• 제목/요약/키워드: beagle dogs.

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배양골세포 이식이 치조골재생에 미치는 영향 (Effects Of Cultured Bone Cell On The Regeneration Of Alveolar Bone)

  • 정순준;허익;박준봉;이만섭;권영혁
    • Journal of Periodontal and Implant Science
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    • 제26권1호
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    • pp.1-26
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    • 1996
  • This study was performed to estimate the effects of cultured bone cell inoculated on porous type hydroxyaptite for the regeneration of the artificial alveolar bone defect. In this experiment 3 beagle dogs were used, and each of them were divided into right and left mandible. Every surgical intervention were performed under the general anesthesia by using with intravenous injection of Pentobarbital sodium(30mg/Kg). To reduce the gingival bleeding during surgery, operative site was injected with Lidocaine hydrochloride(l:80,000 Epinephrine) as local anesthesia. After surgery experimental animal were feeded with soft dietl Mighty dog, Frisies Co., U.S.A.) for 1 weeks to avoid irritaion to soft tissue by food. 2 months before surgery both side of mandibular 1st premolar were extracted and bone chips from mandibular body were obtained from all animals. Bone cells were cultured from bone chips obtained from mandible with Dulbecco's Modified Essential Medium contained with 10% Fetal Bovine Serum under the conventional conditions. Porous type hydroxyapatite were immerse into the high concentrated cell suspension solution, and put 4 hours for attachin the cells on the surface of hydroxyapatite. Graft material were inserted on the artificial bone defect after 3 days of culture. Before insertion of cellinoculated graft material, scanning electronic microscopic observation were performed to confirm the attachment and spreading of cell on the hydroxyapatite surface. 3 artificial bone defects were made with bone trephine drill on the both side of mandible of the experimental animal. First defect was designed without insertion of graft material as negative control, second was filled with porous replamineform hydroxyapatite inoculated with cultured bone marrow cells as expermiental site, and third was filled with graft materials only as positive control. The size of every artificial bone defect was 3mm in diameter and 3mm in depth. After the every surgical intervention of animals, oral hygiene program were performed with 1.0% chlorhexidine digluconate. All of the animals were sacrificed at 2, 4, 6 weeks after surgery. For obtaining histological section, tissus were fixed in 10% Buffered formalin and decalcified with Planko - Rycho Solution for 72hr. Tissue embeding was performed in paraffin and cut parallel to the surface of mandibular body. Section in 8um thickness of tissue was done and stained with Hematoxylin - Eosin. All the specimens were observed under the light microscopy. The following results were obtained : 1. In the case of control site which has no graft material, less inflammatory cell infiltration and rapid new bone forming tendency were revealed compared with experimental groups. But bone surface were observed depression pattern on defect area because of soft tissue invasion into the artificial bone defect during the experimental period. 2. In the porous hydroxyapatite only group, inflammatory cell infiltration was prominet and dense connective tissue were encapsulated around grafted materials. osteoblastic activity in the early stage after surgery was low to compared with grafted with bone cells. 3. In the case of porous hydroxyapatite inoculated with bone cell, less inflammatory cell infiltration and rapid new bone formation activity was revealed than hydroxyapatite only group. Active new bone formation were observed in the early stage of control group. 4. The origin of new bone forming was revealed not from the center of defected area but from the surface of preexisting bony wall on every specimen. 5. In this experiment, osteoclastic cell was not found around grafted materials, and fibrovascular invasion into regions with no noticeable foreign body reaction. Conclusively, the cultured bone cell inoculated onto the porous hydroxyapatite may have an important role of regeneration of artificial bone defects of alveolar bone.

