journal article Open Access Mar 04, 2019

Mechanisms of vitamin D on skeletal muscle function: oxidative stress, energy metabolism and anabolic state

View at Publisher Save 10.1007/s00421-019-04104-x
Topics

No keywords indexed for this article. Browse by subject →

References
141
[1]
Abboud M, Puglisi DA, Davies BN, Rybchyn M, Whitehead NP, Brock KE et al (2013) “Evidence for a specific uptake and retention mechanism for 25-hydroxyvitamin D (25OHD) in skeletal muscle cells.” Endocrinology 154(9): 3022–3030 10.1210/en.2012-2245
[2]
Abboud M, Rybchyn MS, Liu J, Ning Y, Gordon-Thomson C, Brennan-Speranza TC et al (2017) “The effect of parathyroid hormone on the uptake and retention of 25-hydroxyvitamin D in skeletal muscle cells”. J Steroid Biochem Molecular Biol 173:173–179 10.1016/j.jsbmb.2017.01.001
[3]
Abboud M, Rybchyn MS, Ning YJ, Brennan-Speranza TC, Girgis CM, Gunton JE et al (2018) “1,25-Dihydroxycholecalciferol (calcitriol) modifies uptake and release of 25-hydroxycholecalciferol in skeletal muscle cells in culture”. J Steroid Biochem Molecular Biol 177:109–115 10.1016/j.jsbmb.2017.10.018
[4]
Ameri P, Giusti A, Boschetti M, Bovio M, Teti C, Leoncini G et al (2013) “Vitamin D increases circulating IGF1 in adults: potential implication for the treatment of GH deficiency”. Eur J Endocrinol 169(6):767–772 10.1530/eje-13-0510
[5]
Banerjee A, Apponi LH, Pavlath GK, Corbett AH (2013) “PABPN1: molecular function and muscle disease”. FEBS J 280(17):4230–4250 10.1111/febs.12294
[6]
Bang WS, Lee DH, Kim KT, Cho DC, Sung JK, Han IB et al (2018) “Relationships between vitamin D and paraspinal muscle: human data and experimental rat model analysis”. Spine J 18(6):1053–1061 10.1016/j.spinee.2018.01.007
[7]
Bartholome A, Kampkotter A, Tanner S, Sies H, Klotz LO (2010) Epigallocatechin gallate-induced modulation of FoxO signaling in mammalian cells and C. elegans: FoxO stimulation is masked via PI3K/Akt activation by hydrogen peroxide formed in cell culture. Arch Biochem Biophys 501(1):58–64 10.1016/j.abb.2010.05.024
[8]
Bartonkova I, Dvorak Z (2018) “Assessment of endocrine disruption potential of essential oils of culinary herbs and spices involving glucocorticoid, androgen and vitamin D receptors”. Food Funct 9(4):2136–2144 10.1039/c7fo02058a
[9]
Bhat M, Ismail A (2015) Vitamin D treatment protects against and reverses oxidative stress induced muscle proteolysis. J Steroid Biochem Mol Biol 152:171–179 10.1016/j.jsbmb.2015.05.012
[10]
Bhat M, Kalam R, Qadri SS, Madabushi S, Ismail A (2013) Vitamin D deficiency-induced muscle wasting occurs through the ubiquitin proteasome pathway and is partially corrected by calcium in male rats. Endocrinology 154(11): 4018–4029 10.1210/en.2013-1369
[11]
Bikle DD, Gee E, Halloran B, Kowalski MA, Ryzen E, Haddad JG (1986) Assessment of the free fraction of 25-hydroxyvitamin D in serum and its regulation by albumin and the vitamin D-binding protein. J Clin Endocrinol Metabol 63(4):954–959 10.1210/jcem-63-4-954
[12]
Bischoff HA, Borchers M, Gudat F, Duermueller U, Theiler R, Stahelin HB et al (2001) “In situ detection of 1,25-dihydroxyvitamin D3 receptor in human skeletal muscle tissue”. Histochem J 33(1):19–24 10.1023/a:1017535728844
[13]
Bischoff-Ferrari HA, Borchers M, Gudat F, Durmuller U, Stahelin HB, Dick W (2004) Vitamin D receptor expression in human muscle tissue decreases with age. J Bone Miner Res 19(2):265–269 10.1359/jbmr.2004.19.2.265
[14]
Bonaldo P, Sandri M (2013) Cellular and molecular mechanisms of muscle atrophy. Dis Model Mech 6(1):25–39 10.1242/dmm.010389
[15]
Braakhuis AJ, Hopkins WG (2015) “Impact of dietary antioxidants on sport performance. A review. Sports Med 45(7):939–955 10.1007/s40279-015-0323-x
[16]
Brown AJ, Coyne DW (2012) Bioavailable vitamin D in chronic kidney disease. Kidney Int 82(1):5–7 10.1038/ki.2012.135
