• 제목/요약/키워드: specimen collection and storage

검색결과 8건 처리시간 0.019초

유전체 역학 연구를 위한 시료의 보관과 분석 (Specimen of Storage and Analysis for Genomic Epidemiology)

  • 이관희;홍윤철
    • Journal of Preventive Medicine and Public Health
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    • 제36권3호
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    • pp.209-212
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    • 2003
  • Because of advances of technologies in the field of genmic epidemiology in the recent years, specimen collection, storage and analysis became an essential part of research methodologies. DNA is now being used in epidemiologic studies to evaluate genetic risk factors and specimens other than the fresh whole blood can De used for PCR. Therefore, All nucleated cells, such as buccal swabs and urine specimens, are suitable for DNA analysis. For an unlimited source of genomic DNA, EBV transformation of lymphocytes can be used for immortalization. However, the type of specimen collected in genomic epidemiologic studies will depend on the study where the epidemiologist play a leading role for the design. We also briefly described various finds of analysis for SNP that is an essential part of the genomic epidemiology.

SE-9000 자동 혈구계산기에서 EDTA 검체의 보관기간 및 온도가 CBC 및 백혈구 감별계산에 미치는 영향 (The Effect of the Storage Duration and Temperature of EDTA Specimen for CBC and WBC Differential Count in SE-9000 Automated Cell Counter)

  • 홍승복;김종석;신경섭
    • 대한임상검사과학회지
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    • 제38권3호
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    • pp.147-151
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    • 2006
  • Although various automated CBC analyzers with different WBC analytical principles were consequently introduced to clinical laboratory, the specific information concerning the suitability or unsuitability of aging samples is scarce. For this reason, we studied the effect of storage duration and temperature on CBC parameter in SE-9000 (SYSMEX Medical Electronics Co., Ltd., Kobe, Japan), automated CBC analyzer. We tested 32 K3-EDTA specimens with SE-9000 during 72 hours. Specimens were kept at room temperature (RT) and refrigerated and were analyzed at 0 hr, 4 hr, 8 hr, 24 hr, 48 hr and 72 hr after the collection of the specimens. The percentage changes from initial value for each parameters were calculated. Among the CBC parameters, hemoglobin, red blood cell count, mean corpuscular hemoglobin and platelets were stable for the study period at both temperatures. The mean corpuscular volume (MCV), hematocrit (Hct) and red cell distribution (RDW) increased and the mean corpuscular hemoglobin concentration (MCHC) decreased over time at room temperature. These parameters were stable when refrigerated. The leukocyte count was stable during 72hr at RT and when refrigerated. At room temperature, the relative percentages of neutrophils tend to increase, whereas those of lymphocyte and monocytes tend to decrease after 48 hours. When refrigerated, those of neutrophils and monocytes tend to increase, whereas those of lymphocytes tend to decreased over time. CBC parameters of refrigerated specimen were reliable for 72 hr for the exception of differential count from 24 hr but many CBC parameters, such as MCV, Hct, MCHC, RDW and differential count of leukocyte of blood stored at room temperature for 24 hr were unreliable.

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소변 검체 분석물질의 냉/해동 과정 안정성 평가 연구 (A Study on Stability evaluation in the freezing/thawing process of urine specimen analytes)

