Literature DB >> 33562416

Selenium Biofortification: Roles, Mechanisms, Responses and Prospects.

Akbar Hossain1, Milan Skalicky2, Marian Brestic2,3, Sagar Maitra4, Sukamal Sarkar5, Zahoor Ahmad6, Hindu Vemuri7, Sourav Garai5, Mousumi Mondal5, Rajan Bhatt8, Pardeep Kumar9, Pradipta Banerjee10, Saikat Saha11, Tofazzal Islam12, Alison M Laing13.   

Abstract

The trace elen class="Species">ment n class="Gene">selenium (n class="Gene">Se) is a crucial element for many living organisms, including soil microorganisms, plants and animals, including humans. Generally, in Nature Se is taken up in the living cells of microorganisms, plants, animals and humans in several inorganic forms such as selenate, selenite, elemental Se and selenide. These forms are converted to organic forms by biological process, mostly as the two selenoamino acids selenocysteine (SeCys) and selenomethionine (SeMet). The biological systems of plants, animals and humans can fix these amino acids into Se-containing proteins by a modest replacement of methionine with SeMet. While the form SeCys is usually present in the active site of enzymes, which is essential for catalytic activity. Within human cells, organic forms of Se are significant for the accurate functioning of the immune and reproductive systems, the thyroid and the brain, and to enzyme activity within cells. Humans ingest Se through plant and animal foods rich in the element. The concentration of Se in foodstuffs depends on the presence of available forms of Se in soils and its uptake and accumulation by plants and herbivorous animals. Therefore, improving the availability of Se to plants is, therefore, a potential pathway to overcoming human Se deficiencies. Among these prospective pathways, the Se-biofortification of plants has already been established as a pioneering approach for producing Se-enriched agricultural products. To achieve this desirable aim of Se-biofortification, molecular breeding and genetic engineering in combination with novel agronomic and edaphic management approaches should be combined. This current review summarizes the roles, responses, prospects and mechanisms of Se in human nutrition. It also elaborates how biofortification is a plausible approach to resolving Se-deficiency in humans and other animals.

Entities:  

Keywords:  animals; biofortification; humans; nutrition; plants; selenium; trace element

Mesh:

Substances:

Year:  2021        PMID: 33562416      PMCID: PMC7914768          DOI: 10.3390/molecules26040881

Source DB:  PubMed          Journal:  Molecules        ISSN: 1420-3049            Impact factor:   4.411


  154 in total

1.  Serum selenium levels are associated with age-related cataract.

Authors:  Michał Post; Wojciech Lubiński; Jan Lubiński; Karol Krzystolik; Piotr Baszuk; Magdalena Muszyńska; Wojciech Marciniak
Journal:  Ann Agric Environ Med       Date:  2018-05-25       Impact factor: 1.447

Review 2.  A critical review of selenium biogeochemical behavior in soil-plant system with an inference to human health.

Authors:  Muhammad Shahid; Nabeel Khan Niazi; Sana Khalid; Behzad Murtaza; Irshad Bibi; Muhammad Imtiaz Rashid
Journal:  Environ Pollut       Date:  2017-12-21       Impact factor: 8.071

Review 3.  The role of selenium in thyroid gland pathophysiology.

Authors:  Michał Stuss; Marta Michalska-Kasiczak; Ewa Sewerynek
Journal:  Endokrynol Pol       Date:  2017       Impact factor: 1.582

Review 4.  Role of iodine, selenium and other micronutrients in thyroid function and disorders.

Authors:  Vincenzo Triggiani; Emilio Tafaro; Vito Angelo Giagulli; Carlo Sabbà; Francesco Resta; Brunella Licchelli; Edoardo Guastamacchia
Journal:  Endocr Metab Immune Disord Drug Targets       Date:  2009-09-01       Impact factor: 2.895

5.  Unequal functional redundancy between the two Arabidopsis thaliana high-affinity sulphate transporters SULTR1;1 and SULTR1;2.

Authors:  Marie Barberon; Pierre Berthomieu; Michael Clairotte; Nakako Shibagaki; Jean-Claude Davidian; Françoise Gosti
Journal:  New Phytol       Date:  2008-08-25       Impact factor: 10.151

6.  Selenium concentration and speciation in biofortified flour and bread: Retention of selenium during grain biofortification, processing and production of Se-enriched food.