[17]
Brunet A, Bonni A, Zigmond MJ, Lin MZ, Juo P, Hu LS et al (1999) Akt promotes cell survival by phosphorylating and inhibiting a Forkhead transcription factor. Cell 96(6):857–868 10.1016/s0092-8674(00)80595-4
[18]
Buitrago C, Vazquez G, De Boland AR, Boland RL (2000) Activation of Src kinase in skeletal muscle cells by 1, 1,25-(OH(2))-vitamin D(3) correlates with tyrosine phosphorylation of the vitamin D receptor (VDR) and VDR-Src interaction. J Cell Biochem 79(2):274–281 10.1002/1097-4644(20001101)79:2<274::aid-jcb100>3.0.co;2-r
[19]
Buitrago C, Boland R, de Boland AR (2001a) The tyrosine kinase c-Src is required for 1,25(OH)2-vitamin D3 signalling to the nucleus in muscle cells. Biochimica et biophysica acta 1541(3):179–187 10.1016/s0167-4889(01)00142-2
[20]
Buitrago C, Vazquez G, De Boland AR, Boland R (2001b) “The vitamin D receptor mediates rapid changes in muscle protein tyrosine phosphorylation induced by 1,25(OH)(2)D(3). Biochem Biophys Res Commun 289(5): 1150–1156 10.1006/bbrc.2001.6072
[21]
Buitrago CG, Ronda AC, de Boland AR, Boland R (2006) “MAP kinases p38 and JNK are activated by the steroid hormone 1alpha,25(OH)2-vitamin D3 in the C2C12 muscle cell line”. J Cell Biochem 97(4):698–708 10.1002/jcb.20639
[22]
Buitrago CG, Arango NS, Boland RL (2012) “1alpha,25(OH)2D3-dependent modulation of Akt in proliferating and differentiating C2C12 skeletal muscle cells”. J Cell Biochem 113(4):1170–1181 10.1002/jcb.23444
[23]
Calton EK, Keane KN, Newsholme P, Soares MJ (2015) The impact of vitamin D levels on inflammatory status: a systematic review of immune cell studies. PLoS One 10(11):e0141770 10.1371/journal.pone.0141770
[24]
Camperi A, Pin F, Costamagna D, Penna F, Menduina ML, Aversa Z et al (2017) Vitamin D and VDR in cancer cachexia and muscle regeneration. Oncotarget 8(13):21778–21793 10.18632/oncotarget.15583
[25]
Capiati D, Benassati S, Boland RL (2002) 1,25(OH)2-vitamin D3 induces translocation of the vitamin D receptor (VDR) to the plasma membrane in skeletal muscle cells. J Cell Biochem 86(1):128–135 10.1002/jcb.10191
[26]
Carlberg C, Bendik I, Wyss A, Meier E, Sturzenbecker LJ, Grippo JF et al (1993) Two nuclear signalling pathways for vitamin D. Nature 361(6413):657–660 10.1038/361657a0
[27]
Ceglia L, Niramitmahapanya S, da Silva Morais M, Rivas DA, Harris SS, Bischoff-Ferrari H et al (2013) A randomized study on the effect of vitamin D(3) supplementation on skeletal muscle morphology and vitamin D receptor concentration in older women. J Clin Endocrinol Metabol 98(12):E1927–E1935 10.1210/jc.2013-2820
[28]
Chappel J, Ross FP, Abu-Amer Y, Shaw A, Teitelbaum SL (1997) “1,25-dihydroxyvitamin D3 regulates pp60c-src activity and expression of a pp60c-src activating phosphatase”. J Cell Biochem 67(4):432–438 10.1002/(sici)1097-4644(19971215)67:4<432::aid-jcb2>3.0.co;2-t
[29]
Chen S, Villalta SA, Agrawal DK (2016) FOXO1 mediates vitamin D deficiency-induced insulin resistance in skeletal muscle. J Bone Miner Res 31(3):585–595 10.1002/jbmr.2729
[30]
Cielen N, Heulens N, Maes K, Carmeliet G, Mathieu C, Janssens W et al (2016) Vitamin D deficiency impairs skeletal muscle function in a smoking mouse model. J Endocrinol 229(2):97–108 10.1530/joe-15-0491
[31]
Crew KD, Xiao T, Thomas PS, Terry MB, Maurer M, Kalinsky K et al (2015) Safety, feasibility, and biomarker effects of high-dose vitamin D supplementation among women at high risk for breast cancer. Int J Food Sci Nutr Diet 2015(Suppl 1): 1–16
[32]
Cutolo M, Paolino S, Sulli A, Smith V, Pizzorni C, Seriolo B (2014) Vitamin D, steroid hormones, and autoimmunity. Ann N Y Acad Sci 1317:39–46 10.1111/nyas.12432
[33]
DeLuca HF (1974) Vitamin D: the vitamin and the hormone. Fed Proc 33(11):2211–2219
[34]
Overview of general physiologic features and functions of vitamin D

