表皮细胞中的机械感觉钙选择性阳离子通道。

J. Ding, B. Pickard
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引用次数: 6

摘要

本文探讨了张力激活的表皮Ca(2+)选择性阳离子通道复合物的性质和可能的功能。多达8或9个连接或可连接的等效电导单元或共通道可以一起打开。同通道四胞胎和五胞胎的开放时间相对较长,切除的质膜细胞质面有毫摩尔Mg2+(但不是毫摩尔Ca2+)。对张力的敏感性由跨膜电压和温度调节。在某些情况下,通道活动在有节奏的脉冲中是同步的。某些镧系元素和一种干扰细胞骨架的除草剂在低浓度下抑制向地性接收作用于通道系统。具体来说,n-苯基氨基甲酸乙酯在微摩尔水平上促进张力依赖性活性。在吸力适中的情况下,在膜的细胞外表面提供约0.5微米的Gd3+,可促进几秒钟,但随后可能变得抑制。1-2微米的浓度促进和随后的抑制作用更强烈(通常是突然和完全),高水平的浓度立即抑制作用。La3+,一种差的向地性抑制剂,作用类似,但更缓慢,只有在更高的浓度。这些特性,特别是这些对调节的敏感性,表明在体内,机械敏感通道必须是机械感觉和机械调节的。它可以用于传导胀气变化和细胞膨胀过程中壁-膜-细胞骨架系统中产生的剪切力,以及重力、触摸和弯曲引起的应力。只要这种转导是由电压和温度调节的,只要壁-膜-细胞骨架系统经历机械应力,这些通道就会成为这些模式的传感器。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Mechanosensory calcium-selective cation channels in epidermal cells.
This paper explores the properties and likely functions of an epidermal Ca(2+)-selective cation channel complex activated by tension. As many as eight or nine linked or linkable equivalent conductance units or co-channels can open together. Open time for co-channel quadruplets and quintuplets tends to be relatively long with millimolar Mg2+ (but not millimolar Ca2+) at the cytosolic face of excised plasma membrane. Sensitivity to tension is regulated by transmembrane voltage and temperature. Under some circumstances channel activity is synchronized in rhythmic pulses. Certain lanthanides and a cytoskeleton-disturbing herbicide that inhibit gravitropic reception act on the channel system at low concentrations. Specifically, ethyl-N-phenylcarbamate promotes tension-dependent activity at micromolar levels. With moderate suction, Gd3+ provided at about 0.5 microM at the extracellular face of the membrane promotes for several seconds but may then become inhibitory. Provision at 1-2 microM promotes and subsequently inhibits more vigorously (often abruptly and totally), and at high levels inhibits immediately. La3+, a poor gravitropic inhibitor, acts similarly but much more gradually and only at much higher concentrations. These properties, particularly these susceptibilities to modulation, indicate that in vivo the mechanosensitive channel must be mechanosensory and mechanoregulatory. It could serve to transduce the shear forces generated in the integrated wall-membrane-cytoskeleton system during turgor changes and cell expansion as well as transducing the stresses induced by gravity, touch and flexure. In so far as such transduction is modulated by voltage and temperature, the channels would also be sensors for these modalities as long as the wall-membrane-cytoskeleton system experiences mechanical stress.
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