  • 김민경;김성욱;황유성;오은하
    • 한국응용과학기술학회지
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    • 제39권1호
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    • pp.52-62
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    • 2022
  • 소변검사 전 냉/해동 반복과 해동 과정에 따라 대표적인 임상 화학검사 측정값의 변화를 확인함으로써 소변검사의 안정성과 품질 개선방안을 모색하고자 하였다. 조사 대상자는 모두 건강한 남성 10명이었으며 이들의 소변 검체를 이용하여 냉/해동 안정성(freeze and thaw stability) 실험을 진행하였다. Micro-albumin과 Amylase의 경우 시간이 경과 됨에 따라 37℃에서는 통계적 유의성은 없었으나, 42℃와 60℃에서는 시간의 경과에 따른 결과가 통계적으로 유의한 변동이 있었고, BUN, Creatinine, Uric acid와 Glucose에서는 통계적으로 유의한 변동이 있었다. Long term의 안정성 결과, 7일이 지난 후에는 Glucose의 변이는 증가하였고, 60℃에서는 Amylase가 감소하는 양상을 보였다. Glucose와 Amylase의 경우 시간의 경과에 따른 결과가 통계적으로 유의한 변동이 있었다. 신뢰성 있는 검사결과를 얻기 위해서는 소변 시료의 채취, 보관 및 저장 등을 비롯한 요검사의 정확한 표준화가 필요하며 생체 물질별 안정성 확보를 위한 조건들의 체계적 연구가 필요하다.

Effect of storage time and temperature on levels of phthalate metabolites and bisphenol A in urine

  • Guo, Ying;Wang, Lei;Kannan, Kurunthachalam
    • Advances in environmental research
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    • 제2권1호
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    • pp.9-17
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    • 2013
  • Urine is a widely used matrix in biomonitoring studies on the assessment of human exposure to environmental chemicals such as phthalate esters and bisphenol A (BPA). In addition to the need to apply valid analytical techniques, assurance of specimen integrity during collection and storage is an important prerequisite for the presentation of accurate and precise analytical data. One of the common issues encountered in the analysis of non-persistent contaminants is whether shipping and storage temperature and time since collection have an effect on sample integrity. In this study, we investigated the stability of phthalate metabolites and BPA in spiked and unspiked urine samples stored at room temperature ($20^{\circ}C$) or at $-80^{\circ}C$ for up to 8 weeks. Concentrations of phthalate metabolites declined, on average, by 3% to 15%, depending on the compounds, and BPA declined by ~30% after 4 weeks of storage of spiked urine samples at $20^{\circ}C$. In a test of 30 unspiked urine samples stored at $20^{\circ}C$ and at $-80^{\circ}C$ for 8 weeks, the concentrations of phthalate metabolites and BPA decreased by up to 15% to 44%, depending on the compound and on the samples. It was found that the small reduction in phthalate concentrations observed in urine, varied depending on the samples. In a few urine samples, concentrations of phthalate metabolites and BPA did not decline even after storage at $20^{\circ}C$ for 8 weeks. We found a significant relationship between concentrations of target analytes in urine stored at $20^{\circ}C$ and at $-80^{\circ}C$ for 8 weeks. We estimated the half-lives of phthalate metabolites and BPA in urine stored at $20^{\circ}C$. The estimated half-life of monoethyl phthalate (mEP) and mono (2-ethyl-5-carboxyphentyl) phthalate (mECPP) in urine stored at $20^{\circ}C$ was over two years, of mono (2-ethyl-5-oxohexyl) phthalate (mEOHP) and monobenzyl phthalate (mBzP) was approximately one year, and of other phthalate metabolites was approximately 6 months. The estimated half-life of BPA in urine stored at $20^{\circ}C$ was approximately 3 months, which is much longer than that reported for aquatic ecosystems.

타액 중 ${\Delta}^9$-Tetrahydrocannabinol 및 11-Nor-9-carboxy-${\Delta}^9$-Tetrahydrocannabinol의 분석법 확립 및 안정성 검토 (Development of Quantification Method and Stability of ${\Delta}^9$-Tetrahydrocannabinol and 11-Nor-9-carboxy-${\Delta}^9$-Tetrahydrocannabinol in Oral Fluid)

