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修饰发色团对蝾螈、松鼠和猕猴视锥细胞光谱敏感性的影响。

Effects of modified chromophores on the spectral sensitivity of salamander, squirrel and macaque cones.

作者信息

Makino C L, Kraft T W, Mathies R A, Lugtenburg J, Miley M E, van der Steen R, Baylor D A

机构信息

Department of Neurobiology, Stanford Medical School, CA 94305.

出版信息

J Physiol. 1990 May;424:545-60. doi: 10.1113/jphysiol.1990.sp018082.

DOI:10.1113/jphysiol.1990.sp018082
PMID:2391661
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1189828/
Abstract
  1. Chemically modified retinal chromophores were used to investigate the mechanisms that produce the characteristic spectral absorptions of cone pigments. Spectral sensitivities of single cones from the salamander, squirrel and macaque retina were determined by electrical recording. The chromophore was then replaced by bleaching the pigment and regenerating it with a retinal analogue. 2. Exposing a bleached cone to 9-cis-retinal for a brief period (less than 20 min) caused its flash sensitivity to recover to about 0.2 of the pre-bleach value. Similar exposure to a locked 6-s-cis, 9-cis analogue gave a recovery to about 0.03 of the pre-bleach value. 3. Unlike the flash sensitivity, the saturating photocurrent amplitude often recovered completely after bleaching and regenerating the pigment. 4. When the 3-dehydroretinal chromophore in the salamander long-wavelength-sensitive (red) cone was replaced with 11-cis-retinal, shortening the conjugated chain in the chromophore, the spectral sensitivity underwent a blue shift of 67 nm. 5. Pigments containing the planar-locked 6-s-cis.9-cis-retinal analogue absorbed at substantially longer wavelength than those containing unmodified 9-cis-retinal. The opsin shift, a measure of the protein's ability to modify the chromophore's absorption was larger for the locked analogue than for 9-cis-retinal. This suggests that the native chromophore assumes a twisted 6-s-cis conformation in these pigments. 6. The spectral sensitivities of red and green macaque cones containing 9-cis-retinal or planar-locked 6-s-cis.9-cis-retinal retained the 30 nm separation characteristic of the native pigments. This suggests that the different absorptions of of the 6-7 carbon bond in the retinal chromophore.
摘要
  1. 化学修饰的视黄醛发色团被用于研究产生视锥色素特征光谱吸收的机制。通过电记录确定了蝾螈、松鼠和猕猴视网膜单个视锥的光谱敏感性。然后通过漂白色素并用视黄醛类似物使其再生来替换发色团。2. 将漂白后的视锥短暂暴露于9-顺式视黄醛(少于20分钟)会使其闪光敏感性恢复到漂白前值的约0.2。类似地暴露于锁定的6-s-顺式,9-顺式类似物会使其恢复到漂白前值的约0.03。3. 与闪光敏感性不同,饱和光电流幅度在色素漂白和再生后通常会完全恢复。4. 当将蝾螈长波长敏感(红色)视锥中的3-脱氢视黄醛发色团替换为11-顺式视黄醛,缩短发色团中的共轭链时,光谱敏感性发生了67纳米的蓝移。5. 含有平面锁定的6-s-顺式,9-顺式视黄醛类似物的色素比含有未修饰的9-顺式视黄醛的色素在长得多的波长处吸收。对于锁定类似物,视蛋白位移(衡量蛋白质改变发色团吸收能力的指标)比对9-顺式视黄醛的更大。这表明在这些色素中天然发色团呈现扭曲的6-s-顺式构象。6. 含有9-顺式视黄醛或平面锁定的6-s-顺式,9-顺式视黄醛的猕猴红色和绿色视锥的光谱敏感性保留了天然色素特有的30纳米分离特征。这表明视黄醛发色团中6-7碳键的不同吸收情况。
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2ebb/1189828/4a91320ca77c/jphysiol00467-0541-a.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2ebb/1189828/4a91320ca77c/jphysiol00467-0541-a.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2ebb/1189828/4a91320ca77c/jphysiol00467-0541-a.jpg

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