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1
Excitation signal processing times in Halobacterium halobium phototaxis.嗜盐菌趋光性中的激发信号处理时间
Biophys J. 1986 Nov;50(5):895-900. doi: 10.1016/S0006-3495(86)83530-5.
2
Sensory rhodopsins I and II modulate a methylation/demethylation system in Halobacterium halobium phototaxis.感官视紫红质I和II调节嗜盐菌趋光性中的甲基化/去甲基化系统。
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Kinetically resolved states of the Halobacterium halobium flagellar motor switch and modulation of the switch by sensory rhodopsin I.嗜盐菌鞭毛马达开关的动力学解析状态及感官视紫红质I对开关的调节
J Bacteriol. 1987 Oct;169(10):4750-8. doi: 10.1128/jb.169.10.4750-4758.1987.
4
All-trans/13-cis isomerization of retinal is required for phototaxis signaling by sensory rhodopsins in Halobacterium halobium.嗜盐菌中的感官视紫红质进行趋光性信号传导时,视黄醛的全反式/13-顺式异构化是必需的。
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Evidence that the long-lifetime photointermediate of s-rhodopsin is a receptor for negative phototaxis in Halobacterium halobium.关于嗜盐菌视紫红质的长寿命光中间体是嗜盐栖热菌中负趋光性受体的证据。
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Quantitation of photochromism of sensory rhodopsin-I by computerized tracking of Halobacterium halobium cells.通过对嗜盐嗜盐菌细胞进行计算机跟踪来定量感觉视紫红质-I的光致变色。
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Role of the response oscillator in inverse responses of Halobacterium halobium to weak light stimuli.响应振荡器在嗜盐菌对弱光刺激的反向响应中的作用。
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Selection and properties of phototaxis-deficient mutants of Halobacterium halobium.嗜盐栖热菌趋光性缺陷突变体的筛选与特性
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Bacterial rhodopsins monitored with fluorescent dyes in vesicles and in vivo.利用荧光染料在囊泡中和体内监测细菌视紫红质。
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Photoresponse and learning behavior of ascidian larvae, a primitive chordate, to repeated stimuli of step-up and step-down of light.海鞘幼虫(一种原始脊索动物)对光的反复增强和减弱刺激的光反应及学习行为。
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Biophys J. 1992 Jun;61(6):1529-39. doi: 10.1016/S0006-3495(92)81957-4.
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Non-iron porphyrins cause tumbling to blue light by an Escherichia coli mutant defective in hemG.非铁卟啉通过hemG基因缺陷的大肠杆菌突变体导致对蓝光的翻滚反应。
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8
Chemotactic signal integration in bacteria.细菌中的趋化信号整合
Proc Natl Acad Sci U S A. 1995 Oct 10;92(21):9757-61. doi: 10.1073/pnas.92.21.9757.
9
Kinetically resolved states of the Halobacterium halobium flagellar motor switch and modulation of the switch by sensory rhodopsin I.嗜盐菌鞭毛马达开关的动力学解析状态及感官视紫红质I对开关的调节
J Bacteriol. 1987 Oct;169(10):4750-8. doi: 10.1128/jb.169.10.4750-4758.1987.
10
Biochemical and spectroscopic characterization of the blue-green photoreceptor in Halobacterium halobium.嗜盐菌中蓝绿色光感受器的生化与光谱特性研究
Proc Natl Acad Sci U S A. 1987 Jan;84(2):402-6. doi: 10.1073/pnas.84.2.402.

