• 제목/요약/키워드: Suicide-related characteristics

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소방공무원의 직무유형에 따른 불면과 신체화증상과의 관계 (The Relationship between Insomnia and Somatization According to Types of Work of Firefighters)

  • 윤희수;주가원;이상익;신철진;손정우;김시경;박혜미;이정환
    • 정신신체의학
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    • 제28권1호
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    • pp.42-52
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    • 2020
  • 연구목적 소방공무원은 직무 환경 상 항상 비상대기를 해야 하는 스트레스 상황에 처해있으며, 지속적인 외상적 사건에의 노출로 인해 불면, 우울을 포함한 다양한 정신질환에 취약 해지기 쉽다. 이에 소방공무원들의 직무 유형별 정신건강요인의 차이 유무를 살펴보고, 특히 그 중에서도 업무의 지장 및 불편을 줄 수 있는 불면과 신체화 증상과의 관련성을 보고자 한다. 방 법 충청북도 소재 지역 소방서에 근무하는 소방공무원 1264명을 대상으로 자기보고식 설문지를 통하여 일반적 특성 및 관련 검사를 수행하였다. 불면증 심각성 척도(ISI), 신체화 증상 척도(PHQ-15), 사건 충격 척도(IES-R-K), 스트레스 척도(PSS-10), 회복탄력성 척도(K-CD-RISC-2), 알코올 의존 선별검사 척도(AUDIT-K), 역학연구센터 우울 척도(CES-D) 및 국제 신경정신평가(MINI-plus)의 자살 척도를 활용하여 정신건강상태 현황 조사 및 요인 간의 관련성을 평가하였다. 결 과 정신건강요인들 중 불면증과 신체화증상의 관련성은 직무 유형에 따라 유의한 차이가 있으며 구급 직군이 화재진압 직군과 구조 직군보다 유의하게 높은 것으로 보고되었다. 사건 충격, 우울, 음주도 직무 유형에 따라 유의한 차이가 있으며, 사건 충격은 구급 직군이 화재진압 직군보다 높고 우울은 구급 직군이 구조 직군보다 높으며 음주는 행정 직군이 화재진압 직군, 구급 직군보다 높은 것으로 보고되었다. 회복탄력성은 구조 직군이 구급 직군보다 유의하게 높았다. 스트레스, 자살위험성은 직무 유형에 따라 유의한 차이가 없는 것으로 보고되었다. 또한 소방공무원 신체화증상의 유의한 예측 인자로 불면증, 스트레스, 사건 충격이 있었으며, 특히 불면의 영향이 큼을 보여주었다. 결 론 본 연구를 통해 지역 소방공무원들의 직무 유형에 따라 다양한 정신건강 변인에서 유의한 차이가 있음을 확인할 수 있었으며, 특히 구급 직군의 경우가 타 직군에 비해 불면, 신체화 증상, 큰 사건 충격, 취약한 회복탄력성 등 여러 정신건강변인에서 취약한 상황으로 보고되었다. 그 중 불면의 경우 모든 직무유형에서 신체화 증상에의 의미 있는 예측인자임을 확인할 수 있었다.

Role of Citrate Synthase in Acetate Utilization and Protection from Stress-Induced Apoptosis

  • Lee, Yong-Joo;Kang, Hong-Yong;Maeng, Pil Jae
    • 한국미생물학회:학술대회논문집
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    • 한국미생물학회 2008년도 International Meeting of the Microbiological Society of Korea
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    • pp.39-41
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    • 2008
  • The yeast Saccharomyces cerevisiae has been shown to contain three isoforms of citrate synthase (CS). The mitochondrial CS, Cit1, catalyzes the first reaction of the TCA cycle, i.e., condensation of acetyl-CoA and oxaloacetate to form citrate [1]. The peroxisomal CS, Cit2, participates in the glyoxylate cycle [2]. The third CS is a minor mitochondrial isofunctional enzyme, Cit3, and related to glycerol metabolism. However, the level of its intracellular activity is low and insufficient for metabolic needs of cells [3]. It has been reported that ${\Delta}cit1$ strain is not able to grow with acetate as a sole carbon source on either rich or minimal medium and that it shows a lag in attaining parental growth rates on nonfermentable carbon sources [2, 4, 5]. Cells of ${\Delta}cit2$, on the other hand, have similar growth phenotype as wild-type on various carbon sources. Thus, the biochemical basis of carbon metabolism in the yeast cells with deletion of CIT1 or CIT2 gene has not been clearly addressed yet. In the present study, we focused our efforts on understanding the function of Cit2 in utilizing $C_2$ carbon sources and then found that ${\Delta}cit1$ cells can grow on minimal medium containing $C_2$ carbon sources, such as acetate. We also analyzed that the characteristics of mutant strains defective in each of the genes encoding the enzymes involved in TCA and glyoxylate cycles and membrane carriers for metabolite transport. Our results suggest that citrate produced by peroxisomal CS can be utilized via glyoxylate cycle, and moreover that the glyoxylate cycle by itself functions as a fully competent metabolic pathway for acetate utilization in S. cerevisiae. We also studied the relationship between Cit1 and apoptosis in S. cerevisiae [6]. In multicellular organisms, apoptosis is a highly regulated process of cell death that allows a cell to self-degrade in order for the body to eliminate potentially threatening or undesired cells, and thus is a crucial event for common defense mechanisms and in development [7]. The process of cellular suicide is also present in unicellular organisms such as yeast Saccharomyces cerevisiae [8]. When unicellular organisms are exposed to harsh conditions, apoptosis may serve as a defense mechanism for the preservation of cell populations through the sacrifice of some members of a population to promote the survival of others [9]. Apoptosis in S. cerevisiae shows some typical features of mammalian apoptosis such as flipping of phosphatidylserine, membrane blebbing, chromatin condensation and margination, and DNA cleavage [10]. Yeast cells with ${\Delta}cit1$ deletion showed a temperature-sensitive growth phenotype, and displayed a rapid loss in viability associated with typical apoptotic hallmarks, i.e., ROS accumulation, nuclear fragmentation, DNA breakage, and phosphatidylserine translocation, when exposed to heat stress. Upon long-term cultivation, ${\Delta}cit1$ cells showed increased potentials for both aging-induced apoptosis and adaptive regrowth. Activation of the metacaspase Yca1 was detected during heat- or aging-induced apoptosis in ${\Delta}cit1$ cells, and accordingly, deletion of YCA1 suppressed the apoptotic phenotype caused by ${\Delta}cit1$ mutation. Cells with ${\Delta}cit1$ deletion showed higher tendency toward glutathione (GSH) depletion and subsequent ROS accumulation than the wild-type, which was rescued by exogenous GSH, glutamate, or glutathione disulfide (GSSG). Beside Cit1, other enzymes of TCA cycle and glutamate dehydrogenases (GDHs) were found to be involved in stress-induced apoptosis. Deletion of the genes encoding the TCA cycle enzymes and one of the three GDHs, Gdh3, caused increased sensitivity to heat stress. These results lead us to conclude that GSH deficiency in ${\Delta}cit1$ cells is caused by an insufficient supply of glutamate necessary for biosynthesis of GSH rather than the depletion of reducing power required for reduction of GSSG to GSH.

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