The University of Tokyo · 생화학·유전·분자생물학
Haruhiko Jimbo 교수의 연구실은 광합성 생물, 특히 시아노박테리아인 *Synechocystis* sp. PCC 6803을 모델로 하여 PSII 복구 메커니즘과 산화 스트레스, 단백질 합성 조절, 지질 대사 간의 상호작용을 연구하고 있습니다. 특히 EF-Tu 단백질의 산화가 PSII 복구를 억제하고, 자유지방산 및 지질 분해효소(lipase)가 광손상에 미치는 영향을 중심으로 광역적 생리적 조절 메커니즘을 규명하고 있습니다. 또한 저탄소 환경에서의 막지질 재편성과 바이오디젤 생산 가능성까지 연계된 지속가능한 에너지 생물공학적 접근도 수행하고 있습니다.
표시된 성과는 수집된 데이터 기준으로 산출되며, 일부 차이가 있을 수 있습니다.
The repair of photosystem II (PSII) is particularly sensitive to oxidative stress and the inhibition of repair is associated with oxidative damage to the translational elongation system in the cyanobacterium <i>Synechocystis</i> sp. PCC 6803. However, the molecular mechanisms underlying this inhibition are unknown. We previously demonstrated in vitro that EF-Tu, a translation factor that delivers aminoacyl-tRNA to the ribosome, is inactivated by reactive oxygen species via oxidation of the Cys r
In photosynthetic organisms, the repair of photosystem II (PSII) is enhanced after acclimation to strong light, with the resultant mitigation of photoinhibition of PSII. We previously reported that oxidation of translation elongation factor EF-Tu, which delivers aminoacyl-tRNA to the ribosome, depresses the repair of PSII in the cyanobacterium <i>Synechocystis</i> sp. PCC 6803. In the present study, we investigated the role of EF-Tu in the repair of PSII after acclimation of <i>Synechocystis</i>
Free fatty acids (FFA) generated in cyanobacterial cells can be utilized for the biodiesel that is required for our sustainable future. The combination of FFA and strong light induces severe photoinhibition of photosystem II (PSII), which suppresses the production of FFA in cyanobacterial cells. In the present study, we examined the effects of exogenously added FFA on the photoinhibition of PSII in <i>Synechocystis</i> sp. PCC 6803. The addition of lauric acid (12:0) to cells accelerated the pho
Photosystem II (PSII) contains many lipid molecules that are essential for the function and maintenance of PSII. Under strong light conditions, PSII complexes are dynamically modified during the repair process; however, the molecular mechanism of the dynamic changes in the PSII structure is still unclear. In the present study, we investigated the role of a lipase in the repair of PSII in Synechocystis sp. PCC 6803. We identified a protein encoded by the sll1969 gene, previously named lipase A (l
Membrane lipid remodeling in plants and microalgae has a crucial role in their survival under nutrient-deficient conditions. Aquatic microalgae have low access to CO<sub>2</sub> , an essential carbon source for photosynthetic assimilates; however, 70-90 mol% of their membrane lipids are sugar-derived lipids (glycolipids) such as monogalactosyldiacylglycerol (MGDG). In this study, we discovered a new system of membrane lipid remodeling responding to CO<sub>2</sub> in Synechocystis sp. PCC 6803, a
Free fatty acids (FFAs) are generated by the reaction of lipases with membrane lipids. Generated polyunsaturated fatty acids (PUFAs) containing more than two double bonds have toxic effects in photosynthetic organisms. In the present study, we examined the effect of exogenous FFAs in the growth medium on the activity of photosystem II (PSII) under strong light in the cyanobacterium <i>Synechocystis</i> sp. PCC 6803 (<i>Synechocystis</i>). PUFAs but not monounsaturated fatty acids accelerated the
Cyanobacteria inhabit areas with a broad range of light, temperature and nutrient conditions. The robustness of cyanobacterial cells, which can survive under different conditions, may depend on the resilience of photosynthetic activity. Cyanothece sp. PCC 8801 (Cyanothece), a freshwater cyanobacterium isolated from a Taiwanese rice field, had a higher repair activity of photodamaged photosystem II (PSII) under intense light than Synechocystis sp. PCC 6803 (Synechocystis), another freshwater cyan
Photosynthetic electron transport is carried out by the electron carrier, plastoquinone (PQ). Recently, another form of PQ, acylplastoquinol (APQ), was discovered in Synechocystis sp. PCC 6803 (Synechocystis), but its physiological function in photosynthesis is unclear. In the present study, we identified a lipase encoded in sll0482 gene in Synechocystis that deacylates APQ and releases a free fatty acid and a reduced PQ (plastoquinol, PQH<sub>2</sub>), which we named acylplastoquinol lipase (AP
A sufficient source of organic nitrogen can be a game-changer in plant ecology and for agriculture.Currently, almost 50% of the global population is dependent on the addition of nitrogen fertilizer (Stewart et al. 2005).However, the environmental pollution caused by its production and consumption prevents its sustainable use in the future.Bacterial N 2 -fixation that is catalyzed by nitrogenase (encoded by the nif gene cluster), has been hailed as the alternate 'next-generation' in N fertilizers
Photosynthetic organisms alter the lipid composition of the thylakoid membrane in response to environmental conditions. Phosphatidic acid (PA) is the branch point in the biosynthetic pathways of glycolipids and a phospholipid, phosphatidylglycerol (PG). PA and its dephosphorylated form, diacylglycerol (DG), are mutually convertible by PA phosphatase (PAP) and DG kinase (DGK). Thus, the activities of PAP and DGK appear to regulate the balance between glycolipids and PG in thylakoid lipid biosynth
Objective: Recently, chemoradiotherapy has had a tendency to be given priority compared with surgery in the treatment of external auditory canal and middle ear cancer. The objective of this paper is to confirm the effectiveness of the surgery as a salvage therapy after chemoradiotherapy.