R9AP

R9AP
  • 文章类型: Journal Article
    遗传性视网膜疾病(IRD)是工作年龄人口和儿童失明的主要原因。这篇综述的范围是让临床医生和科学家熟悉分子遗传学的现状,临床表型,视网膜成像和治疗前景/已完成的IRD试验。在这里,我们以全面和简洁的方式提出:(i)黄斑营养不良(Stargardt病(ABCA4),X-连锁视网膜裂(RS1),最佳疾病(BEST1),PRPH2相关型营养不良,Sorsby眼底营养不良(TIMP3),和常染色体显性玻璃疣(EFEMP1),(ii)锥杆和锥杆营养不良(GUCA1A,PRPH2、ABCA4、KCNV2和RPGR),(iii)主要的杆状或杆状视锥营养不良(色素性视网膜炎,增强型S-锥形综合征(NR2E3),Bietti晶体视网膜新视网膜营养不良(CYP4V2),(iv)Leber先天性黑蒙/早发性重度视网膜营养不良(GUCY2D,CEP290,CRB1,RDH12,RPE65,TULP1,AIPL1和NMNAT1),(v)视锥功能障碍综合征(色盲(CNGA3,CNGB3,PDE6C,PDE6H,GNAT2,ATF6),X连锁视锥功能障碍伴近视和双色性(博恩霍尔姆眼病;OPN1LW/OPN1MW阵列),寡头视锥三色,和蓝锥单色(OPN1LW/OPN1MW阵列)。虽然我们使用上述经典表型分组,IRD的美妙之处在于它具有无与伦比的异质性和多变的表现力,与上述几种基因型相关的一系列表型。
    Inherited retinal diseases (IRD) are a leading cause of blindness in the working age population and in children. The scope of this review is to familiarise clinicians and scientists with the current landscape of molecular genetics, clinical phenotype, retinal imaging and therapeutic prospects/completed trials in IRD. Herein we present in a comprehensive and concise manner: (i) macular dystrophies (Stargardt disease (ABCA4), X-linked retinoschisis (RS1), Best disease (BEST1), PRPH2-associated pattern dystrophy, Sorsby fundus dystrophy (TIMP3), and autosomal dominant drusen (EFEMP1)), (ii) cone and cone-rod dystrophies (GUCA1A, PRPH2, ABCA4, KCNV2 and RPGR), (iii) predominant rod or rod-cone dystrophies (retinitis pigmentosa, enhanced S-Cone syndrome (NR2E3), Bietti crystalline corneoretinal dystrophy (CYP4V2)), (iv) Leber congenital amaurosis/early-onset severe retinal dystrophy (GUCY2D, CEP290, CRB1, RDH12, RPE65, TULP1, AIPL1 and NMNAT1), (v) cone dysfunction syndromes (achromatopsia (CNGA3, CNGB3, PDE6C, PDE6H, GNAT2, ATF6), X-linked cone dysfunction with myopia and dichromacy (Bornholm Eye disease; OPN1LW/OPN1MW array), oligocone trichromacy, and blue-cone monochromatism (OPN1LW/OPN1MW array)). Whilst we use the aforementioned classical phenotypic groupings, a key feature of IRD is that it is characterised by tremendous heterogeneity and variable expressivity, with several of the above genes associated with a range of phenotypes.
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  • 文章类型: Journal Article
    Visual phototransduction takes place in photoreceptor cells. Light absorption by rhodopsin leads to the activation of transducin as a result of the exchange of its GDP for GTP. The GTP-bound ⍺-subunit of transducin then activates phosphodiesterase (PDE), which in turn hydrolyzes cGMP leading to photoreceptor hyperpolarization. Photoreceptors return to the dark state upon inactivation of these proteins. In particular, PDE is inactivated by the protein complex R9AP/RGS9-1/Gβ5. R9AP (RGS9-1 anchor protein) is responsible for the membrane anchoring of this protein complex to photoreceptor outer segment disk membranes most likely by the combined involvement of its C-terminal hydrophobic domain as well as other types of interactions. This study thus aimed to gather information on the structure and membrane binding of the C-terminal hydrophobic segment of R9AP as well as of truncated R9AP (without its C-terminal domain, R9AP∆TM). Circular dichroism and infrared spectroscopic measurements revealed that the secondary structure of R9AP∆TM mainly includes ⍺-helical structural elements. Moreover, intrinsic fluorescence measurements of native R9AP∆TM and individual mutants lacking one tryptophan demonstrated that W79 is more buried than W173 but that they are both located in a hydrophobic environment. This method also revealed that membrane binding of R9AP∆TM does not involve regions near its tryptophan residues, while infrared spectroscopy validated its binding to lipid vesicles. Additional fluorescence measurements showed that the C-terminal segment of R9AP is membrane embedded. Maximum insertion pressure and synergy data using Langmuir monolayers suggest that interactions with specific phospholipids could be involved in the membrane binding of R9AP∆TM.
