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Feeling the hidden mechanical forces in lipid bilayer is an original sense

机译:感觉脂质双层中隐藏的机械力是一种本来的感觉

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摘要

Life’s origin entails enclosing a compartment to hoard material, energy, and information. The envelope necessarily comprises amphipaths, such as prebiotic fatty acids, to partition the two aqueous domains. The self-assembled lipid bilayer comes with a set of properties including its strong anisotropic internal forces that are chemically or physically malleable. Added bilayer stretch can alter force vectors on embedded proteins to effect conformational change. The force-from-lipid principle was demonstrated 25 y ago when stretches opened purified Escherichia coli MscL channels reconstituted into artificial bilayers. This reductionistic exercise has rigorously been recapitulated recently with two vertebrate mechanosensitive K+ channels (TREK1 and TRAAK). Membrane stretches have also been known to activate various voltage-, ligand-, or Ca2+-gated channels. Careful analyses showed that Kv, the canonical voltage-gated channel, is in fact exquisitely sensitive even to very small tension. In an unexpected context, the canonical transient-receptor-potential channels in the Drosophila eye, long presumed to open by ligand binding, is apparently opened by membrane force due to PIP2 hydrolysis-induced changes in bilayer strain. Being the intimate medium, lipids govern membrane proteins by physics as well as chemistry. This principle should not be a surprise because it parallels water’s paramount role in the structure and function of soluble proteins. Today, overt or covert mechanical forces govern cell biological processes and produce sensations. At the genesis, a bilayer’s response to osmotic force is likely among the first senses to deal with the capricious primordial sea.
机译:生命的起源需要将一个隔间封闭起来,以ho积材料,能量和信息。包膜必须包含两亲性物质,例如益生元脂肪酸,以分隔两个水域。自组装脂质双层具有一系列特性,包括其化学或物理可塑性的强各向异性内力。增加的双层拉伸可以改变嵌入蛋白质上的力载体,从而影响构象变化。源自脂质的力原理在25年前得到证实,当时舒张打开了重组为人工双层的纯化大肠杆菌MscL通道。最近已通过两个脊椎动物机械敏感的K + 通道(TREK1和TRAAK)对这种还原主义运动进行了严格的概括。膜拉伸还可以激活各种电压,配体或Ca 2+门控通道。仔细的分析表明,规范的电压门控通道Kv实际上对很小的张力都非常敏感。在出乎意料的情况下,果蝇眼中的经典瞬态受体电位通道(长期以来被认为通过配体结合而打开)显然是由于PIP2水解诱导的双层应变变化而被膜力打开的。作为亲密介质,脂质通过物理和化学方法控制着膜蛋白。这一原理不足为奇,因为它与水在可溶性蛋白质的结构和功能中的重要作用相平行。如今,明显或隐秘的机械力控制着细胞的生物过程并产生感觉。从一开始,双层对渗透力的反应就很可能是用来应对反复无常的原始海的第一种感觉。

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