Conflux + I&E Flux + I&M Flux = 細胞內外離子/分子同時檢測完整方案 |
活性氧(ROS)是植物體中重要的毒性及調控物質,受一系列生物及非生物脅迫、激素、發育及重力信號、礦物質代謝缺失等誘導產生。目前,人們已經發現了包括MAPK激酶、轉錄因子等在內的許多活性氧感知系統。此外,質膜離子通道也可能參與植物的活性氧感知及活性氧介導的調控反應。活性氧的質膜離子通道在動物關鍵生理功能中的重要作用已經比較明確,但在植物中,此類離子通道特別是羥自由基(HR)激活的K+通道的性質及功能尚不清楚。 2010年4月7日,英國的科學家Demidchik等人選用野生型(WT)及K+外流通道基因缺失突變體(gork1-1)的擬南芥為研究對象,應用非損傷微測技術、電子順磁共振(EPR)、膜片鉗,以及細胞成像等方法研究了不同處理條件下擬南芥根及其原生質體的K+流速、氧自由基、膜電位、凋亡細胞形態等指標。研究發現,HR及脅迫均可引起擬南芥幼苗根部產生明顯的K+外流,但突變體中外流明顯較弱。NaCl可誘導根部產生HR進而激活K+通道。突變體gork1-1、經過K+通道抑制劑或HR清除劑處理過的野生型擬南芥根部細胞凋亡比較緩慢。由此得出,植物中HR激活的K+通道也參與了細胞凋亡。 此研究結果提出了ROS調控植物陽離子運輸的一個新觀點,并闡述了HR激活的K+通道在植物中的生理作用。
關鍵詞:鉀離子(Potassium)、細胞程序性死亡(Programmed cell death)、 活性氧(Reactive oxygen species)、脅迫(Stress)
參考文獻:Demidchik et al. J. Cell Sci. doi: 10.1242/jcs.064352
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ABSTRACT: Reactive oxygen species (ROS are central to plant stress response, signalling, development and a multitude of other processes. In this study, the plasma-membrane hydroxyl radical (HR-activated K+ channel responsible for K+ efflux from root cells during stress accompanied by ROS generation is characterised. The channel showed 16-pS unitary conductance and was sensitive to Ca2+, tetraethylammonium, Ba2+, Cs+ and free-radical scavengers. The channel was not found in the gork1-1 mutant, which lacks a major plasma-membrane outwardly rectifying K+ channel. In intact Arabidopsis roots, both HRs and stress induced a dramatic K+ efflux that was much smaller in gork1-1 plants. Tests with electron paramagnetic resonance spectroscopy showed that NaCl can stimulate HR generation in roots and this might lead to K+-channel activation. In animals, activation of K+-efflux channels by HRs can trigger programmed cell death (PCD. PCD symptoms in Arabidopsis roots developed much more slowly in gork1-1 and wild-type plants treated with K+-channel blockers or HR scavengers. Therefore, similar to animal counterparts, plant HR-activated K+ channels are also involved in PCD. Overall, this study provides new insight into the regulation of plant cation transport by ROS and demonstrates possible physiological properties of plant HR-activated K+ channels. |