  • 최혜영;백승경;장문희;최화경;정희선
    • 약학회지
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    • 제54권4호
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    • pp.226-231
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    • 2010
  • Oral fluid has become increasingly popular as an alternative specimen in the field of driving under the influence of drugs (DUID) and work place drug testing. In this study, an analytical method for the detection and quantification of ${\Delta}^9$-tetrahydrocannabinol (THC) and its metabolite, 11-nor-9-carboxy-${\Delta}^9$-tetrahydrocannabinol (THC-COOH) in oral fluid by SPE and GC-MS was established and fully validated. The stability of THC and THC-COOH in oral fluid during storage was also determined by examining the THC and THC-COOH concentration changes depending on time and container materials. Oral fluid samples were kept over 21 days at room temperature, $-4^{\circ}C$ and $-20^{\circ}C$ in two different specimen collection tubes; glass and polypropylene tubes. Three replicates for each condition with different temperature and types of a container were analyzed at five different time points over 21 days. When oral fluid samples were stored in glass tubes, the loss of both THC and THC-COOH was less than 10% at all room temperature, $-4^{\circ}C$ and $-20^{\circ}C$. However, in polypropylene tubes, the loss of both THC and THC-COOH increased significantly over the study period. In particular, the concentration of THC decreased more rapidly than that of THC-COOH at room temperature and the maximal percentage of THC lost was 90.3% after 21 days. The result indicates that it would be necessary to collect oral fluid samples in glass containers and cool the samples until analysis in order to prevent the degradation of analytes.

흰쥐 생체시료 중 5-플루오로우라실 및 테가푸르의 안정성 (Stability of 5-FU and Tegafur in Biological Fluids of Rats)

  • 장지현;박종국;강진형;정석재;심창구;구효정
    • Journal of Pharmaceutical Investigation
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    • 제34권3호
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    • pp.161-168
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    • 2004
  • 5-Fluorouracil (5-FU) is an antimetabolite anticancer agent active against many types of solid tumors. Tegafur (TF), a prodrug of 5-FU, is frequently used in combination with uracil as dihydropyrimidine dehydrogenase (DPD) inhibitory fluoropyrimidine. We studied the stability of 5-FU and TF in biological fluids of rats and determined their bioavailability (BA) and excretion into bile, and urine. The drug concentrations were analyzed by an HPLC method. At room temperature, there was a 14-30% decrease in the concentration of 5-FU and TF in bile, urine, and plasma specimen at 10 and $100\;{\mu}g/ml$ over 240 min. No significant difference was noted among the sample types or between two different concentrations of 10 and $100{\mu}g/ml$. The decrease in drug concentration was significantly less in samples kept on ice (6-12%) for both drugs. These data indicate that biological fluid samples containing 5-FU or TF in plasma, urine, or bile should be placed on ice during the sample collection. Following these storage guidelines, samples were collected after administration 50 mg/kg of each drug via i.v. or oral route. BA was 1.5 folds greater for TF (60%) than that of 5-FU (42%). Approximately 0.52 and 3.3% of the i.v. doses of 5-FU and TF was excreted into bile, respectively. Renal clearance of 5-FU was about 16% of its total body clearance. These results suggest that instability of 5-FU and TF in biological fluids should be considered in pharmacokinetic or pharmacogenomic studies.

타액 연구의 최신 지견과 임상 응용 (Trends in Saliva Research and Biomedical Clinical Applications )

  • 박소영;이은경;신종현;정태성
    • 대한소아치과학회지
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    • 제50권1호
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    • pp.1-12
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    • 2023
  • 타액선의 기능과 타액의 구성성분은 개체의 건강 상태를 반영하는 지표가 될 수 있다. 타액에서 바이러스와 미생물, 호르몬, 면역 및 대사산물 등을 검출하는 미량원소 분석기술이 발달함에 따라, 전신건강의 진단, 평가, 예방 분야에서 타액의 활용가능성이 높아지고 있다. 진단 검체로써 타액은 혈액에 비해 채취 방법이 비 침습적이어서 환자의 불편감이 적고 비 전문가에 의한 검체 수집이 가능할 뿐 아니라 채취과정 중 감염 위험성이 낮다는 점에서 장점이 있다. 이러한 이유로 스트레스, 마이크로바이옴, 유전학 및 후생유전학 분야의 연구에 있어 타액 내 단백질, 유전물질이나 각종 생체표지자 등을 활용하는 방법이 주목받고 있다. 또한 전신 건강에 대한 빅데이터 수집 연구와 관련하여 타액을 효율적으로 활용, 보관하기 위한 인체 자원 은행의 필요성이 강조되고 있으며, 조직공학과 접목하여 타액선 재생연구도 활발히 진행되고 있다. 검체 채취법이나 보관, 활용 방법의 표준화를 비롯하여 해결해야 할 과제가 남아있으므로, 본 리뷰에서 타액 및 타액선에 관한 최근의 연구 동향을 알아보고 미래 발전 방향에 대하여 검토해 보고자 하였다.

