Literature DB >> 26678364

Daytime Blue Light Enhances the Nighttime Circadian Melatonin Inhibition of Human Prostate Cancer Growth.

Robert T Dauchy1, Aaron E Hoffman2, Melissa A Wren-Dail3, John P Hanifin4, Benjamin Warfield4, George C Brainard4, Shulin Xiang3, Lin Yuan3, Steven M Hill3, Victoria P Belancio3, Erin M Dauchy3, Kara Smith3, David E Blask3.   

Abstract

Light controls pineal melatonin production and temporally coordinates circadian rhythms of metabolism and physiology in normal and neoplastic tissues. We previously showed that peak circulating nocturnal melatonin levels were 7-fold higher after daytime spectral transmittance of white light through blue-tinted (compared with clear) rodent cages. Here, we tested the hypothesis that daytime blue-light amplification of nocturnal melatonin enhances the inhibition of metabolism, signaling activity, and growth of prostate cancer xenografts. Compared with male nude rats housed in clear cages under a 12:12-h light:dark cycle, rats in blue-tinted cages (with increased transmittance of 462-484 nm and decreased red light greater than 640 nm) evinced over 6-fold higher peak plasma melatonin levels at middark phase (time, 2400), whereas midlight-phase levels (1200) were low (less than 3 pg/mL) in both groups. Circadian rhythms of arterial plasma levels of linoleic acid, glucose, lactic acid, pO2, pCO2, insulin, leptin, and corticosterone were disrupted in rats in blue cages as compared with the corresponding entrained rhythms in clear-caged rats. After implantation with tissue-isolated PC3 human prostate cancer xenografts, tumor latency-to-onset of growth and growth rates were markedly delayed, and tumor cAMP levels, uptake-metabolism of linoleic acid, aerobic glycolysis (Warburg effect), and growth signaling activities were reduced in rats in blue compared with clear cages. These data show that the amplification of nighttime melatonin levels by exposing nude rats to blue light during the daytime significantly reduces human prostate cancer metabolic, signaling, and proliferative activities.

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Year:  2015        PMID: 26678364      PMCID: PMC4681241     

Source DB:  PubMed          Journal:  Comp Med        ISSN: 1532-0820            Impact factor:   0.982


  54 in total

1.  JTK_CYCLE: an efficient nonparametric algorithm for detecting rhythmic components in genome-scale data sets.

Authors:  Michael E Hughes; John B Hogenesch; Karl Kornacker
Journal:  J Biol Rhythms       Date:  2010-10       Impact factor: 3.182

2.  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

3.  Human melatonin regulation is not mediated by the three cone photopic visual system.

Authors:  G C Brainard; J P Hanifin; M D Rollag; J Greeson; B Byrne; G Glickman; E Gerner; B Sanford
Journal:  J Clin Endocrinol Metab       Date:  2001-01       Impact factor: 5.958

4.  Midwinter insomnia in the subarctic region: evening levels of serum melatonin and cortisol before and after treatment with bright artificial light.

Authors:  T Hansen; T Bratlid; O Lingjärde; T Brenn
Journal:  Acta Psychiatr Scand       Date:  1987-04       Impact factor: 6.392

5.  Increased breast cancer risk among women who work predominantly at night.

Authors:  J Hansen
Journal:  Epidemiology       Date:  2001-01       Impact factor: 4.822

6.  Dark-phase light contamination disrupts circadian rhythms in plasma measures of endocrine physiology and metabolism in rats.

Authors:  Robert T Dauchy; Erin M Dauchy; Robert P Tirrell; Cody R Hill; Leslie K Davidson; Michael W Greene; Paul C Tirrell; Jinghai Wu; Leonard A Sauer; David E Blask
Journal:  Comp Med       Date:  2010-10       Impact factor: 0.982

7.  A new apparatus and surgical technique for the dual perfusion of human tumor xenografts in situ in nude rats.

Authors:  Robert T Dauchy; Erin M Dauchy; Lulu Mao; Victoria P Belancio; Steven M Hill; David E Blask
Journal:  Comp Med       Date:  2012-04       Impact factor: 0.982

8.  Rod photoreceptors drive circadian photoentrainment across a wide range of light intensities.

Authors:  Cara M Altimus; Ali D Güler; Nazia M Alam; A Cyrus Arman; Glen T Prusky; Alapakkam P Sampath; Samer Hattar
Journal:  Nat Neurosci       Date:  2010-08-15       Impact factor: 24.884

