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Historical and recent aspects of boron in human and animal health

Yıl 2017, Cilt: 2 Sayı: 3, 153 - 160, 30.12.2017

Öz

Evidence that boron is a beneficial
bioactive trace element is substantial. The evidence has come from numerous
laboratories that have use a variety of experimental models, including humans.
In nutritional amounts, boron promotes bone health and brain function, modulates
the immune or inflammatory response, and influences the response to oxidative
stress. Boron apparently has diverse effects through influencing a cell
signaling system or the formation and/or activity of an entity involved in many
biochemical processes. Based on findings from both animal and human
experiments, and intake of boron near 1.0 mg/day would be a reasonable
suggestion for an adequate intake that would assure the benefits provided by
boron.  



Increased intakes of boron through
consuming fruits, vegetables, nuts, and pulses should be recognized as a
reasonable dietary recommendation. 

Kaynakça

  • [1] Hunt C. D., Dietary boron: Evidence for essentiality and homeostatic control in humans and animals, Advances in Plant and Animal Boron Nutrition, Springer, Dordrecht, The Netherlands, pp. 251-267, 2007.
  • [2] Fort D. J., Rogers R. L., McLaughlin D. W., Sellers C. M., Schlekat C. L., Impact of boron deficiency on Xenopus laevis, A summary of biological effects and potential biochemical roles, Biol. Trace Elem. Res., 90, 117-142, 2002.
  • [3] Rowe R. I., Eckhert C. D., Boron is required for zebrafish embryogenesis, J. Exp. Biol., 12, 221-233, 1999.
  • [4] Hunt C. D., Nielsen F. H., Interaction between boron and cholecalciferol in the chick, Trace Elements Metabolism in Man and Animals, TENA-4, Australian Academy of Science, Canberra, Australia, pp. 597-600, 1981.
  • [5] Hunt C. D., Herbel J. L., Idso J. P., Dietary boron modifies the effects of vitamin D3 nutriture on indices of energy substrate utilization and mineral metabolism in the chick, J. Bone Miner. Res., 9, 171-181, 1994.
  • [6] Armstrong T. A., Spears J. W., Crenshaw T. D., Nielsen F. H., Boron supplementation of a semipurified diet for weanling pigs improves feed efficiency and bone strength characteristics and alters plasma lipid metabolites, J. Nutr., 139, 2575-2581, 2000.
  • [7] Nielsen F. H., Dietary fat composition modifies the effect of boron on bone characteristics and plasma lipids in rats, BioFactors, 20, 161-171, 2004.
  • [8] Gorustovich A. A., Steimetz T., Nielsen F. H., Guglielmotti M. B., Histomorphometric study of alveolar bone healing in rats fed a boron-deficient diet, Anatomical Record (Hoboken), 291, 441-447, 2008.
  • [9] Gorustovich A. A., Steimetz T., Nielsen F. H., Guglielmotti M. B., A histomorphometric study of alveolar bone modeling and remodeling in mice fed a boron-deficient diet, Archives of Oral Biology, 53,677-682, 2008.
  • [10] Sağlam M., Hatipoğlu M., Köseoğlu S., Esen H. H., Kelebek S., Boric acid inhibits alveolar bone loss in rats by affecting RANKL and osteoprotegerin expression, Journal of Periodontal Research, 49, 472-479, 2014.
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Yıl 2017, Cilt: 2 Sayı: 3, 153 - 160, 30.12.2017

