Literature DB >> 27500118

The effect of lens aging and cataract surgery on circadian rhythm.

Shen-Shen Yan1, Wei Wang1.   

Abstract

Many organisms have evolved an approximately 24-hour circadian rhythm that allows them to achieve internal physiological homeostasis with external environment. Suprachiasmatic nucleus (SCN) is the central pacemaker of circadian rhythm, and its activity is entrained to the external light-dark cycle. The SCN controls circadian rhythm through regulating the synthesis of melatonin by pineal gland via a multisynaptic pathway. Light, especially short-wavelength blue light, is the most potent environmental time cue in circadian photoentrainment. Recently, the discovery of a novel type of retinal photoreceptors, intrinsically photosensitive retinal ganglion cells, sheds light on the mechanism of circadian photoentrainment and raises concerns about the effect of ocular diseases on circadian system. With age, light transmittance is significantly decreased due to the aging of crystalline lens, thus possibly resulting in progressive loss of circadian photoreception. In the current review, we summarize the circadian physiology, highlight the important role of light in circadian rhythm regulation, discuss about the correlation between age-related cataract and sleep disorders, and compare the effect of blue light- filtering intraocular lenses (IOLs) and ultraviolet only filtering IOLs on circadian rhythm.

Entities:  

Keywords:  blue light; cataract surgery; circadian rhythm; crystalline lens; ganglion cells; melatonin; suprachiasmatic nucleus

Year:  2016        PMID: 27500118      PMCID: PMC4951664          DOI: 10.18240/ijo.2016.07.21

Source DB:  PubMed          Journal:  Int J Ophthalmol        ISSN: 2222-3959            Impact factor:   1.779


  120 in total

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Review 3.  SCN outputs and the hypothalamic balance of life.

Authors:  A Kalsbeek; I F Palm; S E La Fleur; F A J L Scheer; S Perreau-Lenz; M Ruiter; F Kreier; C Cailotto; R M Buijs
Journal:  J Biol Rhythms       Date:  2006-12       Impact factor: 3.182

4.  Melanopsin-expressing ganglion cells in primate retina signal colour and irradiance and project to the LGN.

Authors:  Dennis M Dacey; Hsi-Wen Liao; Beth B Peterson; Farrel R Robinson; Vivianne C Smith; Joel Pokorny; King-Wai Yau; Paul D Gamlin
Journal:  Nature       Date:  2005-02-17       Impact factor: 49.962

5.  Melatonin synthesis: analysis of the more than 150-fold nocturnal increase in serotonin N-acetyltransferase messenger ribonucleic acid in the rat pineal gland.

Authors:  P H Roseboom; S L Coon; R Baler; S K McCune; J L Weller; D C Klein
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Review 6.  The emerging roles of melanopsin in behavioral adaptation to light.

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Journal:  Trends Mol Med       Date:  2010-08-31       Impact factor: 11.951

7.  Relationship between melatonin rhythms and visual loss in the blind.

Authors:  S W Lockley; D J Skene; J Arendt; H Tabandeh; A C Bird; R Defrance
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Review 8.  Melanopsin: an exciting photopigment.

Authors:  Mark W Hankins; Stuart N Peirson; Russell G Foster
Journal:  Trends Neurosci       Date:  2007-12-04       Impact factor: 13.837

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Journal:  Nat Genet       Date:  2012-01-29       Impact factor: 38.330

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Review 3.  Biological clocks: their relevance to immune-allergic diseases.

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4.  Blind Spot for Sedentarism: Redefining the Diseasome of Physical Inactivity in View of Circadian System and the Irisin/BDNF Axis.

Authors:  Judit Zsuga; Csaba E More; Tamas Erdei; Csaba Papp; Szilvia Harsanyi; Rudolf Gesztelyi
Journal:  Front Neurol       Date:  2018-10-01       Impact factor: 4.003

  4 in total

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