Next Generation Nutrition: Genomic and Molecular Breeding Innovations for Iron and Zinc Biofortification in Rice

被引:4
作者
Dhanyalakshmi, Kunhikrishnan Hemalatha [1 ]
Mohan, Reshma [2 ]
Behera, Sasmita [3 ]
Jha, Uday Chand [4 ]
Moharana, Debashis [3 ]
Behera, Ahalya [3 ]
Thomas, Sini [5 ]
Soumya, Preman Rejitha [2 ]
Sah, Rameswar Prasad [3 ]
Beena, Radha [2 ]
机构
[1] Kerala Agr Univ, Coll Agr, Dept Plant Physiol, Padannakkad 671314, Kerala, India
[2] Kerala Agr Univ, Coll Agr, Dept Plant Physiol, Vellayani 695522, Kerala, India
[3] Natl Rice Res Inst, India Council Agr Res, Crop Improvement Div, Cuttack 7530006, Odisha, India
[4] Indian Inst Pulse Res, Dept Plant Breeding & Genet, Kanpur 208024, India
[5] Kerala Agr Univ, Coll Agr, Dept Plant Physiol, Kumarakom 686563, Kerala, India
关键词
biofortification; grain quality; iron; phytic acid; rice; zinc; METAL-NICOTIANAMINE TRANSPORTER; QUANTITATIVE TRAIT LOCI; LONG-DISTANCE TRANSPORT; LOW-PHYTATE MUTATIONS; PHYTIC-ACID; TRANSCRIPTION FACTOR; TRANSGENIC RICE; PHYTOSIDEROPHORE SYNTHESIS; PHOSPHATE TRANSPORTER; EFFLUX TRANSPORTER;
D O I
10.1016/j.rsci.2024.04.008
中图分类号
S3 [农学(农艺学)];
学科分类号
0901 ;
摘要
Global efforts to address malnutrition and hidden hunger, particularly prevalent in low- and middle-income countries, have intensified, with a focus on enhancing the nutritional content of staple crops like rice. Despite serving as a staple for over half of the world's population, rice falls short in meeting daily nutritional requirements, especially for iron (Fe) and zinc (Zn). Genetic resources, such as wild rice species and specific rice varieties, offer promising avenues for enhancing Fe and Zn content. Additionally, molecular breeding approaches have identified key genes and loci associated with Fe and Zn accumulation in rice grains. This review explores the genetic resources and molecular mechanisms underlying Fe and Zn accumulation in rice grains. The functional genomics involved in Fe uptake, transport, and distribution in rice plants have revealed key genes such as OSFRO1, OSIRT1, and OsNAS3. Similarly, genes associated with Zn uptake and translocation, including OsZIP11 and OsNRAMP1, have been identified. Transgenic approaches, leveraging transporter gene families and genome editing technologies, offer promising avenues for enhancing Fe and Zn content in rice grains. Moreover, strategies for reducing phytic acid (PA) content, a known inhibitor of mineral bioavailability, have been explored, including the identification of low-PA mutants and natural variants. The integration of genomic information, including whole-genome resequencing and pan-genome analyses, provides valuable insights into the genetic basis of micronutrient traits and facilitates targeted breeding efforts. Functional genomics studies have elucidated the molecular mechanisms underlying Fe uptake and translocation in rice. Furthermore, transgenic and genome editing techniques have shown promise in enhancing Fe and Zn content in rice grains through the manipulation of key transporter genes. Overall, the integration of multi-omics approaches holds significant promise for addressing global malnutrition and hidden hunger by enhancing the nutritional quality of rice, thereby contributing to improved food and nutritional security worldwide.
引用
收藏
页码:526 / 544
页数:19
相关论文
共 162 条
[1]   Calcium, zinc and phytate interrelationships in some foods of major consumption in Nigeria [J].
Adeyeye, EI ;
Arogundade, LA ;
Akintayo, ET ;
Aisida, OA ;
Alao, PA .
FOOD CHEMISTRY, 2000, 71 (04) :435-441
[2]   Expression patterns of QTL based and other candidate genes in Madhukar x Swarna RILs with contrasting levels of iron and zinc in unpolished rice grains [J].
Agarwal, Surekha ;
Venkata, Tripura V. G. N. ;
Kotla, Anuradha ;
Mangrauthia, Satendra Kumar ;
Neelamraju, Sarla .
GENE, 2014, 546 (02) :430-436
[3]   Dietary phytate intake inhibits the bioavailability of iron and calcium in the diets of pregnant women in rural Bangladesh: A cross-sectional study [J].
Al Hasan S.M. ;
Hassan M. ;
Saha S. ;
Islam M. ;
Billah M. ;
Islam S. .
BMC Nutrition, 2 (1)
[4]   RNAi mediated down regulation of myo-inositol-3-phosphate synthase to generate low phytate rice [J].
Ali, Nusrat ;
Paul, Soumitra ;
Gayen, Dipak ;
Sarkar, Sailendra Nath ;
Datta, Swapan K. ;
Datta, Karabi .
RICE, 2013, 6 :1-12
[5]   Development of Low Phytate Rice by RNAi Mediated Seed-Specific Silencing of Inositol 1,3,4,5,6-Pentakisphosphate 2-Kinase Gene (IPK1) [J].
Ali, Nusrat ;
Paul, Soumitra ;
Gayen, Dipak ;
Sarkar, Sailendra Nath ;
Datta, Karabi ;
Datta, Swapan K. .
PLOS ONE, 2013, 8 (07)
[6]   An estimate of phytate intake and molar ratio of phytate to zinc in the diet of the people in the United Kingdom [J].
Amirabdollahian, F. ;
Ash, R. .
PUBLIC HEALTH NUTRITION, 2010, 13 (09) :1380-1388
[7]  
Anilkumar C., 2022, Genom. Sel. Plants, P68, DOI [10.1201/9781003214991-4, DOI 10.1201/9781003214991-4]
[8]  
[Anonymous], 2018, Global Nutrition Report: Shining a Light to Spur Action on Nutrition
[9]   Mapping QTLs and candidate genes for iron and zinc concentrations in unpolished rice of Madhukar x Swarna RILs [J].
Anuradha, K. ;
Agarwal, Surekha ;
Rao, Y. Venkateswara ;
Rao, K. V. ;
Viraktamath, B. C. ;
Sarla, N. .
GENE, 2012, 508 (02) :233-240
[10]   Grain Fe and Zn content, heterosis, combining ability and its association with grain yield in irrigated and aerobic rice [J].
Anusha, G. ;
Rao, D. Sanjeeva ;
Jaldhani, V ;
Beulah, P. ;
Neeraja, C. N. ;
Gireesh, C. ;
Anantha, M. S. ;
Suneetha, K. ;
Santhosha, R. ;
Prasad, A. S. Hari ;
Sundaram, R. M. ;
Madhav, M. Sheshu ;
Fiyaz, A. ;
Brajendra, P. ;
Tuti, M. D. ;
Bhave, M. H., V ;
Krishna, K. V. Radha ;
Ali, J. ;
Subrahmanyam, D. ;
Senguttuvel, P. .
SCIENTIFIC REPORTS, 2021, 11 (01)