Lindemann C B, Fentie I, Rikmenspoel R
J Cell Biol. 1980 Nov;87(2 Pt 1):420-6. doi: 10.1083/jcb.87.2.420.
Bull sperm that are extracted with 0.1% Triton X-100 and restored to motility with Mg2+-ATP lose coordination and stop swimming in the presence of 0.5 mM NiSO4. Although spontaneous coordination of flagellar waves is lost after exposure to Ni2+, other functions of the flagellum remain intact. The capacity for wave propagation along the flagellum is maintained together with the capacity for microtubular sliding. Wave motility can be restored to Ni2+-inhibited sperm by inducing a permanent bend onto the flagellum by micromanipulation. In the absence of such intervention, the loss of wave coordination is complete and irreversible. Ni2+-inhibited demembranated cells that are kept active by maintaining a bend in the flagellum exhibit a normal beat frequency. Both intact and demembranated sperm can retain spontaneous wave production at considerably slower rates of motion than Ni2+-inhibited cells. Short segments from the distal tip of the flagellum contain only the 9 + 2 microtubular axoneme. These short segments are able to propagate imposed bends even in the presence of Ni2+. In addition to wave propagation Ni2+-treated sperm can be shown to exhibit a normal sliding tubule phenomenon by direct assay. Although Ni2+-treated cells have a functional sliding tubule mechanism, and consequently the axoneme can propagate bends, it appears that these retained functions are not sufficient to cause spontaneous bend initiation. Our findings show that bend initiation is inhibited by Ni2+, and therefore is an independent process separate from the sliding tubule mechanism responsible for wave propagation.
用0.1% Triton X - 100提取并经Mg2 + - ATP恢复运动能力的公牛精子,在0.5 mM NiSO4存在的情况下会失去协调性并停止游动。尽管暴露于Ni2 + 后鞭毛波的自发协调性丧失,但鞭毛的其他功能仍保持完整。沿鞭毛的波传播能力与微管滑动能力一起得以维持。通过显微操作在鞭毛上诱导出一个永久性弯曲,可以使Ni2 + 抑制的精子恢复波动运动。在没有这种干预的情况下,波协调性的丧失是完全且不可逆的。通过维持鞭毛的弯曲而保持活性的Ni2 + 抑制的去膜细胞表现出正常的搏动频率。完整和去膜的精子都能以比Ni2 + 抑制的细胞慢得多的运动速度保持自发波的产生。鞭毛远端尖端的短节段仅包含9 + 2微管轴丝。即使在存在Ni2 + 的情况下,这些短节段也能够传播施加的弯曲。除了波传播外,通过直接检测可以证明Ni2 + 处理的精子表现出正常的微管滑动现象。尽管Ni2 + 处理的细胞具有功能性的微管滑动机制,因此轴丝可以传播弯曲,但似乎这些保留的功能不足以引发自发弯曲。我们的研究结果表明,弯曲引发受到Ni2 + 的抑制,因此是一个与负责波传播的微管滑动机制分开的独立过程。