Retinal

Retinal is a lipid of Prenol Lipids (PR) class. Retinal is associated with abnormalities such as Retinal Detachment, Uveitis, Endophthalmitis, Infection and LEBER CONGENITAL AMAUROSIS, TYPE II (disorder). The involved functions are known as Pigment, immunoreactivity, Infiltration, Energy Absorption and chromophore. Retinal often locates in Entire visual system, Autosome, Membrane, Basement membrane and Thoracic region (surface region of back). The associated genes with Retinal are isorhodopsin, RPE65 gene, RND1 gene, RPE gene and CASP8AP2 gene. The related lipids are Phosphatidylserines, Membrane Lipids, Fatty Acids, Liposomes and oxidized lipid. The related experimental models are Mouse Model, Knock-out and Genetically Engineered Mouse.

Cross Reference

Introduction

To understand associated biological information of Retinal, we collected biological information of abnormalities, associated pathways, cellular/molecular locations, biological functions, related genes/proteins, lipids and common seen animal/experimental models with organized paragraphs from literatures.

What diseases are associated with Retinal?

Retinal is suspected in Retinal Degeneration, Retinal Diseases, Retinal Dystrophies, Leber Congenital Amaurosis, Retinitis Pigmentosa, Stargardt's disease and other diseases in descending order of the highest number of associated sentences.

Related references are mostly published in these journals:

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No disease MeSH terms mapped to the current reference collection.

PubChem Associated disorders and diseases

What pathways are associated with Retinal

There are no associated biomedical information in the current reference collection.

PubChem Biomolecular Interactions and Pathways

Link to PubChem Biomolecular Interactions and Pathways

What cellular locations are associated with Retinal?

Related references are published most in these journals:

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What functions are associated with Retinal?


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What lipids are associated with Retinal?

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What genes are associated with Retinal?

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Gene Cross reference Weighted score Related literatures

What common seen animal models are associated with Retinal?

Mouse Model

Mouse Model are used in the study 'Improvement in rod and cone function in mouse model of Fundus albipunctatus after pharmacologic treatment with 9-cis-retinal.' (Maeda A et al., 2006), Mouse Model are used in the study 'Quantitative mapping of ion channel regulation by visual cycle activity in rodent photoreceptors in vivo.' (Berkowitz BA et al., 2009), Mouse Model are used in the study 'Chemistry and biology of vision.' (Palczewski K, 2012) and Mouse Model are used in the study 'Photoreceptor proteins initiate microglial activation via Toll-like receptor 4 in retinal degeneration mediated by all-trans-retinal.' (Kohno H et al., 2013).

Knock-out

Knock-out are used in the study 'Conditional Ablation of Retinol Dehydrogenase 10 in the Retinal Pigmented Epithelium Causes Delayed Dark Adaption in Mice.' (Sahu B et al., 2015), Knock-out are used in the study 'Interpretations of fundus autofluorescence from studies of the bisretinoids of the retina.' (Sparrow JR et al., 2010), Knock-out are used in the study 'Bacterioopsin-mediated regulation of bacterioruberin biosynthesis in Halobacterium salinarum.' (Dummer AM et al., 2011) and Knock-out are used in the study 'RPE65 is essential for the function of cone photoreceptors in NRL-deficient mice.' (Wenzel A et al., 2007).

Genetically Engineered Mouse

Genetically Engineered Mouse are used in the study 'Limited roles of Rdh8, Rdh12, and Abca4 in all-trans-retinal clearance in mouse retina.' (Maeda A et al., 2009) and Genetically Engineered Mouse are used in the study 'Recovery of visual functions in a mouse model of Leber congenital amaurosis.' (Van Hooser JP et al., 2002).

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NCBI Entrez Crosslinks

All references with Retinal

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Authors Title Published Journal PubMed Link
Hanneken A et al. Biochemical Measurements of Free Opsin in Macular Degeneration Eyes: Examining the 11-CIS Retinal Deficiency Hypothesis of Delayed Dark Adaptation (An American Ophthalmological Society Thesis). 2017 Trans Am Ophthalmol Soc pmid:28900371
Malechka VV et al. Impaired Rhodopsin Generation in the Rat Model of Diabetic Retinopathy. 2017 Am. J. Pathol. pmid:28734946
Gong X et al. Inhibition of pulmonary β-carotene 15, 15'-oxygenase expression by glucocorticoid involves PPARα. 2017 PLoS ONE pmid:28732066
Tomobe K et al. Water permeation through the internal water pathway in activated GPCR rhodopsin. 2017 PLoS ONE pmid:28493967
Kaylor JJ et al. Blue light regenerates functional visual pigments in mammals through a retinyl-phospholipid intermediate. 2017 Nat Commun pmid:28473692
Okitsu T et al. Alternative Formation of Red-Shifted Channelrhodopsins: Noncovalent Incorporation with Retinal-Based Enamine-Type Schiff Bases and Mutated Channelopsin. 2017 Chem. Pharm. Bull. pmid:28381675
Horstick EJ et al. Search strategy is regulated by somatostatin signaling and deep brain photoreceptors in zebrafish. 2017 BMC Biol. pmid:28122559
Tian H et al. The Energetics of Chromophore Binding in the Visual Photoreceptor Rhodopsin. 2017 Biophys. J. pmid:28700926
Song D et al. Retinal Pre-Conditioning by CD59a Knockout Protects against Light-Induced Photoreceptor Degeneration. 2016 PLoS ONE pmid:27893831
Sahu B and Maeda A Retinol Dehydrogenases Regulate Vitamin A Metabolism for Visual Function. 2016 Nutrients pmid:27879662