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Nanocurvatures and 'nanocup' formation induced by ethidium bromide in yeast plasma membrane

机译:溴化乙锭诱导酵母浆膜纳米晶体和“纳米卷”形成

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Cell membranes have the ability to bend and curve, thus providing clathrine-coated pits and plasmalemma caveolae, and facilitating many cell functions such as receptor-mediated endocytosis. On the other hand all intracellular membranes are highly deformable, producing cargo vesicles destined to organelles and plasma membrane. Generation of membrane curvature is currently believed to involve the penetration of amphipathic helix into the cytosolic face of the membrane bilayer, producing an asymmetry between the two membrane leaflets and generating bending and curvature towards the cytosol. Here we show, using thin section and freeze-fracture electron microscopy, that ethidium bromide is able to produce negative curvature toward the cytosol in Candida utilis yeast cells. The curvatures were produced in grooves area, resulting in cup-shaped structures with centrally located groove or in polymorph structures with laterally located grooves; these structures were termed "nanocups". Apparently the curvatures were not able to generate vesicles and tubules, suggesting that they were not involved in intracellular trafficking. Thus besides mechanically- or biologically-produced curvature, we can add chemically-produced curvature the function of which remains to be elucidated.
机译:细胞膜具有弯曲的能力,并且曲线,从而提供clathrine小窝和质膜胞膜窖,促进许多细胞功能,例如受体介导的内吞作用。在另一方面所有细胞内膜是可高度变形的,产生发往细胞器和质膜囊泡货物。膜曲率的产生,目前据信,以两亲性螺旋的渗透涉及到膜双层的胞质面,产生所述两个膜小叶之间的不对称,并产生朝向胞质溶胶弯曲和曲率。这里,我们表明,使用薄部和冷冻断裂电子显微术,溴化乙锭是能够产生负曲率朝向产朊假丝酵母细胞的胞质溶胶。曲率是在槽区域中产生的,导致与位于中央的槽,或与横向定位槽的多晶型结构的杯形结构;这些结构称为“纳米杯”。显然,弯曲不能够产生小泡和小管,这表明他们并没有参与细胞内运输。因此除了mechanically-或生物法生产的曲率,我们可以添加曲率的尚待阐明功能化学生产。

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