Öz

Kaynakça

  • [1] Hunt C. D., Dietary boron: Evidence for essentiality and homeostatic control in humans and animals, Advances in Plant and Animal Boron Nutrition, Springer, Dordrecht, The Netherlands, pp. 251-267, 2007.
  • [2] Fort D. J., Rogers R. L., McLaughlin D. W., Sellers C. M., Schlekat C. L., Impact of boron deficiency on Xenopus laevis, A summary of biological effects and potential biochemical roles, Biol. Trace Elem. Res., 90, 117-142, 2002.
  • [3] Rowe R. I., Eckhert C. D., Boron is required for zebrafish embryogenesis, J. Exp. Biol., 12, 221-233, 1999.
  • [4] Hunt C. D., Nielsen F. H., Interaction between boron and cholecalciferol in the chick, Trace Elements Metabolism in Man and Animals, TENA-4, Australian Academy of Science, Canberra, Australia, pp. 597-600, 1981.
  • [5] Hunt C. D., Herbel J. L., Idso J. P., Dietary boron modifies the effects of vitamin D3 nutriture on indices of energy substrate utilization and mineral metabolism in the chick, J. Bone Miner. Res., 9, 171-181, 1994.
  • [6] Armstrong T. A., Spears J. W., Crenshaw T. D., Nielsen F. H., Boron supplementation of a semipurified diet for weanling pigs improves feed efficiency and bone strength characteristics and alters plasma lipid metabolites, J. Nutr., 139, 2575-2581, 2000.
  • [7] Nielsen F. H., Dietary fat composition modifies the effect of boron on bone characteristics and plasma lipids in rats, BioFactors, 20, 161-171, 2004.
  • [8] Gorustovich A. A., Steimetz T., Nielsen F. H., Guglielmotti M. B., Histomorphometric study of alveolar bone healing in rats fed a boron-deficient diet, Anatomical Record (Hoboken), 291, 441-447, 2008.
  • [9] Gorustovich A. A., Steimetz T., Nielsen F. H., Guglielmotti M. B., A histomorphometric study of alveolar bone modeling and remodeling in mice fed a boron-deficient diet, Archives of Oral Biology, 53,677-682, 2008.
  • [10] Sağlam M., Hatipoğlu M., Köseoğlu S., Esen H. H., Kelebek S., Boric acid inhibits alveolar bone loss in rats by affecting RANKL and osteoprotegerin expression, Journal of Periodontal Research, 49, 472-479, 2014.
  • [11] Balci Yuce H., Toker H., Goze F., The histopathological and morphometric investigation of the effects of systemically administered boric acid on alveolar bone loss in ligature-induced periodontitis in diabetic rats, Acta Odontologica Scandinavica 72, 729-736, 2014. [12] Hakki S. S., Malkoc S., Dundar N., Kayis S.A., Hakki E. E., Hamurcu M., Baspinar N., Basoglu A., Nielsen F. H., Götz W., Dietary boron does not affect tooth strength, micro-hardness, and density, but affects tooth mineral compostion and alveolar bone mineral density in rabbits fed a high-energy diet, J. Trace Elem. Med. Biol., 29, 208-215, 2015.
  • [13] Taşh P. N., Doğan A., Demirci S., Şahin F., Boron enhances odontogenic and osteogenic differentiation of human tooth germ stem cells (hTGSCs) in vitro, Biol. Trace Elem. Res., 153, 419-427, 2013.
  • [14] Ying X., Cheng S., Wang W., Lin Z., Chen Q., Zhang W., Kou D., Shen Y., Cheng X., Rompis F.A., Peng L., Lu C.Z., Effect of boron on osteogenic differentiation of human bone marrow stromal cells, Biol. Trace Elem. Res., 144, 306-315, 2011.
  • [15] Majafabadi B. M., Abnosi M. H., Boron induces early matrix mineralization via calcium deposition and elevation of alkaline phosphatase activity in differentiated rat bone marrow mesenchymal stem cells, Cell Journal (Yakhteh), 18, 62-73, 2016.
  • [16] Hakki S. S., Bozkurt B. S., Hakki E. E., Boron regulates mineralized tissue-associated proteins in osteoblasts (MC3T3-E1), J. Trace Elem. Med. Biol., 24, 243-250, 2010.
  • [17] Wu C., Miron R., Sculean A., Kaskel S., Doert T., Schulze R., Zhang Y., Proliferation, differentiation and gene expression of osteoblasts in boron-containing associated with dexamethasone deliver from mesoporous bioactive glass scaffolds, Biomater., 32, 7068-7078, 2011.
  • [18] Gorustovich A. A., López J. M. P., Guglielmotti M. B., Cabrini R. L., Biological performance of boron-modified bioactive glass particles implanted in rat tibia bone marrow, Biomed. Mater., 1, 100-105, 2006.
  • [19] Xie Z., Liu X., Jia W., Zhang C., Huang W., Wang S., Treatment of osteomyelitis and repair of bone defect by degradable bioactive borate glass releasing vancomycin, J. Controlled Release, 139, 118-126, 2009.
  • [20] Doğan A., Demirci S., Bayir Y., Halici Z., Karakus E., Aydin A., Cadirci E., Albayrak A., Demirci E., Karaman A., Ayan A.K., Gundoglu C., Şahin F., Boron containing poly-(lactide-co-glycolide) (PLGA) scaffolds for bone tissue engineering, Mater. Sci. Eng., C, 44, 246-253, 2014.
  • [21] Haro Durand L. A., Góngora A., Porto López J. M., Boccaccini A. R., Zago M. P., Baldi A., Gorustovich A., In vitro endothelial cell response t ionic dissolution products from boron-doped bioactive glass in the SiO2-CaO-P2O5-Na2O system, J. Mater. Chem. B, 2, 7620-7630, 2014. [22] Haro Durand L. A., Vargas G. E.., Romero N. M., Vera-Mesones R., Porto- López J. M. Boccaccini A. R., Zago M. P., Baldi A., Gorustovich A., Angiogenic effects of ionic dissolution products released from a boron-doped 4SS5 bioactive glass, J. Mater. Chem. B, 3, 1142-1148, 2015.
  • [23] Uysal T., Ustdal A., Sonmez M. F., Ozturk F., Stimulation of bone formation by dietary boron in an orthopedically expanded suture in rabbits, Angle Orthodontist, 79, 984-990, 2009.
  • [24] Gölge U. H., Kaymaz B., Arpaci R., Kömürcü E., Göksel F., Güven M., Güzel Y., Cevizci S., Effects of boric acid on fracture healing: An experimental study, Biol. Trace Elem. Res., 167, 264-271, 2015.
  • [25] Cheng J., Peng K., Jin E., Zhang Y., Liu Y., Zhang N., Song H., Liu H., Tang Z., Effect of additional boron on tibias of African ostrich chicks, Biol. Trace Elem. Res, 144, 538, 549, 2011.
  • [26] Scorei R. I., Rotaru P., Calcium fructoborate – potential anti-inflammatory agent, Biol. Trace Elem. Res., 143, 1223-1238, 2011.
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Toplam 82 adet kaynakça vardır.

Ayrıntılar

Bölüm Review Makaleler
Yazarlar

Forrest Harold Nielsen Bu kişi benim 0000-0001-9557-4792

Yayımlanma Tarihi 30 Aralık 2017
Kabul Tarihi 21 Aralık 2017
Yayımlandığı Sayı Yıl 2017 Cilt: 2 Sayı: 3

Kaynak Göster

APA Nielsen, F. H. (2017). Historical and recent aspects of boron in human and animal health. Journal of Boron, 2(3), 153-160.

© 2016 Her Hakkı Saklıdır.
TENMAK Bor Araştırma Enstitüsü