Hector F DeLuca

The American Journal of Clinical Nutrition 2004 10.1093/ajcn/80.6.1689s
[35]
Deng YT, Chang TW, Lee MS, Lin JK (2012) Suppression of free fatty acid-induced insulin resistance by phytopolyphenols in C2C12 mouse skeletal muscle cells. J Agric Food Chem 60(4):1059–1066 10.1021/jf204496f
[36]
Dhesi JK, Jackson SH, Bearne LM, Moniz C, Hurley MV, Swift CG et al (2004) Vitamin D supplementation improves neuromuscular function in older people who fall. Age Ageing 33(6):589–595 10.1093/ageing/afh209
[37]
Dusso AS, Brown AJ, Slatopolsky E (2005) Vitamin D. Am J Physiol. Renal Physiol 289(1):F8–F28 10.1152/ajprenal.00336.2004
[38]
Dzik K, Skrobot W, Flis DJ, Karnia M, Libionka W, Kloc W et al (2018) “Vitamin D supplementation attenuates oxidative stress in paraspinal skeletal muscles in patients with low back pain”. Eur J Appl Physiol 118(1):143–151 10.1007/s00421-017-3755-1
[39]
Endo I, Inoue D, Mitsui T, Umaki Y, Akaike M, Yoshizawa T et al (2003) Deletion of vitamin D receptor gene in mice results in abnormal skeletal muscle development with deregulated expression of myoregulatory transcription factors. Endocrinology 144(12):5138–5144 10.1210/en.2003-0502
[40]
Fielding RA, Vellas B, Evans WJ, Bhasin S, Morley JE, Newman AB et al (2011) “Sarcopenia: an undiagnosed condition in older adults. Current consensus definition: prevalence, etiology, and consequences. International working group on sarcopenia”. J Am Med Dir Assoc 12(4):249–256 10.1016/j.jamda.2011.01.003
[41]
Franco R, Cidlowski JA (2012) Glutathione efflux and cell death. Antioxid Redox Signal 17(12):1694–1713 10.1089/ars.2012.4553
[42]
Fu L, Yun F, Oczak M, Wong BY, Vieth R, Cole DE (2009) “Common genetic variants of the vitamin D binding protein (DBP) predict differences in response of serum 25-hydroxyvitamin D [25(OH)D] to vitamin D supplementation”. Clin Biochem 42(10–11):1174–1177 10.1016/j.clinbiochem.2009.03.008
[43]
Galior K, Grebe S, Singh R (2018) Development of vitamin D toxicity from overcorrection of vitamin D deficiency: a review of case reports. Nutrients 10(8):953 10.3390/nu10080953
[44]
Garland CF, Garland FC, Gorham ED, Lipkin M, Newmark H, Mohr SB et al (2006) “The role of vitamin D in cancer prevention”. Am J Public Health 96(2):252–261 10.2105/ajph.2004.045260
[45]
Gil A, Plaza-Diaz J, Mesa MD (2018) “Vitamin D: classic and novel actions”. Ann Nutr Metab 72(2):87–95 10.1159/000486536
[46]
Girgis CM, Clifton-Bligh RJ, Hamrick MW, Holick MF, Gunton JE (2013) The roles of vitamin D in skeletal muscle: form, function, and metabolism. Endocr Rev 34(1):33–83 10.1210/er.2012-1012
[47]
Girgis CM, Mokbel N, Cha KM, Houweling PJ, Abboud M, Fraser DR et al (2014) The vitamin D receptor (VDR) is expressed in skeletal muscle of male mice and modulates 25-hydroxyvitamin D (25OHD) uptake in myofibers. Endocrinology 155(9):3227–3237 10.1210/en.2014-1016
[48]
Glancy B, Balaban RS (2012) Role of mitochondrial Ca2 + in the regulation of cellular energetics. Biochemistry 51(14):2959–2973 10.1021/bi2018909
[49]
Gniadecki R (1998) Involvement of Src in the vitamin D signaling in human keratinocytes. Biochemical pharmacology 55(4):499–503 10.1016/s0006-2952(97)00499-1
[50]
Gomez-Cabrera MC, Domenech E, Romagnoli M, Arduini A, Borras C, Pallardo FV et al (2008) “Oral administration of vitamin C decreases muscle mitochondrial biogenesis and hampers training-induced adaptations in endurance performance”. Am J Clin Nutr 87(1):142–149 10.1093/ajcn/87.1.142

Showing 50 of 141 references

Metrics
264
Citations
141
References
Details
Published
Mar 04, 2019
Vol/Issue
119(4)
Pages
825-839
License
View
Funding
Narodowe Centrum Nauki Award: NCN UMO-2012/05/B/NZ7/02493
Cite This Article
Katarzyna Patrycja Dzik, Jan Jacek Kaczor (2019). Mechanisms of vitamin D on skeletal muscle function: oxidative stress, energy metabolism and anabolic state. European Journal of Applied Physiology, 119(4), 825-839. https://doi.org/10.1007/s00421-019-04104-x