Authors:  D J Hart; S J Fairweather-Tait; M R Broadley; S J Dickinson; I Foot; P Knott; S P McGrath; H Mowat; K Norman; P R Scott; J L Stroud; M Tucker; P J White; F J Zhao; R Hurst
Journal:  Food Chem       Date:  2010-12-23       Impact factor: 7.514

Review 7.  Selenium homeostasis and antioxidant selenoproteins in brain: implications for disorders in the central nervous system.

Authors:  Holger Steinbrenner; Helmut Sies
Journal:  Arch Biochem Biophys       Date:  2013-03-13       Impact factor: 4.013

Review 8.  Exploring the new dimensions of selenium research to understand the underlying mechanism of its uptake, translocation, and accumulation.

Authors:  Meenakshi Raina; Akanksha Sharma; Muslima Nazir; Punam Kumari; Anjana Rustagi; Ammarah Hami; Brijmohan Singh Bhau; Sajad Majeed Zargar; Deepak Kumar
Journal:  Physiol Plant       Date:  2020-11-25       Impact factor: 4.500

9.  Selenium deficiency in the Federal Republic of Germany.

Authors:  W Hartfiel; N Bahners
Journal:  Biol Trace Elem Res       Date:  1988 Jan-Apr       Impact factor: 3.738

Review 10.  Biofortification of Pulse Crops: Status and Future Perspectives.

Authors:  Ambuj B Jha; Thomas D Warkentin
Journal:  Plants (Basel)       Date:  2020-01-06
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  8 in total

Review 1.  The Role of Selenium in Pathologies: An Updated Review.

Authors:  Giulia Barchielli; Antonella Capperucci; Damiano Tanini
Journal:  Antioxidants (Basel)       Date:  2022-01-27

2.  Influence of Selenium Biofortification of Soybeans on Speciation and Transformation during Seed Germination and Sprouts Quality.

Authors:  Yatao Huang; Ningyu Lei; Yangyang Xiong; Yanfang Liu; Litao Tong; Fengzhong Wang; Bei Fan; Philippe Maesen; Christophe Blecker
Journal:  Foods       Date:  2022-04-20

3.  Bioinformatics Analyses Reveal the Prognostic Value and Biological Roles of SEPHS2 in Various Cancers.

Authors:  Luyu Zhang; Qianqian Zhao; Leilei Mao; Huanze Li; Miaoqing Zhuang; Jiayi Wang; Yue Liu; Meng Qi; Xiaoping Du; Zengrun Xia; Na Sun; Qiling Liu; Hongfang Chen; Rongqiang Zhang
Journal:  Int J Gen Med       Date:  2021-09-24

4.  Synergistic Effect of Melatonin and Selenium Improves Resistance to Postharvest Gray Mold Disease of Tomato Fruit.

Authors:  Huawei Zang; Jiaojiao Ma; Zhilin Wu; Linxi Yuan; Zhi-Qing Lin; Renbin Zhu; Gary S Bañuelos; Russel J Reiter; Miao Li; Xuebin Yin
Journal:  Front Plant Sci       Date:  2022-06-22       Impact factor: 6.627

5.  Mushroom-Derived Novel Selenium Nanocomposites' Effects on Potato Plant Growth and Tuber Germination.

Authors:  Olga M Tsivileva; Alla I Perfileva
Journal:  Molecules       Date:  2022-07-11       Impact factor: 4.927

6.  The association between non-alcoholic fatty liver disease (NAFLD) and advanced fibrosis with blood selenium level based on the NHANES 2017-2018.

Authors:  Jie Liu; Liao Tan; Zhaoya Liu; Ruizheng Shi
Journal:  Ann Med       Date:  2022-12       Impact factor: 5.348

7.  Feeding foliar nano-selenium biofortified panax notoginseng could reduce the occurrence of glycolipid metabolism disorder in mice caused by high-fat diets.

Authors:  Qinyong Dong; Sen Yan; Dong Li; Chunran Zhou; Sinuo Tian; Yu Wang; Peijuan Miao; Wentao Zhu; Shusheng Zhu; Canping Pan
Journal:  Front Nutr       Date:  2022-08-24

8.  Salsola soda as selenium biofortification crop under high saline and boron growing conditions.

Authors:  Gary S Bañuelos; Tiziana Centofanti; Maria C Zambrano; Kaomine Vang; Todd A Lone
Journal:  Front Plant Sci       Date:  2022-09-26       Impact factor: 6.627

  8 in total

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