Levina N N, Lew R R, Hyde G J, Heath I B
Biology Department, York University, North York, Ontario, Canada.
J Cell Sci. 1995 Nov;108 ( Pt 11):3405-17. doi: 10.1242/jcs.108.11.3405.
Growing hyphae of the ascomycete fungus Neurospora crassa contained a tip-high gradient of cytoplasmic Ca2+, which was absent in non-growing hyphae and was insensitive to Gd3+ in the medium. Patch clamp recordings in the cell-attached mode, from the plasma membrane of these hyphae, showed two types of channel activities; spontaneous and stretch activated. The spontaneous channels were identified as inward K+ channels based on inhibition by tetraethylammonium. The stretch activated channels had increased amplitudes in response to elevated Ca2+ in the pipette solution, and thus are permeable to Ca2+ and mediate inward Ca2+ movement. Gd3+, which is an inhibitor of some stretch activated channels, incompletely inhibited stretch activated channel activity. Both tetraethylammonium and Gd3+ only transiently reduced the rates of tip growth without changing tip morphology, thus indicating that the channels are not absolutely essential for tip growth. Furthermore, in contrast to the hyphae of another tip growing organism, Saprolegnia ferax, tip-high gradients of neither spontaneous nor stretch activated channels were found. Voltage clamping of the apical plasma membrane potential in the range from -300 to +150 mV did not affect the rates of hyphal elongation. Collectively, these data suggest that ion transport across the plasma membrane at the growing tip in Neurospora is not obligatory for the maintenance of tip growth, but that a gradient of Ca2+, possibly generated from internal stores in an unknown way, is required.
子囊菌粗糙脉孢菌生长中的菌丝含有细胞质Ca2+的尖端高梯度,非生长菌丝中不存在这种梯度,且该梯度对培养基中的Gd3+不敏感。在细胞贴附模式下,对这些菌丝的质膜进行膜片钳记录,显示出两种类型的通道活性:自发的和拉伸激活的。基于四乙铵的抑制作用,自发通道被鉴定为内向K+通道。拉伸激活通道在移液管溶液中Ca2+升高时振幅增加,因此对Ca2+通透并介导内向Ca2+移动。Gd3+是一些拉伸激活通道的抑制剂,它不完全抑制拉伸激活通道的活性。四乙铵和Gd3+都只是短暂降低尖端生长速率,而不改变尖端形态,因此表明这些通道对于尖端生长并非绝对必需。此外,与另一种尖端生长的生物体——水霉属真菌不同,在粗糙脉孢菌中未发现自发通道和拉伸激活通道的尖端高梯度。将顶端质膜电位钳制在-300至+150 mV范围内不会影响菌丝伸长速率。总体而言,这些数据表明,粗糙脉孢菌生长尖端处跨质膜的离子运输对于维持尖端生长并非必需,但需要一种可能以未知方式从内部储存产生的Ca2+梯度。