Literature DB >> 32308516

Improvement or Worsening of Human Contrast Sensitivity Due to Blue Light Attenuation at 450 nm.

Silvia Tavazzi1,2, Federica Cozza1,2, Gabriele Nigrotti2, Chiara Braga2, Natalia Vlasak3, Silvano Larcher4, Fabrizio Zeri1,2,5.   

Abstract

PURPOSE: The work was aimed at comparing contrast sensitivity performance in an indoor environment with two filters, which differ only in the presence of a band at 450±20 nm in the transmittance spectrum. PATIENTS AND METHODS: Thirty-nine subjects participated. The filters were the Standard (ST) and Professional (PRO) Drive lenses (Hoya, Japan), the latter showing the attenuation band at 450 nm. Photopic contrast sensitivity (CS) was measured at different spatial frequencies from 1.5 to 18 cpd through Functional Acuity Contrast Test with both lenses (LogCSST and LogCSPRO, respectively). The areas under the curves of LogCSST and LogCSPRO as a function of the spatial frequency were also considered.
RESULTS: In the range of the measured values of LogCSST for the thirty-nine participants, at each spatial frequency and also for the areas, the difference Δ = LogCSPRO - LogCSST was found to decrease and change sign from positive to negative as a function of LogCSST, thus allowing to deduce a threshold (LogCSthreshold) for LogCSST corresponding to Δ=0. Significant CS worsening was found with the PRO compared to the ST lens for the subjects showing LogCSST > LogCSthreshold. Vice versa, CS improvement was found when LogCSST < LogCSthreshold.
CONCLUSION: In the choice of a blue-filtering lens, practitioners should take into consideration that the attenuation of light in the range 420-470 nm is expected to produce a CS worsening in subjects showing a relatively high initial CS (higher than a threshold CS). For these subjects, the general reduction of transmitted light intensity prevails on possible advantages. On the contrary, subjects showing a relatively low initial CS are expected to show a CS improvement because the attenuation of light in the range 420-470 nm is expected to reduce intraocular scattering and to mimic the effect as an optical filter of the human macular pigment, advantages which prevail on the reduction of the transmitted light intensity.
© 2020 Tavazzi et al.

Entities:  

Keywords:  blue filtering; intraocular scattering; macular pigment; optics and spectroscopy; optometry practice

Year:  2020        PMID: 32308516      PMCID: PMC7133119          DOI: 10.2147/OPTO.S242818

Source DB:  PubMed          Journal:  Clin Optom (Auckl)        ISSN: 1179-2752


  20 in total

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