• 제목/요약/키워드: DRL1

검색결과 37건 처리시간 0.033초

잎의 발생과정에 있어서의 극성제어 (Regulation of Leaf Polarity during Leaf Development)

  • 조규형;전상은;;김경태
    • 식물분류학회지
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    • 제38권1호
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    • pp.51-61
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    • 2008
  • 잎은 무한생장기관으로 잎의 극성제어에 많은 유전적인 요소가 필요하다. 이들 극성은 잎의 초기발생과정에서 제어되기 시작하고, 정단분열조직과 잎기관의 원기와의 제어를 담당하는 인자들에 의해서 결정이 된다. 본 연구에서는 가늘고 바늘처럼 생긴 잎을 가진 deformed root and leaf1 (drl1) 돌연변이체를 유전학적 해석하였고, 그 결과 DRL1 유전자는 정단분열조직과 잎의 극성축을 제어하고 있는 것으로 판명되었다. 이 DRL1 유전자는 효모의 KTI12 유전자 산물과 유사한 단백질인 Elongator associate protein을 만들어 내는 것으로 판명되었다. 또한, 이 단백질의 아미노산 서열이 원핵생물에서부터 진핵생물까지 광범위하게 진화적으로 보존되고 있는 것으로 밝혀졌다. 특히, DRL1 단백질과 유사한 식물의 단백질은 계통해석 결과 단일계통을 나타내고 있는 것으로 나타났고, 이는 이 단백질들이 육상식물의 진화과정에서 잘 보존되고 있음을 시사하고 있다.

Comparative Analysis of the Conserved Functions of Arabidopsis DRL1 and Yeast KTI12

  • Jun, Sang Eun;Cho, Kiu-Hyung;Hwang, Ji-Young;Abdel-Fattah, Wael;Hammermeister, Alexander;Schaffrath, Raffael;Bowman, John L.;Kim, Gyung-Tae
    • Molecules and Cells
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    • 제38권3호
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    • pp.243-250
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    • 2015
  • Patterning of the polar axis during the early leaf developmental stage is established by cell-to-cell communication between the shoot apical meristem (SAM) and the leaf primordia. In a previous study, we showed that the DRL1 gene, which encodes a homolog of the Elongator-associated protein KTI12 of yeast, acts as a positive regulator of adaxial leaf patterning and shoot meristem activity. To determine the evolutionally conserved functions of DRL1, we performed a comparison of the deduced amino acid sequence of DRL1 and its yeast homolog, KTI12, and found that while overall homology was low, well-conserved domains were presented. DRL1 contained two conserved plant-specific domains. Expression of the DRL1 gene in a yeast KTI12-deficient yeast mutant suppressed the growth retardation phenotype, but did not rescue the caffeine sensitivity, indicating that the role of Arabidopsis Elongator-associated protein is partially conserved with yeast KTI12, but may have changed between yeast and plants in response to caffeine during the course of evolution. In addition, elevated expression of DRL1 gene triggered zymocin sensitivity, while overexpression of KTI12 maintained zymocin resistance, indicating that the function of Arabidopsis DRL1 may not overlap with yeast KTI12 with regards to toxin sensitivity. In this study, expression analysis showed that class-I KNOX genes were downregulated in the shoot apex, and that YAB and KAN were upregulated in leaves of the Arabidopsis drl1- 101 mutant. Our results provide insight into the communication network between the SAM and leaf primordia required for the establishment of leaf polarity by mediating histone acetylation or through other mechanisms.

Glass dosimeter와 PCXMC Program을 이용한 소아피폭선량 측정 및 분석 (Measurement and Analysis of Pediatric Patient Exposure Dose Using Glass dosimeter and a PC-Based Monte Carlo Program)