Glucagon 검사시 Aprotinin 첨가와 Plastic tube 사용이 미치는 영향 (The Effects of Aprotinin Addition and Plastic Tube Usage for Glucagon Test Results)

  • 조윤교;최삼규;서소연;신용환
    • 핵의학기술
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    • 제15권1호
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    • pp.117-120
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    • 2011
  • Glucagon은 췌장 Langerhans섬 ${\alpha}$-세포에서 합성 분비되며, 기능으로는 간 당원분해, 지방분해, 인슐린분비 촉진 작용 등이 있다. Glucagon의 측정은 Glucagon 과잉증에 의한 당뇨병, 특발성 Glucagon 결손증, 불안정 당뇨병에서 저혈당의 진단을 하기위해 실시된다. Glucagon 측정시 세 가지 주의를 요하는데, 첫째, Aprotinin이 첨가된 EDTA tube에 채혈해야 하고 둘째, Plasma를 분리하여 Glass tube에 냉동 보관하여야 하고, 마지막으로 검사시에도 Glass tube에서 측정을 해야 한다. 이에 우리는 EDTA tube에 Aprotinin의 유무에 따른 결과 비교, 검체 보관 용기의 차이에 따른 비교(Plastic tube/ Glass tube), 측정용기에 따른 비교(Plastic tube/Glass tube)를 하여, 세 가지가 결과에 미치는 영향을 알아보고자 한다. 성별 구분 없이 건강검진에서 정상 소견을 보인 성인 40명을 대상으로 실험하여 대조군과 세가지 다른 실험군의 Glucagon 결과를 비교하였다. Aprotinin첨가한 EDTA 용기에 채혈 후, 검체를 Glass tube에 3일 냉동 보관하여 Glass tube에서 실험(대조군)한 결과와 Aprotinin첨가하지 않은 EDTA 용기에 채혈한 결과(실험군1), Plastic tube에 3일 냉동 보관한 후의 결과(실험군2), Plastic tube에서 실험(실험군3)한 결과를 비교하였다. 통계적인 분석은 SPSS를 이용한 paired t-test와 단순선형회귀분석을 실시하였고 시약은 상품화된 Siemens사의 Glucagon RIA kit를 사용하였다. Aprotinin이 첨가된 EDTA 용기에 채혈하여 실험한 결과와 Aprotinin이 첨가되지 않은 EDTA용기에 채혈하여 실험한 상관계수는 r=0.783(p=0.064)를 보였다. 검체 분리 후 Plastic tube에서 3일 냉동 보관하여 실험한 결과는 Glass tube의 결과에 비해서 유의하게 낮게 나타났다(r=0.979, p=0.005). 또 측정 시 Plastic tube를 사용한 결과도 Glass tube에서 실험한 결과보다 유의하게 낮게 나타났다(r=0.754, p<0.001). Glucagon 검사 시에는 단백 분해효소 억제제인 Aprotinin이 첨가된 EDTA tube 사용이 권장되며, Plastic tube 사용 시 환자의 결과가 유의하게 낮게 나타나므로 검체는 분리 후 Glass tube에 냉동 보관하고 Glass tube에서 실험하여야 한다.

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