本文引用的文献

1
Negative phototaxis from blue light and the role of third rhodopsinlike pigment in halobacterium cutirubrum.蓝光的负趋光性和嗜盐菌中第三种视紫红质样色素的作用。
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Signal processing times in bacterial chemotaxis.细菌趋化作用中的信号处理时间。
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Control of transmembrane ion fluxes to select halorhodopsin-deficient and other energy-transduction mutants of Halobacterium halobium.控制跨膜离子通量以筛选盐生盐杆菌中缺乏嗜盐视紫红质及其他能量转导突变体。
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The gradient-sensing mechanism in bacterial chemotaxis.细菌趋化作用中的梯度感应机制。
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8
Selection and properties of phototaxis-deficient mutants of Halobacterium halobium.嗜盐栖热菌趋光性缺陷突变体的筛选与特性
J Bacteriol. 1985 Oct;164(1):282-7. doi: 10.1128/jb.164.1.282-287.1985.
9
Evidence that the long-lifetime photointermediate of s-rhodopsin is a receptor for negative phototaxis in Halobacterium halobium.关于嗜盐菌视紫红质的长寿命光中间体是嗜盐栖热菌中负趋光性受体的证据。
Biochem Biophys Res Commun. 1985 Feb 28;127(1):99-105. doi: 10.1016/s0006-291x(85)80131-5.
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Chemotaxis in bacteria.细菌中的趋化性。
Annu Rev Biochem. 1975;44:341-56. doi: 10.1146/annurev.bi.44.070175.002013.

嗜盐菌趋光性中的激发信号处理时间

Excitation signal processing times in Halobacterium halobium phototaxis.

作者信息

Sundberg S A, Alam M, Spudich J L

出版信息

Biophys J. 1986 Nov;50(5):895-900. doi: 10.1016/S0006-3495(86)83530-5.

DOI:10.1016/S0006-3495(86)83530-5
PMID:3790692
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1329814/
Abstract

Phototaxis responses of Halobacterium halobium were monitored with a computerized cell-tracking system coupled to an electronic shutter controlling delivery of photostimuli. Automated analysis of rates of change in direction and linear speeds provided detection of swimming reversals with 67 ms resolution, permitting measurement of distinct phases of the responses to attractant and repellent stimuli. After stimulation, there was a latency period in which the population reversal frequency was unchanged, followed by an excitation phase in which reversal frequency increased, and a slower adaptation phase in which reversal frequency returned to its prestimulus value. A step-decrease in illumination of the attractant receptor slow-cycling or sensory rhodopsin (SR) (lambda max, 587 nm) was interpreted by the cells as an unfavorable stimulus and, after a minimum latency of 0.70 +/- 0.14 s, induced swimming reversals with the peak response occurring 1.34 +/- 0.07 s after onset of the stimulus. Two distinct repellent responses in the near UV/blue were observed. One was a reversal response to 400 nm light, which was dependent on orange-red background illumination as expected for the photointermediate repellent form of SR (lambda max, 373 nm). The minimum latency of this response was approximately the same as that of the SR attractant system. The second was a reversal response with shorter minimum latency (0.40 +/- 0.07 s) to light of longer wavelength (450 nm) than absorbed by the known SR repellent form. This result confirms recent findings of an additional repellent photosystem in this spectral range. Further, the longer wavelength repellent response is independent of orange-red background illumination, indicating that the photoreceptor mediating this response is not a photointermediate of SR.

摘要

利用与控制光刺激传递的电子快门相连的计算机化细胞追踪系统监测嗜盐菌的趋光性反应。对方向变化率和线速度的自动分析能够以67毫秒的分辨率检测到游动反转,从而可以测量对吸引剂和驱避剂刺激反应的不同阶段。刺激后,存在一个群体反转频率不变的潜伏期,随后是反转频率增加的兴奋期,以及反转频率恢复到刺激前值的较慢适应期。吸引剂受体慢循环或感官视紫红质(SR)(最大吸收波长为587纳米)光照的逐步降低被细胞解读为不利刺激,在最短潜伏期0.70±0.14秒后,诱导游动反转,峰值反应在刺激开始后1.34±0.07秒出现。在近紫外/蓝光区域观察到两种不同的驱避反应。一种是对400纳米光的反转反应,正如预期的SR光中间体驱避形式(最大吸收波长为373纳米)那样,它依赖于橙红色背景光照。这种反应的最短潜伏期与SR吸引剂系统的大致相同。第二种是对波长比已知SR驱避形式吸收波长更长(450纳米)的光的反转反应,其最短潜伏期更短(0.40±0.07秒)。这一结果证实了最近在该光谱范围内发现的另一种驱避光系统。此外,较长波长的驱避反应不依赖于橙红色背景光照,表明介导这种反应的光感受器不是SR的光中间体。