  • 김영은;이정화;홍선숙;이관섭
    • 대한디지털의료영상학회논문지
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    • 제14권2호
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    • pp.9-14
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    • 2012
  • Exposed dose of young child should be managed necessarily. Young child is more sensitive than adult of a Radioactivity, especially, and lives longer than adult. Must reduce exposed dose which follows The ALARA(As Low As Reasonably Achievable)rule is recommended by ICRP(International Commission on Radiological Protection)within diagnostic useful range. Therefore, We have to prepare Pediatric DRL(Diagnostic Reference Level) in Korea as soon as possible. Consequently, in this study, wish to estimate organ dose and effective dose using PCXMC Program(a PC-Based Monte Carlo Program), and measure ESD(Entrance surface dose)and organ dose using Glass dosimeter, and then compare with DRL which follows EC(European Commission)and NRPB(National Radiological Protection Board). Using glass dosimeter and PCXMC programs conforming to the International Committee for Radioactivity Prevention(ICRP)-103 tissue weighting factor based on the item before the organs contained in the Chest, Skull, Pelvis, Abdomen in the organ doses and effective dose and dose measurements were evaluated convenience. In a straightforward way to RANDO phantom inserted glass dosimeter(GD352M)by using the hospital pediatric protocol, and in a indirect way was PCXMC the program through a virtual simulation of organ doses and effective dose were calculated. The ESD in Chest PA is 0.076mGy which is slightly higher than the DRL of NRPB(UK) is 0.07mGy, and is lower than the DRL of EC(Europe) which is 0.1mGy. The ESD in Chest Lateral is 0.130mGy which is lower than the DRL of EC(Europe) is 0.2mGy. The ESD in Skull PA is 0.423mGy which is 40 percent lower than the DRL of NRPB(UK) is 1.1mGy and is 28 percent lower than the DRL of EC(Europe) is 1.5mGy. The ESD in Skull Lateral is 0.478mGy which is half than the DRL of NRPB(UK) is 0.8mGy, is 40 percent lower than the DRL of EC(Europe) is 1mGy. The ESD in Pelvis AP is 0.293mGy which is half than the DRL of NRPB(UK) is 0.60mGy, is 30 percent lower than the DRL of EC(Europe)is 0.9mGy. Finally, the ESD in Abdomen AP is 0.223mGy which is half than the DRL of NRPB(UK) is 0.5mGy, and is 20 percent lower than the DRL of EC is 1.0mGy. The six kind of diagnostic radiological examination is generally lower than the DRL of NRPB(UK)and EC(Europe) except for Chest PA. Shouldn't overlook the age, body, other factors. Radiological technician must realize organ dose, effective dose, ESD when examining young child in hospital. That's why young child is more sensitive than adult of a Radioactivity.

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CANDU형 원전에서의 유도방출한도 결정 (Determination of Derived Release Limits for a CANDU Nuclear Power Plant)

  • 김교윤;황해룡;김종경
    • Journal of Radiation Protection and Research
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    • 제19권1호
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    • pp.23-35
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    • 1994
  • CANDU형 원자력 발전소에서의 유도방출한도를 계산하기 위한 전산 코드 DRL이 개발되었다. DRL 코드에서의 유도방출한도는 CANDU형 원자력 발전소가 정상 가동될 때의 기체 및 액체 방출물에 포함된 방사성 핵종의 방출 허용 기준을 설정하기 위한 것이다. 본 전산 코드는 CSA Standard N288.1-M87에서 권고하고 있는 방법 및 다수 매개 변수를 이용하였고, 월성 원자력 발전소를 대상으로 유도방출한도를 결정하는데 이용되었다.

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심층 강화학습 기술 동향 (Research Trends on Deep Reinforcement Learning)

  • 장수영;윤현진;박노삼;윤재관;손영성
    • 전자통신동향분석
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    • 제34권4호
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    • pp.1-14
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    • 2019
  • Recent trends in deep reinforcement learning (DRL) have revealed the considerable improvements to DRL algorithms in terms of performance, learning stability, and computational efficiency. DRL also enables the scenarios that it covers (e.g., partial observability; cooperation, competition, coexistence, and communications among multiple agents; multi-task; decentralized intelligence) to be vastly expanded. These features have cultivated multi-agent reinforcement learning research. DRL is also expanding its applications from robotics to natural language processing and computer vision into a wide array of fields such as finance, healthcare, chemistry, and even art. In this report, we briefly summarize various DRL techniques and research directions.

하악 구치 발육을 이용한 연령감정에 관한 연구 (A Study on the Age Determination with the Aid of Mandibular Molar Development)