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  • 文章类型: Journal Article
    Purification of recombinant proteins is often achieved using a purification tag which can be located either at the N- or C-terminus of a passenger protein of interest. Many purification tags exist and their advantages and limitations are well documented. However, designing fusion proteins can be a challenging task to get a fully expressed, soluble and highly purified passenger protein. Besides, there is a lack of systematic studies on the use of a single tag versus combined tags and on the effect of the position of the tags in the construct. In the present study, 9 different fusion proteins were expressed in Escherichia coli using some of the most commonly used purification tags: maltose-binding protein (MBP), glutathione S-transferase (GST) and polyHis tag. The expression and purification of N-terminus single-tagged fusion proteins (MBP, GST and polyHis) and fusion proteins with combined tags at different positions have been tested. Both the identity of the tag(s) and its position were found to have a strong effect on the expression, solubility and purification yields of the fusion proteins. Consequently, the different fusion proteins assayed have shown varying expression, solubility and purification yields, which were also dependent on the passenger protein. Therefore, there is a compelling need to design various fusion proteins with different single or combined tags to identify optimized constructions allowing to achieve high levels of expression, solubility and purification of the passenger protein.
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  • 文章类型: Comparative Study
    蛋白质如短链脱氢酶还原酶或尾部锚定蛋白的膜结合依赖于它们的N-和/或C-末端疏水性跨膜区段。在这次审查中,我们提出了使用光谱和生物物理测量来表征此类疏水性肽段的指南。视黄醇脱氢酶8、RGS9-1锚定蛋白C末端肽的二级结构含量,卵磷脂视黄醇酰基转移酶,以及视黄醇脱氢酶11的N末端肽已通过预测工具从其一级序列以及使用红外或圆二色性分析得出。根据溶剂和溶解方法,观察到显著的结构差异,通常涉及α-螺旋。发现这些肽的螺旋结构与其推测的膜结合一致。Langmuir单层已用作膜模型来研究脂质-肽相互作用。使用单层1,2-二油酰基-sn-甘油基-3-磷酸-乙醇胺(DOPE)获得的所有肽的最大插入压力值大于膜的估计横向压力,因此表明它们结合了膜。偏振调制红外反射吸收光谱法已经用于在不存在和存在DOPE单层的情况下确定这些肽的结构和取向。这种脂质诱导肽二级结构的组织增加或减少。需要使用其他脂质进行进一步测量以更好地理解这些肽的膜相互作用。
    Membrane binding of proteins such as short chain dehydrogenase reductases or tail-anchored proteins relies on their N- and/or C-terminal hydrophobic transmembrane segment. In this review, we propose guidelines to characterize such hydrophobic peptide segments using spectroscopic and biophysical measurements. The secondary structure content of the C-terminal peptides of retinol dehydrogenase 8, RGS9-1 anchor protein, lecithin retinol acyl transferase, and of the N-terminal peptide of retinol dehydrogenase 11 has been deduced by prediction tools from their primary sequence as well as by using infrared or circular dichroism analyses. Depending on the solvent and the solubilization method, significant structural differences were observed, often involving α-helices. The helical structure of these peptides was found to be consistent with their presumed membrane binding. Langmuir monolayers have been used as membrane models to study lipid-peptide interactions. The values of maximum insertion pressure obtained for all peptides using a monolayer of 1,2-dioleoyl-sn-glycero-3-phospho-ethanolamine (DOPE) are larger than the estimated lateral pressure of membranes, thus suggesting that they bind membranes. Polarization modulation infrared reflection absorption spectroscopy has been used to determine the structure and orientation of these peptides in the absence and in the presence of a DOPE monolayer. This lipid induced an increase or a decrease in the organization of the peptide secondary structure. Further measurements are necessary using other lipids to better understand the membrane interactions of these peptides.
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  • 文章类型: Journal Article
    OBJECTIVE: Determine the impact of rod photoreceptor-specific expression of Cre recombinase on the kinetics of phototransduction in the mouse eye and identify changes in gene expression that underlie any observed phenotypic differences.
    METHODS: Transretinal ERG and single-cell suction electrode recordings were used to measure the kinetics of phototransduction in a mouse line exhibiting rod photoreceptor-specific Cre recombinase expression, and the results were compared with those from control non-Cre-expressing littermates. Gene expression changes were evaluated using RNA sequencing transcriptome analysis. The pattern of expression of Rgs9bp was determined by mapping sequencing reads to the mouse genome and performing 3\'-rapid amplification of cDNA ends (3\'-RACE).
    RESULTS: Expression of the rod-specific iCre75 transgene was accompanied by accelerated phototransduction inactivation, likely due to overexpression of the Rgs9bp gene, which encodes the Rgs9 anchor protein (R9AP). R9AP upregulation stabilized the RGS9 GAP complex, altering phototransduction kinetics. 3\'-Race identified an abundant, unexpected Rgs9bp-Prm1 fusion mRNA in Cre-expressing mouse retinas, which was determined to be derived from a second transgene present in the iCre75 line.
    CONCLUSIONS: Here we report the presence of a second, R9AP-expressing transgene in the iCre75 mouse line, leading to altered kinetics of phototransduction. These results highlight an important caveat that must be considered when utilizing this mouse line for rod photoreceptor-specific gene loss of function studies.
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