메뉴 건너뛰기
.. 내서재 .. 알림
소속 기관/학교 인증
인증하면 논문, 학술자료 등을  무료로 열람할 수 있어요.
한국대학교, 누리자동차, 시립도서관 등 나의 기관을 확인해보세요
(국내 대학 90% 이상 구독 중)
로그인 회원가입 고객센터 ENG
주제분류

추천
검색

논문 기본 정보

자료유형
학위논문
저자정보

차지현 (충남대학교, 忠南大學校 大學院)

지도교수
홍성진
발행연도
2021
저작권
충남대학교 논문은 저작권에 의해 보호받습니다.

이용수1

표지
AI에게 요청하기
추천
검색

이 논문의 연구 히스토리 (3)

초록· 키워드

오류제보하기
This study utilized effect-directed analysis (EDA) combined with full-scan screening analysis (FSA) to identify aryl hydrocarbon receptor (AhR)-active compounds in sediments of inland creeks flowing into Lake Sihwa, South Korea. The specific objectives were to (i) investigate the major AhR-active fractions of organic extracts of sediments by using H4IIE-luc in vitro bioassay (4 h and 72 h exposures), (ii) quantify known AhR agonists, such as polycyclic aromatic hydrocarbons (PAHs) and styrene oligomers (SOs), (iii) identify unknown AhR agonists by use of gas chromatography-quadrupole time-of-flight mass spectrometry (GC-QTOFMS), and (iv) determine contributions of AhR agonists to total potencies measured by use of the bioassay. FSA was conducted on fractions F2.6 and F2.7 (aromatics with log Kow 5?7) in extracts of sediment from Siheung Creek (industrial area). Those fractions exhibited significant AhR-mediated potency as well as relatively great concentrations of PAHs and SOs. FSA detected 461 and 449 compounds in F2.6 and F2.7, respectively. Of these, five tentative candidates of AhR agonist were selected based on NIST library matching, aromatic structures and numbers of rings, and available standards. Benz[b]anthracene, 11H benzo[a]fluorene, and 4,5-methanochrysene exhibited significant AhRmediated potency in the H4IIE-luc bioassay, and relative potencies of these compounds were determined. Potency balance analysis demonstrated that these three newly identified AhR agonists explained 1.1% to 67% of total induced AhR-mediated potencies of samples, which were particularly great for industrial sediments. Follow-up studies on sources and ecotoxicological effects of these compounds in coastal environments would be required.

목차

List of Tables ··············································································· iii
List of Figures ·············································································· iv
1. 서론 ···················································································· 1
2. 재료 및 방법 ········································································ 4
2.1 시료 채취 및 전처리 ························································· 4
2.2 실리카겔 및 RP-HPLC분액화··············································· 6
2.3 생물검정법········································································ 8
2.4 표적 화합물 분석법···························································· 9
2.5 비표적 분석법·································································· 11
2.6 AhR 활성물질 상대적 독성치 산출····································· 13
2.7 기여도 분석····································································· 14
2.8 VEGA를 이용한 QSAR 모델링··········································· 16
3. 결과 및 토의 ······································································ 17
3.1 퇴적물 내 AhR 활성도······················································ 17
3.2 표적 화합물의 농도 및 조성·············································· 23
3.3 비표적 분석····································································· 31
3.4 독성학적 및 화학적 확인 ················································· 35
3.5 퇴적물 내 신규 AhR 활성물질의 농도 및 조성 ··················· 38
3.6 신규 AhR 활성물질의 기여도 평가····································· 41
4. 결론 ·················································································· 46
5. 참고문헌 ············································································ 47
ABSTRACT ·············································································· 55

최근 본 자료

전체보기

댓글(0)

0