  • Young-Don Hur;Jong-Mo Ahn;Chang-Lyuk Yoon
    • Journal of Oral Medicine and Pain
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    • 제19권2호
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    • pp.221-231
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    • 1994
  • Age determination in children have been criticized because they rely on subjective estimations of tooth development, as seen in radiographs. This study was undertaken to obtain the objective estimation of developing teeth. The panoramic radiograph of 254 males and 254 females ranging from 6 to 14 years of age were studied. The structures measured were crown height, apex width and root length. The data weree statistically investigated with SPSS/PC + package. The results were as follows : 1. With the aid of a multiple regression model, a linear relationship between some of these distances and age was shown. 2. In th total material(6-14yr) and four-yr. intervals, linear equations are as follow : Boys : 6-14 age = 683 + 145.6 44RL + 126.6.45RL + 71.1 46DRL - 161.3 46DAW 6-10 age = 1202 + 72.6 46DRL + 100.2 44RL + 75.1 45RL 8-12 age = 3818 + 75.9 45RL - 190.9 44AW 10-14 age = 4151 + 58.6 45RL - 84.0 45AW - 130.6 44AW Girls : 6-14 age = 1587 + 104.9 45RL + 113.4 44RL - 233.1 46DAW + 81.4 47DRL - 255.9 46MAW 6-10 age = 1821 + 55.8 46DRL + 67.2 45RL - 184.2 46MAW + 56.3 44RL 8-12 age = 2435 + 68.2 45RLL + 71.3 44RL 10-14 age = 3485 + 49.9 47DRL - 51.3 45AW - 179.9 47DAW + 33.4 45RL + 39.4 44RL (DRL, length of distal root in molars. RL, root length in premolars. DAW, width of distal apex in molars. MAW, width of mesial apex in molars. AW, width of apex n molars)

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진단참고수준 기반 두부 방사선검사의 최적 목표노출지수 설정에 관한 연구 (A Study on Establishment of the Optimal Target Exposure Index for Skull Radiography Based on Diagnostic Reference Level)

  • 박혜민;윤용수;김은혜;정회원;김정수
    • 대한방사선기술학회지:방사선기술과학
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    • 제44권6호
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    • pp.599-605
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    • 2021
  • The International Electrotechnical Commission (IEC) 62494-1 has defined the exposure index (EI) that have a proportional relationship with the dose incident on the image receptor, and target exposure index (EIT), deviation index (DI). In this study, an appropriate EIT for skull radiography was established through the diagnostic reference level (DRL) and changes in DI were confirmed. Entrance surface dose (ESD) and EI were obtained using the computed radiography system displayed the EI as per IEC on console and skull phantom by experiment based on the national average exposure conditions announced in 2012 and 2019. And appropriate EIT was established by applying the DRL in 2012 and 2019. As a results, the EIT is changed according to the change in the DRL, and the exposure condition that becomes the ideal DI according to the change in the EIT also has a difference of about 1.41 times. DRL is recommended to optimize the patient dose, however it is difficult to measure in real time at medical institutions whereas EI and DI are displayed on the console at the same time as exposure. When the EIT is set based on the DRL and the DI is closed to an ideal value, it is useful as a patient dose management tool. Therefore, when the EIT is periodically managed along with the revision of the DRLs, the patient dose can be optimized through the EI, EIT and DI.

흉부 저선량 및 복부 비조영 CT 검사에서 환자 및 장비 인자와 선량과의 상관관계 분석 (Correlation Analysis of between Patient and Equipment Factors and Radiation Dose in Chest Low Dose and Abdominal Non-contrast CT)

  • 심지나;이영진
    • 한국방사선학회논문지
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    • 제15권2호
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    • pp.117-123
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    • 2021
  • 본 논문에서는 흉부 저선량 CT와 복부 비조영 CT에서 선량기록을 바탕으로 환자선량에 영향을 줄 수 있는 요인과 상관관계를 확인하여 실질적인 선량 감소 방안의 근거를 마련하고자 하였다. 흉부 저선량 CT와 복부 비조영 CT 검사 시 불필요하게 피폭이 발생하는 원인을 찾기 위해 7가지 요인(나이, 성별, 키, 몸무게, BMI, 환자 상태 (입원, 외래), dose modulation 활성화 유무)과 CT 선량과의 상관관계를 확인하였다. 상관관계 확인을 위해 사용된 통계기법으로는 로지스틱 회귀분석을 사용하였다. 흉부 저선량 CT 검사에서는 키가 클수록, BMI 가 높을수록, dose modulation을 비활성화한 경우에 진단참고수준 (diagnostic reference levels, DRL) 기준치의 초과 위험률이 낮아졌다 (odds ration<1; p<0.05). 또한 여성의 경우와 몸무게가 클수록 DRL 기준치의 초과 위험률이 높아졌다 (odds ration>1; p<0.05). 복부 비조영 CT 검사에서는 몸무게가 클수록, dose modulation을 비활성화한 경우에 DRL 기준치의 초과 위험률이 낮아졌다 (odds ration<1; p<0.05). 이처럼 방사선 피폭에 영향을 주는 다양한 요인에 대한 연구를 수행하여 환자 선량과의 연관성을 찾고 이에 따른 선량을 낮추는 노력이 필요할 것으로 사료된다.