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개 퇴행성 관절염 모델을 이용한 연골과 활액 내 단백질 분해 효소와 억제제의 작용 연구 (Proteinases and their Inhibitors in Cartilage and Synovial Fluid Acquired from a Canine Osteoarthritic Model)

  • 설재원;이해범;김남수;이영훈;강형섭;김인식;박상열
    • 한국임상수의학회지
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    • 제26권2호
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    • pp.144-149
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    • 2009
  • 퇴행성관절염(Osteoarthritis,OA)은 관절 부위의 퇴행성 변화가 특징이며, 이를 진단하기 위해서는 연골세포나 활액에서 유래된 표지인자가 일반적으로 사용된다. 이번 연구에서는 개를 이용하여 실험적으로 퇴행성관절염을 유도하고, 활액과 연골세포에서 단백질 분해 효소인 matrix metalloproteinase(MMPs)와 MMPs의 활성을 억제시키는 것으로 알려진 tissue inhibitors of metalloproteinases(TIMPs)의 발현 정도를 조사하였다. 20마리의 비글견이 퇴행성관절염 모델로 사용되었으며 MMP-2 와 -9은 Western blot 분석에 의해서, TIMP-2의 농도는 ELISA(enzyme-linked immunosorbent assays)에 의해 결정하였다. 퇴행성관절염 유도 4주 후에 연골에서 분리한 연골세포에서 MMP-2의 발현은 증가되었지만 MMP-9의 발현은 감소되었다. 그러나, 퇴행성관절염을 유도한 개의 활액에서는 MMP-2와 -9의 발현이 모두 증가하는 것을 보였다. TIMP-2의 농도는 퇴행성관절염을 유도한 연골에서 분리한 연골세포에서는 높았지만, 활액에서는 낮은 농도를 보였다. 이러한 결과는 MMP-9가 퇴행성관절염 시 연골 조직의 변성에 따른 연골세포의 손상에 의해 MMP-2보다 더 활액으로 방출된다는 것을 보여주며, 활액 내 TIMP-2의 감소에 따른 MMPs의 활성이 퇴행성관절염을 더욱 악화시키는 것을 제안해준다. 결국 MMPs의 활성은, 특히 MMP-9, 개의 퇴행성관절염의 조기 진단과 치료를 위한 표지인자로서 사용할 수 있을 것으로 사료된다.

척수손상 모델 견 표준화를 위한 방사선, 자기공명영상 및 조직 병리 평가 (Radiographic, MRI and Histopathologic Assessment to Standardize Canine Spinal Cord Injury Model)

  • 성윤상;윤성호;박재순;김희경;장용민;구세광;박현정;장광호
    • 한국임상수의학회지
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    • 제27권5호
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    • pp.546-552
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    • 2010
  • 대부분 척수손상 모델에서의 척수 손상 정도 평가는 자기공명 영상 등을 통한 유발 후 평가를 실시하고 있으며, 유발 전 평가를 위해 풍선 카테타에 주입된 공기 양을 기준한 예가 있으나 종 특이성과 개체 차이를 고려하지 못하는 단점이 있다. 이러한 단점을 극복한 척수손상 기준모델을 제시하기 위해 본 실험을 실시하였다. 방사선 평가를 통해 요추 1 번 척수강 높이가 8 mm로 측정된 임상적으로 건강한 비글견 8 마리를 풍선카테타의 직경과 척수 압박시간을 기준으로 4개 군 (4 mm/3 시간, 4 mm/6 시간, 4 mm/12 시간 그리고 6 mm/3 시간)으로 구분하였다. 손상 정도는 행동 관찰, 자기공명영상 해석, 체성감각유발전위평가 그리고 병리조직검사를 실시하여 평가하였다. 실험결과, 행동평가와 체성감각유발전위평가는 단지 손상 유발 여부만 지시할 뿐 정도 평가에는 유용하지 못하였다. 자기공명영상 평가에서 척수손상 부위는 단시간반전회복영상과 T2강조영상에서 불균질한 고신호강도 영역으로 관찰되었다. 고신호강도 영역은 삽입된 풍선 직경과 압박시간 증가에 따라 보다 확장되어 관찰되었으며, 이러한 소견은 공포화 등의 손상부위 증가와 카스파제-3 및 PARP 면역반응 세포의 수적 증가로 나타난 병리조직검사 결과와 일치하였다. 이러한 결과로 미루어 정형화된 척수손상 모델 유발을 위한 척수강 직경과 풍선카테타 직경 그리고 압박시간의 변수 이용과 손상 정도 평가를 위해 자기공명영상은 매우 유용할 것으로 판단된다.

