. These findings are certainly of potential interest from the clinical, therapeutic perspective. The controversial terminology 'somatic stem cell plasticity' coined by the stem cell community seems to have been proved true. Followings are some of the recent knowledges related to the stem cell. Just as the tissues of our body have their own multipotent stem cells, cancerous tumor has undifferentiated cells known as cancer stem cell (CSC). Each time CSC cleaves, it makes two daughter cells with different fate. One is endowed with immortality, the remarkable ability to divide indefinitely, while the other progeny cell divides occasionally but lives forever. In the cancer tumor, CSC is minority being as few as 3-5% of the tumor mass but it is the culprit behind the tumor-malignancy, metastasis, and recurrence of cancer. CSC is like a master print. As long as the original exists, copies can be made and the disease can persist. If the CSC is destroyed, cancer tumor can't grow. In the decades-long cancer therapy, efforts were focused on the reducing of the bulk of cancerous growth. How cancer therapy is changing to destroy the origin of tumor, the CSC. The next generation of treatments should be to recognize and target the root cause of cancerous growth, the CSC, rather than the reducing of the bulk of tumor, Now the strategy is to find a way to identify and isolate the stem cells. The surfaces of normal as well as the cancer stem cells are studded with proteins. In leukaemia stem cell, for example, protein CD 34 is identified. In the new treatment of cancer disease it is needed to look for protein unique to the CSC. Blocking the stem cell's source of nutrients might be another effective strategy. The mystery of sternness of stem cells has begun to be deciphered. ESC can replicate indefinitely and yet retains the potential to turn into any kind of differentiated cells. Polycomb group protein such as Suz 12 repress most of the regulatory genes which, activated, are turned to be developmental genes. These protein molecules keep the ESC in an undifferentiated state. Many of the regulator genes silenced by polycomb proteins are also occupied by such ESC transcription factors as Oct 4, Sox 2, and Nanog. Both polycomb and transcription factor proteins seem to cooperate to keep the ESC in an undifferentiated state, pluripotent, and self-renewable. A normal prion protein (PrP) is found throughout the body from blood to the brain. Prion diseases such as mad cow disease (bovine spongiform encephalopathy) are caused when a normal prion protein misfolds to give rise to PrP$^{SC}$ and assault brain tissue. Why has human body kept such a deadly and enigmatic protein? Although our body has preserved the prion protein, prion diseases are of rare occurrence. Deadly prion diseases have been intensively studied, but normal prion problems are not. Very few facts on the benefit of prion proteins have been known so far. It was found that PrP was hugely expressed on the stem cell surface of bone marrow and on the cells of neural progenitor, PrP seems to have some function in cell maturation and facilitate the division of stem cells and their self-renewal. PrP also might help guide the decision of neural progenitor cell to become a neuron.

솔나리 기내배양 및 재분화 식물체의 토양순화 (In vitro Culture and Acclimatization of Regenerated Plants of Liliem cernum $K_{OMAROV}$)

  • 김희규;임정대;현태경;이현용;이진하;유창연
    • 한국약용작물학회지
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    • 제9권4호
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    • pp.310-317
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    • 2001
  • 1. Bulb 유래 식물체 재분화는 식물생장조절물질이 첨가되지 않은 1/4MS 액체 배지에서 잎과 뿌리분화 및 생장, bulb 분화가 양호하였다. 2. 캘러스 현탁배양의 경우 2,4-D 1mg/ l 를 처리한 액체배지는 배발생 캘러스를 증가하였다. 식물생장조절제가 처리되지 않은 액체배지는 캘러스가 활성을 잃었고, 활성 감소는 salt strength가 감소함에 따라 급격히 감소하였다. 그리고 생장조절제가 처리되지 않는 액체배지에서 소수의 캘러스로부터 잎의 분화가 관찰되었다. 3. 솔나리 잎, 뿌리, 인편 중 재분화 식물체 유도는 인편이 가장 적합하며, 인편을 치상하였을 때, 잎의 분화는 MS 기본 배지에 NAA 1mg/ l 첨가와 1.5%의 sucrose 첨가한 곳에서 가장 양호하였다. 잎의 생장은 MS 기본 배지에 NAA 1mg / l를 첨가와 3.0%의 sucrose를 처리한 곳에서 관찰되었다. 뿌리의 분화 및 생장, 인편의 분화는 MS기본 배지에 NAA 1mg / l 를 첨가와 6%의 sucrose를 첨가한 배지에서 가장 양호함을 나타내었다. 4. 고체배지에서 잎의 분화는 spermidine에 비해 spermine첨가가 효과적이었고, 잎의 신장은 spermidine처리가 보다 효과적이었다. 뿌리의 분화 및 생장은 spermine처리에 의해 양호한 결과를 나타내었고, 인편의 분화는 spermidine첨가에서만이 나타났다. 액체배지에서 spermine과 spermidine 1mg/ l 를 처리하였을 때 잎, 뿌리 모두 분화하였다. Spermine 1mg/ l 를 첨가한 한 플라스크에서는 체세포 배 발생 이 관찰되었는데, 이는 2, 4-D 1mg/ l 를 처리한 액체배지에서 나타나는 것과 유사함을 나타내었다. 솔나리 인편배양에서 polyamine의 처리는 액체배지보다 고체배지가 효과적이었다. 5. 솔나리 인편배양을 통해 분화된 식물체의 토양순화 실험에서, 재분화된 식물체의 생존률은 vermiculite + perlite (1 : 1 by volume)에서 96.3%를 나타내어 가장 양호한 결과를 얻었고, 순화된 식물체의 뿌리 생장은 peat moss에서 가장 양호하였다.

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