개선된 가딩(Guarding) 회로를 사용한 트랜스콘덕턴스 DRL 회로 (A Transconductance Driven-Right-Leg Circuit with Improved Guarding Circuit)

  • 황인덕
    • 전기학회논문지
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    • 제58권8호
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    • pp.1644-1650
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    • 2009
  • An improved guarding circuit is applied to a transconductance driven-right-leg circuit to decrease common-mode current at measurement electrodes due to power-line interference. After showing conventional guarding circuit is instable due to gain-peaking when used with a transconductance DRL circuit, the effect of the proposed guarding circuit modified to suppress the gain-peaking by inserting a series resistor between shields and a shield driver was analyzed. It is shown that, besides stability, the proposed guarding circuit provides two other advantages: 1) The gain of the shield driver can be set to be unit nominally. 2) The loop gain of the transconductance DRL loop can be increased due to pole-zero canceling. The proposed circuit was implemented and the advantages were confirmed.

ALARA 개념(槪念)에 의한 기체상방사성물질(氣體狀放射性物質)의 환경방출한도(環境放出限度) 설정(設定) (Establishment of Release Limits for Airborne Effluent into the Environment Based on ALARA Concept)

  • 이병기;차문회;남순권;장시영;하정우
    • Journal of Radiation Protection and Research
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    • 제10권1호
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    • pp.50-63
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    • 1985
  • 농축인자법(濃縮因子法)(Concentration Factor Method)을 이용(利用)하여 결정피폭경로(決定被曝經路)를 분석(分析)한 후(後) 표준원전(標準原電)의 기체상방사성대기방출물(氣體狀放射性大氣放出物)에 대한 유도방출한도(誘導放出限度)(Derived Release Limits, DRL's)를 계산(計算)하였다. 이 방출한도(放出限度)는 핵시설(核施設) 주변(周邊)의 결정군구성개인(決定群構成個人)에 대(對)한 방사선(放射線) 피폭(被曝)을 관련피폭한도이하(關聯被曝限度以下)로 유지(維持)시키는 양(量)이다 본(本) 연구(硏究)에서는 1985년(年) 초(初) 미국(美國)의 환경보호청(環境保護廳)(EPA)에서 새로 권고(勸告)한 피폭한도(被曝限度)를 채택(採擇)하여 계산(計算)을 수행(遂行)하였다. 유도방출한도(誘導放出限度)(DRL)의 계산(計算)은 미국(美國)의 원자력(原子力) 규제위원회(規制委員會)(USNRC)가 규제지침(規制指針)(Reg. Guide) 1.109에서 제시(提示)하고 있는 선양평가(線量評價)모델을 표준(標準)모델로 사용(使用)하여 수행(遂行)하였으나, 동(同) 모델의 피폭경로분석(被曝經路分析)에서 우유(牛乳) 및 육류(肉類)의 섭취경로(攝取經路)는 국내(國內)의 현실상(現實狀) 무시가능(無視可能)한 것으로 고려(考慮)하여 본(本) 연구(硏究)에서 제외(除外)시켰다. 계산(計算)에서 고려(考慮)한 방출선원항(放出線源項)은 희유기체(稀有氣體), 요오드, 입자상원소(粒子狀元素) 및 삼중수소기체(三重水素氣體)였으며, 방출원(放出源)에서 북(北)쪽으로 1.3 km 거리에 위치(位置)하고 있는 주민영구거주지역(住民永久居住地域)을 대상(對象)으로 계산(計算)을 수행(遂行)하였다. 본(本) 연구(硏究)에서는 표준원전(標準原電)의 대상(對象)으로 고리원전(古里原電) 1호기(號機)를 선정(選定)하여 동원전(同原電)의 연간방출(年間放出)에 대(對)한 유도한도(誘導限度)를 계산(計算)하였으며, 1982년도(年度)의 실방출률(實放出率)과 비교(比較) 검토(檢討)하였다. 검토결과(檢討結果), 고리원전(古里原電) 1호기(號機)의 1982년도(年度)의 실방출률(實放出率)은 본(本) 연구(硏究)에서 구(求)해진 유도방출한도(誘導放出限度)보다 낮았으며, 방출물(放出物)에 의한 시설주변(施設周邊) 개인(個人)의 년간피폭선량(年間被曝線量)은 EPA에서 권고(勸告)하는 피폭한도이하(被曝限度以下)로 유지(維持)되었음을 알 수 있었다. 또한 본(本) 연구(硏究)에서 가장 결정적(決定的)인 피폭경로(被曝經路)는Co-60와 Cs-137과 같은 입자상침적방사핵종(粒子狀沈積放射核種)으로 오염(汚染)된 토양(土壤)에 의한 전신외부(全身外部) 피폭경로(被曝經路)였다.

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