藍光誘導黃化野生型和向光素突變體擬南芥幼苗的H+和Ca2+流-文獻綜述-資訊-生物在線

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藍光誘導黃化野生型和向光素突變體擬南芥幼苗的H+和Ca2+流

作者:旭月(北京)科技有限公司 2009-05-18T00:00 (訪問量:7919)

????藍光誘導的H+和Ca2+流與植物的向光性
藍光誘導黃化野生型和向光素突變體擬南芥幼苗的H+和Ca2+

藍光是控制植物生長和形態(tài)發(fā)育的重要因子,引起植物子葉擴展,抑制胚軸伸長,這些反應發(fā)生的同時或者隨后伴隨著膜電勢和離子轉(zhuǎn)運的變化。非損傷微測技術(shù)由于其非損傷性、長時間監(jiān)測、動態(tài)測量和易操作的特點則能非常好地研究離子轉(zhuǎn)運的問題。

使用非損傷微測技術(shù)(MIFE)研究了H+和Ca2+離子流動力學和擬南芥藍光響應的關(guān)系:發(fā)現(xiàn)藍光處理的最初10min內(nèi)誘導了H+和Ca2+轉(zhuǎn)運體活性的顯著變化,3-5min時變化達到最大,藍光立即誘導了野生型和phot2突變體Ca2+內(nèi)流,而phot1和phot1/phot突變體中Ca2+流保持穩(wěn)定,說明PHOT1調(diào)節(jié)Ca2+從質(zhì)外體吸收進入細胞質(zhì);另外,發(fā)現(xiàn)光受體調(diào)節(jié)的H+和Ca2+流存在于切掉胚軸尖端的幼苗,并可能也存在于子葉中,沿著子葉彎勾到胚軸處觀察到了Ca2+和H+濃度有波浪形的變化。Ca2+流在藍光處理下幾乎立即就出現(xiàn),但是H+流滯后了1.5min,而在野生型中H+流變化很小。

在植物的向光反應的信號轉(zhuǎn)導途徑過程中,細胞內(nèi)的[Ca2+]需要維持在一個較高的水平,而PHOT1調(diào)節(jié)質(zhì)外體中的Ca2+進入細胞質(zhì)。這項工作對于認識植物的向光反應的動態(tài)過程非常有意義,通過H+和Ca2+的離子動力學有助于揭開植物響應藍光的機制。

點擊查看大圖
上圖
藍光處理后胚軸和子葉的H+、Ca2+流和pH變化(正值為內(nèi)流)
關(guān)鍵詞:藍光(blue light,BL);非損傷微測技術(shù)(the noninvasive ion-selective microelectrode,MIFE); 向光素(phototropin);H+;Ca2+
參考文獻:Olga Babourina, et al. PNAS, 2002, 99: 2433-2438
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Abstract

Ion flux kinetics associated with blue light (BL) treatment of two wild types (WTs) and the phot1, phot2 and phot1/phot2 mutants of Arabidopsis were studied by using the MIFE noninvasive ion-selective microelectrode technique. BL induced significant changes in activity of H+ and Ca2+ transporters within the first 10 min of BL onset, peaking between 3 and 5 min. In all WT plants and in phot2 mutants, BL induced immediate Ca2+ influx. In phot1 and phot1/phot2 mutants, net Ca2+ flux remained steady. It is suggested that PHOT1 regulates Ca2+ uptake into the cytoplasm from the apoplast. Changes in ion fluxes were measured from cotyledons of intact seedlings and from the cut top of the hypocotyl of decapitated seedlings. Thus the photoreceptors mediating BL-induced Ca2+ and H+ fluxes are present in the rest of the decapitated seedling and probably in the cotyledons as well. The H+ and Ca2+ flux responses to BL appear not to be linked because, (i) when changes were observed for both ions, Ca2+ flux changed almost immediately, whereas H+ flux lagged by about 1.5 min; (ii) in the Wassilewskija ecotype, changes in H+ fluxes were small. Finally, wave-like changes in Ca2+ and H+ concentrations were observed along the cotyledon–hook axis regardless of its orientation to the light.

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