9.  Melanopsin and rod-cone photoreceptive systems account for all major accessory visual functions in mice.

Authors:  S Hattar; R J Lucas; N Mrosovsky; S Thompson; R H Douglas; M W Hankins; J Lem; M Biel; F Hofmann; R G Foster; K-W Yau
Journal:  Nature       Date:  2003-06-15       Impact factor: 49.962

10.  Temperature as a universal resetting cue for mammalian circadian oscillators.

Authors:  Ethan D Buhr; Seung-Hee Yoo; Joseph S Takahashi
Journal:  Science       Date:  2010-10-15       Impact factor: 47.728

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  19 in total

1.  Relevance of Electrical Light on Circadian, Neuroendocrine, and Neurobehavioral Regulation in Laboratory Animal Facilities.

Authors:  John P Hanifin; Robert T Dauchy; David E Blask; Steven M Hill; George C Brainard
Journal:  ILAR J       Date:  2020-10-19

2.  Effect of Daytime Blue-enriched LED Light on the Nighttime Circadian Melatonin Inhibition of Hepatoma 7288CTC Warburg Effect and Progression.

Authors:  Robert T Dauchy; Melissa A Wren-Dail; Lynell M Dupepe; Steven M Hill; Shulin Xiang; Muralidharan Anbalagan; Victoria P Belancio; Erin M Dauchy; David E Blask
Journal:  Comp Med       Date:  2018-06-06       Impact factor: 0.982

Review 3.  Cancer and the Circadian Clock.

Authors:  Ayesha A Shafi; Karen E Knudsen
Journal:  Cancer Res       Date:  2019-07-12       Impact factor: 12.701

4.  Effect of Isoflurane Anesthesia on Circadian Metabolism and Physiology in Rats.

Authors:  Melissa A Wren-Dail; Robert T Dauchy; David E Blask; Steven M Hill; Tara G Ooms; Lynell M Dupepe; Rudolf P Bohm
Journal:  Comp Med       Date:  2017-03-01       Impact factor: 0.982

5.  Effects of Daytime Exposure to Light from Blue-Enriched Light-Emitting Diodes on the Nighttime Melatonin Amplitude and Circadian Regulation of Rodent Metabolism and Physiology.

Authors:  Robert T Dauchy; Melissa A Wren-Dail; Aaron E Hoffman; John P Hanifin; Benjamin Warfield; George C Brainard; Steven M Hill; Victoria P Belancio; Erin M Dauchy; David E Blask
Journal:  Comp Med       Date:  2016       Impact factor: 0.982

6.  Effects of Colored Enrichment Devices on Circadian Metabolism and Physiology in Male Sprague-Dawley Rats.

Authors:  Melissa A Wren-Dail; Robert T Dauchy; Tara G Ooms; Kate C Baker; David E Blask; Steven M Hill; Lynell M Dupepe; Rudolf P Bohm
Journal:  Comp Med       Date:  2016       Impact factor: 0.982

Review 7.  Circadian Rhythms, Disease and Chronotherapy.

Authors:  Yool Lee; Jeffrey M Field; Amita Sehgal
Journal:  J Biol Rhythms       Date:  2021-09-22       Impact factor: 3.649

8.  A Method for Perfusion of Tissue-Isolated Human Tumor Xenografts in Nude Rats to Investigate the Oncostatic Role of the Physiological Nocturnal Melatonin Signal.

Authors:  Robert T Dauchy; Steven M Hill; David E Blask
Journal:  Methods Mol Biol       Date:  2022

9.  Influence of Daytime LED Light Exposure on Circadian Regulatory Dynamics of Metabolism and Physiology in Mice.

Authors:  Robert T Dauchy; David E Blask; Aaron E Hoffman; Shulin Xiang; John P Hanifin; Benjamin Warfield; George C Brainard; Murali Anbalagan; Lynell M Dupepe; Georgina L Dobek; Victoria P Belancio; Erin M Dauchy; Steven M Hill
Journal:  Comp Med       Date:  2019-09-20       Impact factor: 0.982

Review 10.  Melatonin and circadian rhythms in liver diseases: Functional roles and potential therapies.

Authors:  Keisaku Sato; Fanyin Meng; Heather Francis; Nan Wu; Lixian Chen; Lindsey Kennedy; Tianhao Zhou; Antonio Franchitto; Paolo Onori; Eugenio Gaudio; Shannon Glaser; Gianfranco Alpini
Journal:  J Pineal Res       Date:  2020-03-04       Impact factor: 13.007

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