생체내 혈중 납 표준물질의 제조 (In Vivo Preperation of Standard Reference Materials of Lead in Blood)

  • 정규철;최호춘
    • Journal of Preventive Medicine and Public Health
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    • 제28권4호
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    • pp.863-873
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    • 1995
  • This report describes a preperation and characterization of canine blood lead(Pb) standard reference material(SRM). Three adult beagle dogs(A, B, and C)were orally dosed with gelatin capsules containing $Pb(NO_3)_2$, equivalent to $10\sim80mg$ Pb/kg body weight. Blood was drawn 24 hours after the dose from the cephalic vein into lead free 500ml Pyrex beaker in which EDTA.K was contained as an anticoagulant. The amount of lead given to individual dog was varied arbitrarily. Three month later, 3 canine animals were orally dosed with lead secondarily to make mixed SRM(D1) which was mixed different concentrations of lead in bloods with A1, B1, and C1 in vitro. The SRMs for A, B, C, A1, B1, C1, and D1 were distributed 2ml each into more than 300 lead free bottles, and were stored in refregerator at $4^{\circ}C$. The amount of lead in canine whole blood samples were determined using a Varian 30A atomic absorption spectrophotometer(AAS) with a model GTA-96 graphite tube atomizer with D2 background correction and a Hitachi Z-8100 AAS with Zeeman background correction. The sensitivity and detection limits for lead determination of Varian 30A were $0.46{\mu}g/L,\;0.34{\mu}g/L,\;and\;0.56{\mu}g/L,\;0.14{\mu}g/L$ of Hitachi Z-8100, respectively. Day to day variations in determination of blood lead concentration in a certain sample were $31.11{\pm}1.36{\mu}g/100ml$ by Varian 30A, and $33.08{\pm}0.82{\mu}g/100ml$ by Hitachi Z-8100, showing the difference of 3% between the two results. At the blood lead concentrations of $56.31{\pm}1.98{\mu}g/100ml(A),\;40.89{\pm}0.80{\mu}g/100ml(B),\;59.01{\pm}1.38{\mu}g/100ml(C)$, the precisions of replicated measurements by AAS were 3.52%, 1.96%, and 2.34%, respectively. Coefficient variation(CV) of SRMs(A, B, and C) within a standard sample were ranged from 0.92% to 7.50%, and those between 5 standard samples were 1.21%, 2.64%, and 1.11%, respectively, showing inter-vial variation of $1{\mu}g/100ml$. Lead levels in SRMs during one month storage were unchanged. The overall recoveries were $89.6\sim100.4%,\;91.6\sim101.9%,\;90.3\sim100.0%$ for A, B, and C SRMs, means were $56.46{\pm}2.69{\mu}g/100ml,\;39.35{\pm}1.89{\mu}g/100ml,\;57.40{\pm}2.31{\mu}g/100ml$, and measurement ranges were$52.88{\pm}59.26{\mu}g/100ml,\;37.47{\pm}41.68{\mu}g/100ml,\;54.80{\pm}60.69{\mu}g/100ml$, respectively. Those results were laid within confidence limits values. The lead concentrations in the mixed sample(D1) stored over one month period were ranged from $32.76{\mu}g/100ml\;to\;33.54{\mu}g/100ml$, with CV ranging from 1.2% to 2.7%. The results were similiar to each of single samples(A1, B1, and C1) in respect of homogeneity and stability. Results of the mixed blood sample analysed after 1 month storage at $4^{\circ}C$ by four other laboratories(L1, L2, L3, L4) were similar with those of our laboratory($L5;31.18{\pm}0.24{\mu}g/100ml$, acceptable range by $CDC;25.18\sim37.18{\mu}g/100ml$), showing the concentrations of $25.91{\pm}1.19{\mu}g/100ml(L1),\;34.16{\pm}0.22{\mu}g/100ml(L2),\;35.68{\pm}0.85{\mu}g/100ml(L3),\;30.95{\pm}0.46{\mu}g/100ml(L4)$ in a each samples.

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